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/[MCA-6] Fishing Aimer.sce
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2023-03-18T23:30:49.653812
2020-09-23T06:26:05
2020-09-23T06:26:05
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[MCA-6] Fishing Aimer.sce
Name=[MCA-6] Fishing Aimer PlayerCharacters=Angler BotCharacters=Clay Fish.bot IsChallenge=true Timelimit=60.0 PlayerProfile=Angler AddedBots=Clay Fish.bot;Clay Fish.bot;Clay Fish.bot PlayerMaxLives=0 BotMaxLives=0;0;0 PlayerTeam=1 BotTeams=2;2;2 MapName=fishing_pond.map MapScale=1.0 BlockProjectilePredictors=true BlockCheats=true InvinciblePlayer=false InvincibleBots=false Timescale=1.0 BlockHealthbars=true TimeRefilledByKill=0.0 ScoreToWin=1.0 ScorePerDamage=1.0 ScorePerKill=1000.0 ScorePerMidairDirect=0.0 ScorePerAnyDirect=0.0 ScorePerTime=0.0 ScoreLossPerDamageTaken=0.0 ScoreLossPerDeath=0.0 ScoreLossPerMidairDirected=0.0 ScoreLossPerAnyDirected=0.0 ScoreMultAccuracy=false ScoreMultDamageEfficiency=false ScoreMultKillEfficiency=false GameTag=Fun WeaponHeroTag= DifficultyTag=3 AuthorsTag=pleasewait BlockHitMarkers=false BlockHitSounds=false BlockMissSounds=true BlockFCT=true Description=Pull fishes with a reel (hitscan) and catch it with a capture net (an ability shoots projectile). [**The player has to use the ability to eliminate targets**] GameVersion=1.0.7.2 ScorePerDistance=0.0 [Aim Profile] Name=Default MinReactionTime=0.3 MaxReactionTime=0.4 MinSelfMovementCorrectionTime=0.001 MaxSelfMovementCorrectionTime=0.05 FlickFOV=30.0 FlickSpeed=1.5 FlickError=15.0 TrackSpeed=3.5 TrackError=3.5 MaxTurnAngleFromPadCenter=75.0 MinRecenterTime=0.3 MaxRecenterTime=0.5 OptimalAimFOV=30.0 OuterAimPenalty=1.0 MaxError=40.0 ShootFOV=15.0 VerticalAimOffset=0.0 MaxTolerableSpread=5.0 MinTolerableSpread=1.0 TolerableSpreadDist=2000.0 MaxSpreadDistFactor=2.0 [Bot Profile] Name=Clay Fish DodgeProfileNames=FA Strafes DodgeProfileWeights=1.0 DodgeProfileMaxChangeTime=100.0 DodgeProfileMinChangeTime=100.0 WeaponProfileWeights=1.0;0.0;0.0;0.0;0.0;0.0;0.0;0.0 AimingProfileNames=Default;Default;Default;Default;Default;Default;Default;Default WeaponSwitchTime=3.0 UseWeapons=false CharacterProfile=Clay Fish SeeThroughWalls=true NoDodging=false NoAiming=false [Character Profile] Name=Angler MaxHealth=100.0 WeaponProfileNames=Reel;;;;;;; MinRespawnDelay=0.000001 MaxRespawnDelay=0.000001 StepUpHeight=0.0 CrouchHeightModifier=0.5 CrouchAnimationSpeed=2.0 CameraOffset=X=0.000 Y=0.000 Z=36.000 HeadshotOnly=false DamageKnockbackFactor=0.0 MovementType=Base MaxSpeed=0.0 MaxCrouchSpeed=500.0 Acceleration=9000.0 AirAcceleration=16000.0 Friction=4.0 BrakingFrictionFactor=2.0 JumpVelocity=0.0 Gravity=1.0 AirControl=0.25 CanCrouch=false CanPogoJump=false CanCrouchInAir=true CanJumpFromCrouch=false EnemyBodyColor=X=1.000 Y=0.000 Z=0.000 EnemyHeadColor=X=1.000 Y=1.000 Z=1.000 TeamBodyColor=X=0.000 Y=0.000 Z=1.000 TeamHeadColor=X=1.000 Y=1.000 Z=1.000 BlockSelfDamage=false InvinciblePlayer=false InvincibleBots=true BlockTeamDamage=false AirJumpCount=0 AirJumpVelocity=0.0 MainBBType=Cylindrical MainBBHeight=72.0 MainBBRadius=16.0 MainBBHasHead=false MainBBHeadRadius=16.0 MainBBHeadOffset=0.0 MainBBHide=false ProjBBType=Cylindrical ProjBBHeight=72.0 ProjBBRadius=16.0 ProjBBHasHead=false ProjBBHeadRadius=16.0 ProjBBHeadOffset=0.0 ProjBBHide=true HasJetpack=false JetpackActivationDelay=0.2 JetpackFullFuelTime=4.0 JetpackFuelIncPerSec=1.0 JetpackFuelRegensInAir=false JetpackThrust=6000.0 JetpackMaxZVelocity=400.0 JetpackAirControlWithThrust=0.25 AbilityProfileNames=Capture Net.abilwep;;; HideWeapon=true AerialFriction=0.0 StrafeSpeedMult=1.0 BackSpeedMult=1.0 RespawnInvulnTime=0.0 BlockedSpawnRadius=0.0 BlockSpawnFOV=0.0 BlockSpawnDistance=0.0 RespawnAnimationDuration=0.0 AllowBufferedJumps=true BounceOffWalls=false LeanAngle=0.0 LeanDisplacement=0.0 AirJumpExtraControl=0.0 ForwardSpeedBias=1.0 HealthRegainedonkill=0.0 HealthRegenPerSec=0.0 HealthRegenDelay=0.0 JumpSpeedPenaltyDuration=0.0 JumpSpeedPenaltyPercent=0.0 ThirdPersonCamera=false TPSArmLength=300.0 TPSOffset=X=0.000 Y=150.000 Z=150.000 BrakingDeceleration=2048.0 VerticalSpawnOffset=0.0 SpawnXOffset=0.0 SpawnYOffset=0.0 [Character Profile] Name=Clay Fish MaxHealth=10.0 WeaponProfileNames=;;;;;;; MinRespawnDelay=0.000001 MaxRespawnDelay=0.000001 StepUpHeight=75.0 CrouchHeightModifier=0.5 CrouchAnimationSpeed=0.1 CameraOffset=X=0.000 Y=0.000 Z=36.000 HeadshotOnly=false DamageKnockbackFactor=0.0 MovementType=Base MaxSpeed=128.0 MaxCrouchSpeed=500.0 Acceleration=512.0 AirAcceleration=16000.0 Friction=4.0 BrakingFrictionFactor=2.0 JumpVelocity=256.0 Gravity=1.0 AirControl=0.0 CanCrouch=false CanPogoJump=false CanCrouchInAir=true CanJumpFromCrouch=false EnemyBodyColor=X=1.000 Y=0.000 Z=0.000 EnemyHeadColor=X=1.000 Y=1.000 Z=1.000 TeamBodyColor=X=0.000 Y=0.000 Z=1.000 TeamHeadColor=X=1.000 Y=1.000 Z=1.000 BlockSelfDamage=false InvinciblePlayer=false InvincibleBots=false BlockTeamDamage=false AirJumpCount=0 AirJumpVelocity=0.0 MainBBType=Spheroid MainBBHeight=40.0 MainBBRadius=10.0 MainBBHasHead=false MainBBHeadRadius=16.0 MainBBHeadOffset=0.0 MainBBHide=false ProjBBType=Spheroid ProjBBHeight=20.0 ProjBBRadius=10.0 ProjBBHasHead=false ProjBBHeadRadius=16.0 ProjBBHeadOffset=0.0 ProjBBHide=true HasJetpack=false JetpackActivationDelay=0.2 JetpackFullFuelTime=4.0 JetpackFuelIncPerSec=1.0 JetpackFuelRegensInAir=false JetpackThrust=6000.0 JetpackMaxZVelocity=400.0 JetpackAirControlWithThrust=0.25 AbilityProfileNames=;;; HideWeapon=true AerialFriction=0.0 StrafeSpeedMult=1.0 BackSpeedMult=1.0 RespawnInvulnTime=0.0 BlockedSpawnRadius=0.0 BlockSpawnFOV=0.0 BlockSpawnDistance=0.0 RespawnAnimationDuration=0.0 AllowBufferedJumps=true BounceOffWalls=false LeanAngle=0.0 LeanDisplacement=0.0 AirJumpExtraControl=0.0 ForwardSpeedBias=1.0 HealthRegainedonkill=0.0 HealthRegenPerSec=10000.0 HealthRegenDelay=0.0 JumpSpeedPenaltyDuration=0.0 JumpSpeedPenaltyPercent=0.0 ThirdPersonCamera=false TPSArmLength=300.0 TPSOffset=X=0.000 Y=150.000 Z=150.000 BrakingDeceleration=2048.0 VerticalSpawnOffset=0.0 SpawnXOffset=0.0 SpawnYOffset=0.0 [Dodge Profile] Name=FA Strafes MaxTargetDistance=768.0 MinTargetDistance=256.0 ToggleLeftRight=true ToggleForwardBack=true MinLRTimeChange=0.5 MaxLRTimeChange=1.5 MinFBTimeChange=0.5 MaxFBTimeChange=1.0 DamageReactionChangesDirection=false DamageReactionChanceToIgnore=0.5 DamageReactionMinimumDelay=0.125 DamageReactionMaximumDelay=0.25 DamageReactionCooldown=1.0 DamageReactionThreshold=50.0 DamageReactionResetTimer=0.5 JumpFrequency=0.0 CrouchInAirFrequency=0.0 CrouchOnGroundFrequency=0.0 TargetStrafeOverride=Ignore TargetStrafeMinDelay=0.15 TargetStrafeMaxDelay=0.3 MinProfileChangeTime=100.0 MaxProfileChangeTime=100.0 MinCrouchTime=0.3 MaxCrouchTime=0.6 MinJumpTime=0.3 MaxJumpTime=0.6 LeftStrafeTimeMult=1.0 RightStrafeTimeMult=1.0 StrafeSwapMinPause=0.0 StrafeSwapMaxPause=0.0 BlockedMovementPercent=0.5 BlockedMovementReactionMin=0.125 BlockedMovementReactionMax=0.2 [Weapon Profile] Name=Reel Type=Hitscan ShotsPerClick=1 DamagePerShot=1.0 KnockbackFactor=0.0 TimeBetweenShots=0.1 Pierces=false Category=SemiAuto BurstShotCount=1 TimeBetweenBursts=0.5 ChargeStartDamage=10.0 ChargeStartVelocity=X=500.000 Y=0.000 Z=0.000 ChargeTimeToAutoRelease=2.0 ChargeTimeToCap=1.0 ChargeMoveSpeedModifier=1.0 MuzzleVelocityMin=X=2000.000 Y=0.000 Z=0.000 MuzzleVelocityMax=X=2000.000 Y=0.000 Z=0.000 InheritOwnerVelocity=0.0 OriginOffset=X=0.000 Y=0.000 Z=0.000 MaxTravelTime=5.0 MaxHitscanRange=1000000.0 GravityScale=1.0 HeadshotCapable=false HeadshotMultiplier=2.0 MagazineMax=1 AmmoPerShot=1 ReloadTimeFromEmpty=0.4 ReloadTimeFromPartial=0.4 DamageFalloffStartDistance=1000000.0 DamageFalloffStopDistance=1000000.0 DamageAtMaxRange=1.0 DelayBeforeShot=0.0 HitscanVisualEffect=None ProjectileGraphic=Ball VisualLifetime=0.1 WallParticleEffect=Gunshot HitParticleEffect=None BounceOffWorld=false BounceFactor=0.5 BounceCount=0 HomingProjectileAcceleration=0.0 ProjectileEnemyHitRadius=1.0 CanAimDownSight=false ADSZoomDelay=0.000001 ADSZoomSensFactor=1.0 ADSMoveFactor=1.0 ADSStartDelay=0.0 ShootSoundCooldown=0.1 HitSoundCooldown=0.1 HitscanVisualOffset=X=0.000 Y=0.000 Z=-50.000 ADSBlocksShooting=false ShootingBlocksADS=false KnockbackFactorAir=0.0 RecoilNegatable=false DecalType=1 DecalSize=30.0 DelayAfterShooting=0.0 BeamTracksCrosshair=false AlsoShoot= ADSShoot= StunDuration=0.0 CircularSpread=true SpreadStationaryVelocity=0.0 PassiveCharging=false BurstFullyAuto=true FlatKnockbackHorizontal=-256.0 FlatKnockbackVertical=192.0 HitscanRadius=0.0 HitscanVisualRadius=6.0 TaggingDuration=0.0 TaggingMaxFactor=1.0 TaggingHitFactor=1.0 ProjectileTrail=None RecoilCrouchScale=1.0 RecoilADSScale=1.0 PSRCrouchScale=1.0 PSRADSScale=1.0 ProjectileAcceleration=0.0 AccelIncludeVertical=false AimPunchAmount=0.0 AimPunchResetTime=0.0 AimPunchCooldown=0.0 AimPunchHeadshotOnly=false AimPunchCosmeticOnly=false MinimumDecelVelocity=0.0 PSRManualNegation=false PSRAutoReset=true AimPunchUpTime=0.05 AmmoReloadedOnKill=0 CancelReloadOnKill=false FlatKnockbackHorizontalMin=-256.0 FlatKnockbackVerticalMin=96.0 ADSScope=No Scope ADSFOVOverride=90.0 ADSFOVScale=Vertical (1:1) ADSAllowUserOverrideFOV=true IsBurstWeapon=false ForceFirstPersonInADS=true ZoomBlockedInAir=false ADSCameraOffsetX=0.0 ADSCameraOffsetY=0.0 ADSCameraOffsetZ=0.0 QuickSwitchTime=0.1 Explosive=false Radius=0.1 DamageAtCenter=0.0 DamageAtEdge=0.0 SelfDamageMultiplier=0.0 ExplodesOnContactWithEnemy=false DelayAfterEnemyContact=0.0 ExplodesOnContactWithWorld=false DelayAfterWorldContact=0.0 ExplodesOnNextAttack=false DelayAfterSpawn=0.0 BlockedByWorld=false SpreadSSA=1.0,1.0,0.0,0.0 SpreadSCA=1.0,1.0,0.0,0.0 SpreadMSA=1.0,1.0,0.0,0.0 SpreadMCA=1.0,1.0,0.0,0.0 SpreadSSH=1.0,1.0,0.0,0.0 SpreadSCH=1.0,1.0,0.0,0.0 SpreadMSH=1.0,1.0,0.0,0.0 SpreadMCH=1.0,1.0,0.0,0.0 MaxRecoilUp=0.0 MinRecoilUp=0.0 MinRecoilHoriz=0.0 MaxRecoilHoriz=0.0 FirstShotRecoilMult=1.0 RecoilAutoReset=false TimeToRecoilPeak=0.1 TimeToRecoilReset=0.1 AAMode=2 AAPreferClosestPlayer=false AAAlpha=0.0 AAMaxSpeed=360.0 AADeadZone=0.0 AAFOV=360.0 AANeedsLOS=true TrackHorizontal=false TrackVertical=false AABlocksMouse=false AAOffTimer=0.0 AABackOnTimer=0.0 TriggerBotEnabled=false TriggerBotDelay=0.0 TriggerBotFOV=1.0 StickyLock=false HeadLock=false VerticalOffset=0.0 DisableLockOnKill=true UsePerShotRecoil=false PSRLoopStartIndex=0 PSRViewRecoilTracking=0.0 PSRCapUp=9.0 PSRCapRight=4.0 PSRCapLeft=4.0 PSRTimeToPeak=0.175 PSRResetDegreesPerSec=40.0 UsePerBulletSpread=false PBS0=0.0,0.0 [Weapon Profile] Name=Capture Net Type=Projectile ShotsPerClick=1 DamagePerShot=10.0 KnockbackFactor=0.0 TimeBetweenShots=0.1 Pierces=false Category=SemiAuto BurstShotCount=1 TimeBetweenBursts=0.5 ChargeStartDamage=10.0 ChargeStartVelocity=X=500.000 Y=0.000 Z=0.000 ChargeTimeToAutoRelease=2.0 ChargeTimeToCap=1.0 ChargeMoveSpeedModifier=1.0 MuzzleVelocityMin=X=640.000 Y=0.000 Z=0.000 MuzzleVelocityMax=X=640.000 Y=0.000 Z=0.000 InheritOwnerVelocity=0.0 OriginOffset=X=100.000 Y=0.000 Z=0.000 MaxTravelTime=0.1 MaxHitscanRange=100000.0 GravityScale=0.0 HeadshotCapable=false HeadshotMultiplier=2.0 MagazineMax=0 AmmoPerShot=1 ReloadTimeFromEmpty=0.5 ReloadTimeFromPartial=0.5 DamageFalloffStartDistance=100000.0 DamageFalloffStopDistance=100000.0 DamageAtMaxRange=10.0 DelayBeforeShot=0.0 HitscanVisualEffect=Tracer ProjectileGraphic=Plasma VisualLifetime=0.1 WallParticleEffect=None HitParticleEffect=Flare BounceOffWorld=false BounceFactor=0.0 BounceCount=0 HomingProjectileAcceleration=0.0 ProjectileEnemyHitRadius=1.0 CanAimDownSight=false ADSZoomDelay=0.0 ADSZoomSensFactor=0.7 ADSMoveFactor=1.0 ADSStartDelay=0.0 ShootSoundCooldown=0.08 HitSoundCooldown=0.08 HitscanVisualOffset=X=0.000 Y=0.000 Z=0.000 ADSBlocksShooting=false ShootingBlocksADS=false KnockbackFactorAir=0.0 RecoilNegatable=false DecalType=0 DecalSize=30.0 DelayAfterShooting=0.0 BeamTracksCrosshair=false AlsoShoot= ADSShoot= StunDuration=0.0 CircularSpread=true SpreadStationaryVelocity=0.0 PassiveCharging=false BurstFullyAuto=true FlatKnockbackHorizontal=0.0 FlatKnockbackVertical=0.0 HitscanRadius=0.0 HitscanVisualRadius=6.0 TaggingDuration=0.0 TaggingMaxFactor=1.0 TaggingHitFactor=1.0 ProjectileTrail=None RecoilCrouchScale=1.0 RecoilADSScale=1.0 PSRCrouchScale=1.0 PSRADSScale=1.0 ProjectileAcceleration=0.0 AccelIncludeVertical=true AimPunchAmount=0.0 AimPunchResetTime=0.05 AimPunchCooldown=0.5 AimPunchHeadshotOnly=false AimPunchCosmeticOnly=true MinimumDecelVelocity=0.0 PSRManualNegation=false PSRAutoReset=true AimPunchUpTime=0.05 AmmoReloadedOnKill=0 CancelReloadOnKill=false FlatKnockbackHorizontalMin=0.0 FlatKnockbackVerticalMin=0.0 ADSScope=No Scope ADSFOVOverride=72.099998 ADSFOVScale=Overwatch ADSAllowUserOverrideFOV=true IsBurstWeapon=false ForceFirstPersonInADS=true ZoomBlockedInAir=false ADSCameraOffsetX=0.0 ADSCameraOffsetY=0.0 ADSCameraOffsetZ=0.0 QuickSwitchTime=0.1 Explosive=false Radius=500.0 DamageAtCenter=120.0 DamageAtEdge=0.1 SelfDamageMultiplier=0.5 ExplodesOnContactWithEnemy=true DelayAfterEnemyContact=0.0 ExplodesOnContactWithWorld=false DelayAfterWorldContact=0.0 ExplodesOnNextAttack=false DelayAfterSpawn=0.0 BlockedByWorld=true SpreadSSA=1.0,1.0,-1.0,0.0 SpreadSCA=1.0,1.0,-1.0,0.0 SpreadMSA=1.0,1.0,-1.0,0.0 SpreadMCA=1.0,1.0,-1.0,0.0 SpreadSSH=1.0,1.0,-1.0,0.0 SpreadSCH=1.0,1.0,-1.0,0.0 SpreadMSH=1.0,1.0,-1.0,0.0 SpreadMCH=1.0,1.0,-1.0,0.0 MaxRecoilUp=0.0 MinRecoilUp=0.0 MinRecoilHoriz=0.0 MaxRecoilHoriz=0.0 FirstShotRecoilMult=1.0 RecoilAutoReset=false TimeToRecoilPeak=0.05 TimeToRecoilReset=0.35 AAMode=2 AAPreferClosestPlayer=false AAAlpha=0.1 AAMaxSpeed=1.5 AADeadZone=0.0 AAFOV=180.0 AANeedsLOS=true TrackHorizontal=true TrackVertical=true AABlocksMouse=false AAOffTimer=0.0 AABackOnTimer=0.0 TriggerBotEnabled=true TriggerBotDelay=0.001 TriggerBotFOV=1.0 StickyLock=false HeadLock=false VerticalOffset=-25.0 DisableLockOnKill=false UsePerShotRecoil=false PSRLoopStartIndex=0 PSRViewRecoilTracking=0.45 PSRCapUp=9.0 PSRCapRight=4.0 PSRCapLeft=4.0 PSRTimeToPeak=0.095 PSRResetDegreesPerSec=40.0 UsePerBulletSpread=false PBS0=0.0,0.0 [Weapon Ability Profile] Name=Capture Net MaxCharges=1.0 ChargeTimer=0.1 ChargesRefundedOnKill=0.0 DelayAfterUse=0.5 FullyAuto=false WeaponProfile=Capture Net BlockAttackTimer=0.0 AbilityBlockedWhenAttacking=false AmmoPerShot=0 AIUseInCombat=true AIUseOutOfCombat=false AIUseOnGround=true AIUseInAir=true AIReuseTimer=1.0 AIMinSelfHealth=0.0 AIMaxSelfHealth=100.0 AIMinTargHealth=0.0 AIMaxTargHealth=100.0 AIMinTargDist=0.0 AIMaxTargDist=2000.0 AIMaxTargFOV=15.0 AIDamageReaction=false AIDamageReactionIgnoreChance=0.0 AIDamageReactionMinDelay=0.125 AIDamageReactionMaxDelay=0.25 AIDamageReactionCooldown=1.0 AIDamageReactionThreshold=0.0 AIDamageReactionResetTimer=0.1 [Map Data] reflex map version 8 global entity type WorldSpawn String32 targetGameOverCamera end UInt8 playersMin 1 UInt8 playersMax 16 brush vertices -256.000000 528.000000 1168.000000 768.000000 528.000000 1168.000000 768.000000 528.000000 144.000000 -256.000000 528.000000 144.000000 -256.000000 512.000000 1168.000000 768.000000 512.000000 1168.000000 768.000000 512.000000 144.000000 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// Ex18_5 Page:353 (2014) clc;clear; N1 = 1; // Assume the number of present atoms of K-40 N2 = 10.2; // No.of atoms of Ar-40 relative to K-40 t_half = 1.25e+009; // Half-life of K-40, years lambda = 0.693/t_half; // Decay constant, per sec t = log(1 + N2/N1)/lambda; // Age of the rock on moon, years printf("\nThe age of the rock on moon = %4.2e yr", t); // Result // The age of the rock on moon = 4.36e+009 yr
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LinearSWE_StandingWave_WallBC_CG_P4.tst
<?xml version="1.0" encoding="utf-8"?> <test> <description>Standing Wave, CG, P=4</description> <executable>ShallowWaterSolver</executable> <parameters>LinearSWE_StandingWave_WallBC_CG_P4.xml</parameters> <files> <file description="Session File">LinearSWE_StandingWave_WallBC_CG_P4.xml</file> </files> <metrics> <metric type="L2" id="1"> <value variable="eta" tolerance="1e-12">3.06656e-05</value> <value variable="u" tolerance="1e-12">1.48028e-05</value> <value variable="v" tolerance="1e-12">1.48028e-05</value> </metric> <metric type="Linf" id="2"> <value variable="eta" tolerance="1e-12">0.000166246</value> <value variable="u" tolerance="1e-12">4.36258e-05</value> <value variable="v" tolerance="1e-12">4.36258e-05</value> </metric> </metrics> </test>
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//determine //the small-signal equivalent-circuit constants gm and rds. (b) Alternatively, evaluate gm from the //transfer characteristic. //Example 7.1 page no 207 clear clc Did=(3.3-0.3)*10^-3 Vgs=2 gm=Did/Vgs*1000 printf("\n The value of gm=%0.3f mS",gm) Dvds=20-5 Did=(1.6-1.4)*10^-3 rds=Dvds/Did/1000 printf("\n The value of rds=%0.3f kOhm",rds) Did=(2-1)*10^-3 Dvgs=-1.75-(-2.4) gm=Did/Dvgs*1000 //mS printf("\n The value of gm=%0.3f mS",gm)
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Example5_10.sce
//Example 5.10 clear; clc; T=25; Ib=75*10^(-9); Ios=80*10^(-9); Vos=100*10^(-6); Vs=15; R1=4.99*10^(3); R2=365; R3=4.99*10^3; R4=499; R5=499; R6=20*10^3; R7=19.6*10^3; R8=100; R9=100*10^3; R10=1*10^3; C=100*10^(-12); EI1=Vos+(((R1*(R2+(R8/2)))/(R1+(R2+(R8/2))))*Ib); EI2=EI1; EI3=Vos+(((R4*R6)/(R4+R6))*Ios); A=10^3; Eo=(A*(EI1+EI2))+((R6/R4)*EI3); Eos=Eo+64*10^(-3); Vx=Eos; RB=100*10^3; RA=RB/abs(Vs/Vx); RC=100*10^3;///Choosing RC=100 kohms printf("RA=%.f kohms",RA*10^(-3)); printf("\nRB=%.f kohms",RB*10^(-3)); printf("\nRC=%.f kohms",RC*10^(-3));
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Example10_8.sce
clear; clc; // Example: 10.8 // Page: 410 printf("Example: 10.8 - Page: 410\n\n"); // This problem involves proving a relation in which no mathematics and no calculations are involved. // For prove refer to this example 10.8 on page number 410 of the book. printf(" This problem involves proving a relation in which no mathematics and no calculations are involved.\n\n"); printf(" For prove refer to this example 10.8 on page 410 of the book.");
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Ex3_4.sce
clc clear //Input data p1=1//Pressure in bar T1=25+273//Temperature in K rp=8//Pressure ratio of compressor Tm=900+273//Maximum temperature in K pd=3//pressure drop in combustion chamber in percent nc=0.88//Efficiency of compressor nt=0.88//Efficiency of turbine CV=44.43//Calorific value of fuel in MJ/kg cpa=1.006//Specific heat of air in kJ/kg.K cpg=1.148//Specific heat of gas in kJ/kg.K g1=1.333//Specific heat ratio of gas g=1.4//Specific heat ratio of air T3=425+273//Temperature in K p2=40//Pressure in bar p3=0.04//Condensor pressure in bar Th=170.4+273//Temperature of feed water to the HRSG in K nst=0.82//Efficiency of steam turbine pdh=5//Pressure drop in HRSG in kPa m=29.235//Steam flow rate in kg/s A=1.0401//si=1.0401+0.1728*(h/c) B=0.1728//si=1.0401+0.1728*(h/c) //Calculations //Gas turbine plant T2=(rp^((g-1)/(g*nt)))*T1//Temperature in K //Combustor pc=((pd/100)*rp)//Pressure loss in bar pcx=(rp-pc)//Pressure in bar f=((cpg*(Tm-T1))-(cpa*(T2-T1)))/((CV*10^3)-(cpa*(T2-T1)))//Fuel flow rate in kg/s af=(1-f)/f//Air fuel ratio //C8H18+12.5O2->8CO2+9H2O afc=(12.5*32)/(0.232*114)//Air fuel ratio for stoichiometric combustion ea=((af-afc)/afc)*100//Excess air in percent //Gas turbine p4=p1+0.05//Pressure in bar T4=(Tm/(pcx/p4)^(((g1-1)*nt)/g1))//Temperature in K //HRSG T5=250+30//Temeprature in K ha=3272//Enthalpy in kJ/kg hf=1087.31//Enthalpy in kJ/kg ws=(cpg*((T4-273)-T5))/(ha-hf)//Flow rate in kg/s he=721.1//Enthalpy in kJ/kg T6=(T4-273)-((ws*(ha-he))/cpg)//Temperature in degree C //Power output sa=6.853//Entropy in kJ/kg.K sbs=sa//Entropy in kJ/kg.K xbs=(sbs-0.4266)/8.052//Dryness fraction hbs=(121.46+xbs*2432.9)//ENthalpy in kJ/kg Wst=(m*(ha-hbs)*nst)//Workdone in kW wg=(m/ws)//gas flow rate in kg/s wa=(1-f)*wg//Air flow rate entering the compressor in kg/s Wgt=(wg*cpg*(Tm-T4))-(wa*cpa*(T2-T1))//Power output of gas turbine in kW TO=Wst+Wgt//Total power output in kW wf1=(f*wa)//Fuel mass flow rate in kg/s wf=4.466//Rounding off of wf1 for exact answers no=(TO/(wf*(CV*10^3)))*100//Overall efficiency of the combined plant in percent ns=((ha-hbs)/(ha-he))*nst//Efficiency of steam plant ngtp=(Wgt/(wf*(CV*10^3)))//Efficiency of the GT plant xL=((wg*cpg*(T6-(T1-273)))/(wf*(CV*10^3)))//Lost heat coefficient nov=(ns+ngtp-ns*ngtp-ngtp*xL)//The overall efficiency //Energy fluxes and irreversibilities si=(A+B*((18*1)/(8*12)))//si for octane C8H18 dHo=(wf*CV*10^3)//Power in kW dGo=(si*dHo)//Power in kW TS=(dGo-dHo)//Power in kW //Compressor dS=(cpa*log(T2/T1))-(((cpa*(g-1))/g)*log(rp))//change in entropy in kJ/kg.K Ic=(wa*T1*dS)//power in kW Icx=((wg*T1*((cpg*log(Tm/T1))-(((cpg*(g1-1))/g1)*log(pcx))))-(wa*T1*((cpa*log(T2/T1))-(((cpa*(g-1))/g)*log(rp))))+TS)//Compressor in kW Icg=(-cpg*log(Tm/T4))-(((cpg*(g1-1))/g1)*log(p4/pcx))//Difference in entropy in kJ/kg.K IGT=(Icg*T1*wg)//Gas turbine in kW se=2.046//Enntropy in kJ/kg.K sae=(sa-se)//Difference in entropy in kJ/kg.K s64=(cpg*log((T6+273)/T4))-(((cpg*(g1-1))/g1)*log(p4/p1))//Difference in entropy in kJ/kg.K Ih=(T1*m*sae)+(wg*T1*s64)//For HRSG in kW hb=(ha-(nst*(ha-hbs)))//Enthalpy in kJ/kg xb=(hb-121.46)/2432.9//Dryness Fraction sb=(0.4226+xb*8.052)//Entropy in kJ/kg.K Ist=(m*(sb-sa)*T1)//For steam turbine in kW Iexh=(wg*cpg*((T6-(T1-273))-(T1*log((T6+273)/T1))))//For exhaust in kW Tl=Icx+Icg+IGT+Ih+Ist+Iexh//Exergy losses in kW T=Tl+Wgt+Wst//Total exergy output and exergy destruction in kW ee=((Wst+Wgt)/T)*100//Exergy efficiency in percent //Output printf('(a) Total power output is %3.2f kW and overall efficiency is %3.2f percent lost heat coefficient is %3.3f\n Exergy efficiency is %3.0f percent \n\n Input is %3.0f kW \n Total Output is %3.0f kW \n Total losses is %3.0f kW \n Exergy outut + exergy destruction = %3.0f kW which is 1.3 percent gretter than the exergy input',TO,no,xL,ee,dGo,(Wgt+Wst),Tl,T)
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uzawa inegalite.sce
clear all exec('C:\Users\Julien Guégan\Desktop\PFE\affichage.sce',-1) exec('C:\Users\Julien Guégan\Desktop\PFE\fonctions test.sce',-1) function alpha = backtracking(f,x,d,grad)//pour newton mais pas pour quasi et CG alpha = 10 w = 0.1 cpt = 0 while(f(x+alpha*d)>(f(x)+alpha*w*(grad'*d))) alpha = alpha/2 cpt = cpt+1 end endfunction function [L,dLx] = lagrangien(f,g,mu,x) S = 0 dS = 0 G = g(x) F = f(x) df = numderivative(f,x) dg = numderivative(g,x) for j = 1:size(G,1) S = S + mu(j).*G(j) dS = dS + mu(j).*dg(j,:) end L = F + S dLx = df' + dS' endfunction function xn = uzawa(f,tol,x0,g) xn = x0 for j = 1:length(g(x0)) mun(j) = 1 end n = 1 cdtarret = %T while (cdtarret) then [L,dLx] = lagrangien(f,g,mun,xn) rhox = 0.05 xnp1 = xn - rhox*dLx rhom = 1 munp1 = max(0, mun + rhom*g(xnp1)) plot([xnp1(1) xn(1)],[xnp1(2) xn(2)],'k-') cdtarret = norm(xn-xnp1)>tol mun = munp1 xn = xnp1 n = n+1 end endfunction function z = cout(x) z = 0.05*x(1)^4+ 0.1*x(2)^4 + 10*x(1)*x(2)+20*x(1) endfunction function g = inegalite(x) //dlf g(x)<0 g1 = -x(1)-2 g2 = x(1)-2 g3 = -x(2)+2 g4 = x(2)-6 g = [g1;g2;g3;g4] endfunction clf() affiche(quadratique,4.9,-4.9,9.1,-3,'contour') xlabel('$x_1$','fontsize',4) ylabel('$x_2$','fontsize',4) x = [-2.5:0.1:2.5]' x2 = [0.5:0.1:7.5]' plot(x,6*ones(length(x),1),'b-.');plot(x,2*ones(length(x),1),'b-.');plot(-2*ones(length(x2),1),x2,'b-.');plot(2*ones(length(x2),1),x2,'b-.') //legend(["égalité";"inégalité"] ,-1) tol = 0.001 fonction = quadratique for x01 = -2:2 //samplé plusieurs initial guess for x02 = 2:6 x0 = [x01;x02] /*plot(x0(1),x0(2),'k.') xstring(x0(1),x0(2),'$x_0$') gce().font_size=3*/ sol = uzawa(fonction,tol,x0,inegalite) //disp('le minimum est x = ') //disp(sol) plot(sol(1),sol(2),'k.') end end title('$\rho_x = 0.05;\rho_{\mu} = 1$')
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example11_15.sce
//clc() Hna = 26.04;//J/g-atomK Hs = 22.6;//J/g-atomK Ho = 16.8;//J/g-atomK Hh = 9.6;//J/g-atomK Hna2so410h2o = 2*Hna + Hs + 14*Ho + 20*Hh; Hexp = 592.2;//J/molK Deviation = (Hexp - Hna2so410h2o)*100/Hexp; disp("%",Deviation,"Deviation in heat capacity = ")
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// Priority List Method clear clc; Fc1=1.1;//Fuel cost(1)=Rs 1.1/MBtu Fc2=1;//Fuel cost(2)=1/MBtu Fc3=1.2;//Fuel cost(3)=1.2/MBtu P1max=600; P1=P1max; F1=600+7.1*P1+0.00141*(P1^2);//For P1= Pm1ax Favg1=F1*Fc1/600;//Full load average production cost P2max=450; P2=P2max; F2=350+7.8*P2+0.00195*(P2^2);//For P2= P2max Favg2=F2*Fc2/450;//Full load average production cost P3max=250; P3=P3max; F3=80+8*P3+0.0049*(P3^2);//For P3= P3max Favg3=F3*Fc3/250;//Full load average production cost mprintf("Priority List is as follows\n"); mprintf("Unit Rs/MWhr MinMW Max MW\n") mprintf(" 2 %.3f 100 %.0f \n",Favg2,P2max) mprintf(" 1 %.4f 60 %.0f \n",Favg1,P1max) mprintf(" 3 %.2f 50 %.0f \n\n",Favg3,P3max) Fmax1=P1max+P2max+P3max; Fmax2=P2max+P1max Fmax3=P2max mprintf("Unit Commitment Scheme is follows\n") mprintf("Combination Min.MW from Combination Max.MW from Combination\n"); mprintf("2+1+3 310 %.0f \n",Fmax1); mprintf("2+1 260 %.0f \n",Fmax2); mprintf("2 100 %.0f ",Fmax3);
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clc //initialisation of variables h=100//ft^3 t=15//degree C p=120//lb/in^2 gama=1.3//in t1=15//Degree C M=[(144*t*h*2.6)/(0.3)*(1.271-1)]//ft lb //CALCULATIONS V=sqrt(p/t)//ft lb //RESULTS printf('Compare the values of the two cylinders=% f ft lb',V)
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clc,clear printf('Example 4.21\n\n') V= 0.5*0.25*0.02//volume of plywood to be heated D=600 //density of plywood in kg/m^3 W=V*D specific_heat = 1500 T1=25;T2=125; //initial and final temperature heat= specific_heat * W * (T2-T1)/(60*60) //in W-Hr T=10 //duration of heating in minutes power_required = heat/(T/60) efficiency= 50/100 //efficiency of process power_input= power_required/ efficiency printf('Power required for heating = %.0f watts',power_input)
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f=figure("dockable","off", "menubar", "none"); f.figure_position = [25, 58]; f.figure_name="Real-time Temperature Monitoring and Control"; f.figure_size = [1200 700]; f.background = color(246,244,242); f.resize="off"; f.menubar_visible="on"; f.toolbar_visible="off"; f.info_message=f.figure_name f.tag="mainWindow"; f.closerequestfcn="closeFigure"; // bar(.5,0,'blue'); ge = gce(); ge = ge.children(1); ge.tag = "instantSensor"; // plot([0, 1], [%MinTemp, %MinTemp]); e = gce(); e = e.children(1); e.tag = "instantMinTemp"; e.line_style = 5; e.thickness = 2; e.foreground = color("orange"); // plot([0, 3], [%MaxTemp, %MaxTemp]); e = gce(); e = e.children(1); e.tag = "instantMaxTemp"; e.line_style = 5; e.thickness = 2; e.foreground = color("red"); // a = gca(); a.data_bounds = [0, minTempDisplay; 1, maxTempDisplay]; a.grid = [-1, color("darkgrey")]; a.axes_bounds = [0.05, 0.105, 0.25, .95]; a.axes_visible(1) = "off"; a.tag = "liveAxes"; a.tight_limits="on";
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// Example 7.1 clear all; clc; // Using the data form Table 6.3 at temperature = 20 deg n_T = 2.065; // Average number of neutrons produced per neutron absorbed in fission // Using the data from Table 7.1 t_dM = 2.1e-4; // The mean diffusion time of the moderator in seconds k_inf = 1; // The reactor is critical f = k_inf/n_T; // Thermal utilization factor // Calculation t_d = t_dM*(1-f); l_p = t_d; // Result printf(" \n The prompt neutron lifetime = %3.2E seconds \n",l_p);
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5_24.sce
clc; clear; //Example 5.24 ho=200; //[W/sq m.K] hi=1500; //[W/sq m.K] Cpw=4.2; //Sp heat of Water in [kJ/(kg.K)] Cpo=2.1; //Sp heat of Oil in [kJ/(kg.K)] E=0.8; //Effectiveness k=46; //[W/m.K] m_dot=0.167; //[kg/s] mCp_oil=2*m_dot*Cpo*1000 //For oil [W/K] //mCp_oil is wrongly calculated as 710.4 mCp_water=m_dot*Cpw*1000 //For water [W/K] //mCp_oil is wrongly calculated as 710.4 //NOTE:The above two values are wrongly calculated in book as 710.4 //so we take here: mCp_small=710.4 //[W/K] //Since both mCp_water and mCp_oil are equal ,therefore: C=1; deff('[x]=f(ntu)','x=E-(ntu/(1+ntu))'); ntu=fsolve(1,f) id=20; //Internal diameter in [mm] od=25; //External diameter in [mm] hio=hi*id/od //[W/sq m.K] Dw=(od-id)/log(od/id) //[mm] Dw=Dw/1000 //[m] x=(od-id)/2 //[mm] x=x/1000 //[m] Do=0.025 //External dia in [m] L=2.5; //Length of tube in [m] Uo=1/(1/ho+1/hio+(x/k)*(Dw/Do)) //[W/sq m.K] A=ntu*mCp_small/Uo //Heat transfer area in [sq m] n=A/(%pi*Do*L) //No of tubes printf("\nNo. of tubes required = %d",round(n+1));
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clc; T1=295;//C p1=1.02;//bar p2=6.8;//bar y=1.4; v1=0.015;//m^3 cv=0.718; R=0.287 T2=T1*(p2/p1)^((y-1)/y); disp("final temperature is:"); disp("k",T2); v2=v1*{(p1/p2)^(1/y)}; disp("final volume is:"); disp("m^3",v2); w=cv*(T2-T1); m=p1*v1*10^5/(10^3*R*T1); W=w*m; disp("total work done is:"); disp("kJ",W)
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//Finding of Power developed,Outlet Vane Angle ,Speed //Given H=100; D=.675; D1=0.5 B=0.15; B1=.225; g=9.81; rho=1000; Vf=3; Vw=3; //To Find u=Vf/tan(%pi/15); N=1/((%pi*D)/(u*60)); u1=u*(D1/D);disp(Vf); Vf1=(D*B*Vf)/(0.15*B1); z=atand(Vf1/u1); P=(rho*%pi*B*D1*Vf*Vw*u)/10000; disp("Speed ="+string(N)+" rpm"); disp("Power Developed ="+string(P)+" Kilo Watts"); disp("Outlet Vane Angle ="+string(z)+" degrees");
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// Scilab code: Ex6.4 : Wavelength limit of X-rays : Pg: 157 (2008) V = 20000; // Potential difference, volt h = 6.624e-034; // Planck's constant, Js c = 3e+08; // Velocity of light, m/s e = 1.6e-019; // Charge of an electron, coulombs // Since e*V = h*c/L; // Energy required by an electron to move through a potential barrier of one volt, joules // solving for L L = h*c/(e*V); // Wavelength limit of X-rays, m printf("\nShort wavelength limit of X-ray = %6.4f angstorm", L/1e-010); // Result // Short wavelength limit of X-ray = 0.6210 angstorm
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forwardDifference2.sci
function[firstDerivative, err] = forwardDifference2(fx, h) firstDerivative = []; err = []; for(i = 1:10) firstDerivative = (-tan(x + 2 .* h) + 4 * tan(x+h) - 3*tan(x))./(2.*h); trueValue = (sec(x))^2; err = abs(trueValue - firstDerivative); end endfunction
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clc clear //INPUT DATA n1=1.54//refractive index of optical fibre core n2=1.5//refractive index of cladding //CALCULATION NA=sqrt((n1)^2-(n2)^2)//numerical aperture //OUTPUT printf('The numerical aperture is %3.4f',NA)
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//Example 2.2, Page Number 55 //The Function fpround(dependency) is used to round a floating point number x to n decimal places //Excitation Energy Calculation clc; r=11.8 //Relative Permeability m=9.1*(10**-31) //Mass of electron in kilogram me=0.26*m //Effective mass //From equation 2.28 E=13.6*(me/m)*((1/r)**2) //E is the excitation energy in eV E=fpround(E,4) mprintf("The Excitation Energy is given by %.3feV",E)
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clc //Initialization of variables l = 12 //ft b = 5 //ft a = 40 //degree R = 3.25 //ft S0 = 0.0014 n = 0.012 V = 10.2 // ft/s g = 32.2 //ft/s^2 // Calculations A = l*b + b*(b/tand(a)) Q = (1.49/n)*A*(R^(2/3))*(S0^(0.5)) //cfs Fr = V/(g*b)^0.5 // results printf(" the flow rate is %.f cfs",Q) printf("\nthe froude number is %.3f",Fr)
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Ex1_48.sce
clear // // // //Variable declaration D8=1.42 //diameter of 8th ring(cm) D8dash=1.25 //changed diameter of 8th ring(cm) //Calculation mew=D8**2/D8dash**2 //refractive index of liquid //Result printf("\n refractive index of liquid is %0.2f ",mew)
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4_7.sce
clc; s1=1.7189; v1=0.0978;//m^3 p1=2.01;//bar p2=10;//bar lamda=1.1; v2=v1*(p1/p2)^(1/lamda); s_1=1.7564;//kJ/kg K s_2=1.7847;//kJ/kg K v_1=0.0228;//m^3 v_2=0.0222;//m^3 v_3=0.0233;//m^3 s2=s_1+[(v_1-v_2)/(v_3-v_2)]*(s_2-s_1) disp("increase in entropy"); disp("kJ/kg K",s2-s1)
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clear // // // //Variable declaration d=0.08*10**-3 //thickness(m) A=8*10**-4 //area(m**2) epsilonr=2.56 epsilon0=8.84*10**-12 tan_delta=0.7*10**-4 new=10**6 //frequency(Hz) //Calculation C=A*epsilon0*epsilonr/d //capacitance(farad) epsilonrdash=tan_delta*epsilonr omega=2*%pi*new R=d/(epsilon0*epsilonrdash*omega*A) //parallel loss resistance(ohm) //Result printf("\n capacitance is %0.1f *10**-12 farad",C*10**12) printf("\n parallel loss resistance is %0.0f mega ohm",R/10**6)
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//chapter 31 //example4 clc //given m=9.1*10^-31 //in kg n=8.4*10^28 //in m-1 e=1.6*10^-19 //in coul p=1.7*10^-8 //in ohm-m v=1.6*10^8 //in cm/sec T=2*m/(n*p*e^2) disp(T,"(a) Mean time b/w collisions in sec is") Lambda=T*v disp(Lambda,"(b) Mean free path in cm is")
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clear //Given Pc=50 Ma=0.8 Ma1=0.1 //Calculation Ps=(1/2.0)*Ma**2*Pc Ps1=(1/2.0)*Ma1**2*Pc //Result printf("\n total sideband at 80percentageis %0.3f KW",Ps) printf("\n total sideband at 10percentageis %0.3f KW",Ps1)
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//Chapter 2 //Example 2.5 //Page 61 clear; clc; R1 = 2000.00; R2 = 2000.00; R3 = 2000.00; R4 = 2050.00; V = 5.00; Rg = 50.0; //Calculation of Offset Current printf("From equation the offset voltage is Vth. \n") //Calculation of Vth x = V *(((R3*R2)-(R1*R4))/((R1+R3)*(R2+R4))) printf("Vth = %f V \n",x) //Calculation of Thevenin Resistance printf("We next find the bridge Thevenin Resistance form equation as : ") y = ((R1*R2)/(R1+R2))+((R3*R4)/(R3+R4)) printf("Rth = %f ohm \n",y) //Calculation of Current printf("Finally the current is given by the equation ") z = x/(y + Rg) printf("Ig = %f Ampere \n",z) printf("The negative sign on current simply means that current flows fromright to left.")
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// Example 4.7 page no-207 clear clc vce = - 0.07 //V vbe = - 0.21 //V. vcc=-9 rc=1 //K-Ohm rb=30 //K-Ohm ic=(vcc-vce)/rc ib=(vcc-vbe)/rb vbc=vbe-vce printf("\nIc = %.2f mA\nIB = %.3f mA\nVbc = %.2f V",ic,ib,vbc)
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pot.sce
//delta: tolerancia entre dos aproximaciones consecutivas function lambda = pot(A, maxit, delta) n=size(A,1) w=zeros(n) z=zeros(n) z(n)=1 //aproximación inicial. lambda=z for i=1:maxit w1=w z1=z lambda1=lambda w= A * z1 z= w /norm(w,'inf') lambda =(z' * A * z) / (z' * z) if (norm( lambda - lambda1)<delta) break; end end endfunction
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clc clear //input rl=10;//resistance of an inductor in ohms l=0.05;//inductaance of an inductor in henry rc=20;//resistance in series with a capacitor in ohms c=150*(10^-6);//capacitance of a capacitor in farad ///inductor is in parallel with the series circuit containing a resistor and a capacitor v=240;//supply voltage in volts f=50;//supply frequency in hertz //calculations xl=2*%pi*f*l;//inductive reactance in ohms z1=((rl^2)+(xl^2))^0.5;//impedance of the inductor in ohms i1=v/z1;//current in inductor in amperes phi1=rl/z1;//power factor of inductor xc=1/(2*%pi*f*c);//capacitive reactance in ohms z2=((rc^2)+(xc^2))^0.5;//impedance of series circuit in ohms i2=v/z2;//current in series circuit in amperes phi2=rc/z2;//power factor of series circuit i=(i1*phi1)+(i2*phi2);//total in phase component in amperes P=(v*i);//total power in watts //output mprintf('the active power taken from the supply is %3.0f W',P)
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//Caption:time_response_for_unit_impulse_and_step_function //example 6.10.2 //page 171 //G(s)=(4*s+1)/4*(s^2);H(s)=1; clc; s=%s; syms t; G=(4*s+1)/(4*(s^2))//G(s) b=1; a=G/.(b); disp(a,"C(s)/R(s)="); //for unit impulse response R(s)=1 ; so C(s)=a; disp("for unit impulse response R(s)=1 ; so C(s)=a;") disp(a,"C(s)="); c=ilaplace(a,s,t); disp(c,"c(t)="); //for unit step response R(s)=1/s disp('for unit step response R(s)=1/s, so'); d=a*(1/s); disp(d,"C(s)="); e=ilaplace(d,s,t); disp(e,"c(t)=");
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//Part A Chapter 4 Example 7 clc; clear; close; M=16;//molecular weight p1=101.3;//KPa p2=600;//MPa T1=20+273;//K n=1.3;//constant Cp=1.7;//KJ/KgK UGC=8.3143*10^3;//Universal Gas constant R=UGC/M/1000;//KJ/KgK Cv=Cp-R;//KJ/KgK Gamma=Cp/Cv;//constant T2=T1*(p2/p1)^((n-1)/n);//K W=R*(T2-T1)/(n-1);// Q=W*(Gamma-n)/(Gamma-1);//Kj/Kg disp("Heat = "+string(Q)+" KJ");
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clc A= 1 disp("A= "+string(A)+"cm^2") //initializing value of diode area Na=5*10^17 disp("Na = "+string(Na)+"cm^-3") //initializing value of p side doping Nd=10^16 disp("Nd = "+string(Nd)+"cm^-3") //initializing value of n side doping Dn = 20 disp("Dn= "+string(Dn)+"cm^2/s")//initializing value of electron diffusion coefficient Dp = 10 disp("Dp= "+string(Dp)+"cm^2/s")//initializing value of hole diffusion coefficient Tn = 3*10^-7 disp("Tn= "+string(Tn)+"s")//inializing value of electron minority carrier lifetime Tp = 10^-7 disp("Tp= "+string(Tp)+"s")//inializing value of hole minority carrier lifetime kbT = 0.026 disp("kbT = "+string(kbT)+"eV/K") //initializing value of kbT at 300K IL = 25*10^-3 disp("IL= "+string(IL)+"A")//initializing value of photocurrent e = 1.6*10^-19 disp("e= "+string(e)+"C")//initializing value of charge of electron ni = 1.5*10^10 disp("ni = "+string(ni)+"cm^-3") //initializing value of electron density of ionisation electron for silicon Ln = sqrt(Dn*Tn) disp("The electron diffusion length is ,Ln = sqrt(Dn*Tn)= "+string(Ln)+"cm")//calculation Lp = sqrt(Dp*Tp) disp("The hole diffusion length is ,Lp = sqrt(Dp*Tp)= "+string(Lp)+"cm")//calculation Io = A*e*(ni)^2*((Dn/(Ln*Na))+(Dp/(Lp*Nd))) disp("The saturation current is ,Io = A*e*(ni)^2*((Dn/(Ln*Na))+(Dp/(Lp*Nd)))= "+string(Io)+"A")//calculation Voc= (kbT)*log(1+(IL/Io)) disp("The open circuit voltage is ,Voc= (kbT)*log(1+(IL/Io))= "+string(Voc)+"V")//calculation
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clc; //page no 8-9 //Example 8.3 disp("at 1000kHz"); Q=80; fi=455*10^3;//in Hz fs=1000*10^3;//in Hz fsi=[fs+(2*fi)]*10^(-3); disp(+'kHz',fsi,'fsi='); rho=[(fsi*10^3)/fs]-[fs/(fsi*10^3)]; disp(rho,'rho='); //Rounding rho to 3 digits rho1=1.386; alpha=sqrt(1+(Q^2*rho1^2)); disp(alpha,'Rejection ratio is'); disp("at 50MHz"); fs2=50*10^6; fsi2=(fs2+2*fi)*10^(-6); disp(+'MHz',fsi2,'fsi='); rho2=[(fsi2*10^6)/fs2]-[fs2/(fsi2*10^6)]; disp(rho2,'rho='); //rounding rho2 to 0.036 rho3=0.036; alpha2=sqrt(1+(Q^2*rho3^2)); disp(alpha2,'Rejection ratio is');
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clc; clear; E=10^4 //Electric field in V/cm e=1.6*10^-19 //in J epsilon_r=11.7 //in F/cm epsilon_0=8.85*10^-14 //in F/cm //Calculation del_phi=sqrt((e*E)/(4*%pi*epsilon_r*epsilon_0)) xm=sqrt(e/(16*%pi*epsilon_r*epsilon_0*E)) mprintf("Schottkybarrier-lowering for Si-metal contact= %0.3f V\n",del_phi) mprintf("maximum barrier height= %1.2e cm",xm)
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//EXAMPLE 1-15 PG NO-22 I1=0.04; //CURRENT I2=0.01; //CURRENT V1=200; //VOLTAGE R=V1/I1; //Resistance disp('i)resistance (R) = '+string (R)+' ohm'); V2=10; //VOLTAGE I3=50; //CURRENT A=0.1; //AMMETER RESISTANCE R1=(V2/I3)-0.1; disp('i)Resistance (R1) = '+string (R1)+' ohm'); V3=5000; V4=250; I=I3/V3; disp('i)Current (I) = '+string (I)+' A'); R2=(V4-I3)/I; disp('i)resistance (R2) = '+string (R2)+' ohm');
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jan.immediate_drawing = "off" delete(Axes(3).children) // Deleta as polylines que estejam no eixo plot(Axes(3),t',Dt') // Plota os deslocamentos nodais Axes(3).data_bounds(2) = T1 select find(radioBut.value) case 2 plot(Axes(3),t',[T' Dt'/lambda]) legendas = ["Dt/lambda" "T"] case 3 plot(Axes(3),t',[NormaErro' RL']) legendas = ["RL" "||e||*"+string(FSnormaErro)] case 4 plot(Axes(3),t',[kapa' kapaReg']) legendas = ["Curvatura Regularizada" "Curvatura Não-Regularizada"] end HistATSstr = gce().parent.children // Recupera os compounds atuais do eixo HistATSstr = flipdim(HistATSstr,1) // Inverte o vetor de compounds HistATSstr(1).children.tag = "Dt" if find(radioBut.value)>1 then for i=1:2 HistATSstr(2).children(i).tag = legendas(i) end end // Lista dos gráficos de deslocamentos listaGraficos(3).string = ["Intervalo de tempo - Dt"] if find(radioBut.value)>1 then; listaGraficos(3).string($+1) = "Parâmetros da estratégia" end listaGraficos(3).enable = "on" HistATSstr.visible = "off" listaGraficos(3).value =[1] execstr(listaGraficos(3).callback) jan.immediate_drawing = "on"
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clc clear disp("Example 8.49a") printf("\n") disp("Prove the following boolean identities") disp("A+BC=(A+B)(A+C)") A=[0 0 0 0 1 1 1 1] B=[0 0 1 1 0 0 1 1] C=[0 1 0 1 0 1 0 1] for i=1:length(A) Y(i)=A(i)+(B(i)*C(i)) if(Y(i)==2) Y(i)=1 end end for i=1:length(A) Z(i)=(A(i)+B(i))*(A(i)+C(i)) if(Z(i)==2) Z(i)=1 end if(Z(i)==3) Z(i)=1 end if(Z(i)==4) Z(i)=1 end end for i=1:length(A) if(Z(i)==Y(i)) printf("_") else printf("NOT") abort end end printf("proved")
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//Example 1.25.b // the time lag clc; clear; close; //given data : t1=50; // in seconds t2=500; // in seconds w=2*%pi/t2; P=atan(w*t1) T=(1/w)*P disp(T,"the time lag,T(seconds) = ")
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clc N=8;................................//order of 8 P1=0.95; P2=0.05; P8=((1-P2)^8)*100; disp("%",P8,"Probability of finding 8kHz channel is");
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function [y]=intersp(s,nint) [o,i]=argn(0); if i <> 2 then error(58); end; if type(s) <> 1 then error(53,1); end; if type(nint) <> 1 then error(53,2); end; if maxi(size(s)) = 1 then error(89,1); end; if nint <= 1 then error(36,1); end; // M=prod(size(s)); x=(0:M-1)/(M-1); xd=(0:nint-1)/(nint-1); d=splin(x,s); y=interp(xd,x,s,d);
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//Example 15.2. clc format(6) disp("To find the range over which capacitance is to be varied") disp("Frequency of oscillation of Hartley oscillator is") disp(" fo = 1 / 2*pi*sqrt((L1-L2)*C)") disp("Therfore, C = 1 / 4*pi^2*(L1+L2)*fo^2") disp("When fo = 950 kHz") C=1/(4*(%pi^2)*((2*10^-3)+(20*10^-6))*((950*10^3)^2)) //farady x1=C*10^12 //pF disp(x1," C(pF) =") disp("When fo = 2050 kHz") C=1/(4*(%pi^2)*((2*10^-3)+(20*10^-6))*((2050*10^3)^2)) //farady x1=C*10^12 //pF format(5) disp(x1," C(pF) =") disp("Hence, the range of capacitance is from 2.98 pF to 13.89 pF")
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t = poly(0,'t'); e = (0.2*t)-(5e-04*t^2); // e.m.f. as a function of temperature in mV e0 = horner(e, 0); // e.m.f. at t = 0 degree e100 = horner(e, 100); // e.m.f. at t = 100 degree e50 = horner(e, 50); // e.m.f. at t = 50 degreer r = (100/e100)*e50; // Reading of thermocouple at t = 50degree disp("degree",r,"Reading of thermocouple at t = 50degree is")
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clear all; clc; disp("Scilab Code Ex 6.27 : ") //Given: sigma_y = 250; //MPa t = 12.5; //mm w = 200; //mm h = 225; //mm //Maximum Elastic Moment: yy = (h+t)/2; I1 = (1/12)*(w*t^3) + (w*t*yy^2); I = (1/12)*(t*h^3) + 2*(I1); c = 125; //mm My = (sigma_y*I)/(c); //Flexure Formula //Plastic Moment: C1= sigma_y*t*(h/2); C2= sigma_y*t*(w); Mp = (2*56.25*C1) + (2*yy*C2); //Shape Factor: k = Mp/My; //Display: printf("\n\nThe shape factor for the beam = %1.2f ',k); //------------------------------------------------------------------------END---------------------------------------------------------------------------------------
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Example6_5.sce
//clear// //Caption:To find primary photocurrent and multiplication factor //Example6.5 //page230 clear; clc; close; etta = 0.65; //quantum efficiency of silicon qavalanche photodiode C = 3*(10^8); //free space velocity in m/s Lambda = 900e-09;//wavelength in meters q = 1.6*(10^-19);//charge in coulombs h = 6.625*(10^-34);//planks constant v = C/Lambda; //frequnecy in Hz Pin = 0.5*10^-06;//optical power Ip = ((etta*q)/(h*v))*Pin; Im = 10*(10^-06); //multiplied photocurrent M = Im/Ip; //multiplication factor disp(Ip*10^6,'Primary photocurrent in uAmps Ip=') disp(ceil(M),'Primary photocurrent is multiplied by a factor of M =') //Result //Primary photocurrent in uAmps Ip = 0.2354717 //Primary photocurrent is multiplied by a factor of M = 43.
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function csdp(C,A1,b,K) funcprot(0) A = sdpasparse(A1,K); a = scilab_io(C,A,b,K); endfunction
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dutycycle.sci
function [d, initialcross, finalcross, nextcross, midreference]= dutycycle(x, varargin) // This function estimate duty cycle of bilevel waveform pulses. // Calling Sequence // d=dutycycle(x) // d= dutycycle(X,Fs) // d=dutycycle(x, t) // d= dutycycle(tau, prf) // d=dutycycle (x, t, 'Polarity', pol) // d=dutycycle(x, t, 'MidPercentReferenceLevel', N ) // d=dutycycle(x, t, 'Tolerance', M) // d=dutycycle(x, t,'StateLevels', O) // [d initialcross finalcross nextcross midreference]=dutycycle(x) // [d initialcross finalcross nextcross midreference]=dutycycle(x, t) // [d initialcross finalcross nextcross midreference]=dutycycle(x, Fs) // [d initialcross finalcross nextcross midreference]=dutycycle(x, t, 'Polarity', pol) // [d initialcross finalcross nextcross midreference]=dutycycle(x, t, 'MidPercentReferenceLevel', N ) // [d initialcross finalcross nextcross midreference]= dutycycle(x, t, 'Tolerance', M) // [d initialcross finalcross nextcross midreference]= dutycycle(x, t,'StateLevels', O) // [d initialcross finalcross nextcross midreference]= dutycycle(x, t,'StateLevels', O, 'fig', on or off) // // Parameters // x: real vector. // Fs: specifies the sample rate, Fs, as a positive scalar, where the first sample instant corresponds to a time of zero. // t: defiene instant sample time t as vector with same length of x, or specifies the sample rate, t, as a positive scalar. // tau: define real scalar input pulse width TAU (in seconds). // prf: pulse repetition frequency PRF (in Hz). The product of TAU and PRF must be less than or equal to 1. // Polarity: specify the polarity of the pulse as either 'positive' or 'negative', where the default value is 'positive'. // MidPercentReferenceLevel: specify the mid percent reference leves as a percentage, default value of N is 50. // Tolerance: define the tolerance value as real scaler value, where default value of M is 2.0. // StateLevels: define the lower and upper state levels as two element real vector. // fig: specify the logical input value to display figure as one of 'on' or 'off', where the default input in 'off'. // d: returns the ratio of the pulse width to the pulse period for each positive-polarity pulse // initialcross: returns a vector of initial cross values of bilevel waveform transitions X // finalcross: returns a vector of final cross values of bilevel waveform transitions X // nextcross: returns a vector of next cross values of bilevel waveform transitions X // midreference: return mid reference value corrosponding to mid percenr reference value. // Examples // x=[1.2, 5, 10, -20, 12] //t=1:length(x) //d=dutycycle(x, t) // See also // Authors // Jitendra Singh // run statelevels and midcross function before running risetime function. if or(type(x)==10) then error ('Input arguments must be double.') end if sum(length(x))==1 & length(varargin)==0 then error('You need exactly two inputs specified when TAU is a scalar.') elseif sum(length(x))==1 & type(varargin(1))==1 then if length(argn(1))>1 then error('Too many outputs specified when TAU is a scalar.'); end dd=x*varargin(1); if or(dd>1) then error('The product of TAU and PRF should be less than or equal to 1.') else d=x*varargin(1); end else if length(varargin)==0 then varargin=varargin; end sindex=[]; if length(varargin)>=1 then a=1; for i=1:length(varargin) if type(varargin(i))==10 then sindex(a)=i; a=a+1; end end end pol='POSITIVE'; polidx=[]; fig='OFF' index_on=[]; if (~isempty(sindex)) then for j=1:length(sindex) select convstr(varargin(sindex(j)), 'u') // validating input variable names case {'STATELEVELS'} if length(varargin) <=sindex(j) then error(strcat(['parameter StateLevels required a value'])); end if type(varargin(sindex(j)+1))==1 then levels=varargin(sindex(j)+1); elseif type(varargin(sindex(j)+1))==10 & convstr(varargin(sindex(j)+1), 'u')=='MIDPERCENTREFERENCELEVEL' | convstr(varargin(sindex(j)+1),'u')== 'TOLERANCE' | convstr(varargin(sindex(j)+1), 'u')=='FIG' | convstr(varargin(sindex(j)+1), 'u')=='POLARITY' then error('parameter StateLevels required a value.') elseif type(varargin(sindex(j)+1))==10 then error('Expected STATELEVELS to be one of these types: double, Instead its type was char.') end case {'MIDPERCENTREFERENCELEVEL'} if length(varargin) <=sindex(j) then error(strcat(['parameter MidPercentRefernceLevel required a value.'])); end if type(varargin(sindex(j)+1))==1 then midpercentval= varargin(sindex(j)+1); elseif type(varargin(sindex(j)+1))==10 & convstr(varargin(sindex(j)+1), 'u')=='STATELEVELS' | convstr(varargin(sindex(j)+1),'u')== 'TOLERANCE' | convstr(varargin(sindex(j)+1), 'u')=='FIG' | convstr(varargin(sindex(j)+1), 'u')=='POLARITY' then error('parameter MidPercentRefernceLevel required a value.') elseif type(varargin(sindex(j)+1))==10 then error('Expected MidPercentRefernceLevel to be one of these types: double, Instead its type was char.') end case {'TOLERANCE'} if length(varargin) <=sindex(j) then error(strcat(['parameter Tolerance required a value"])); elseif type(varargin(sindex(j)+1))==1 then tolerance= varargin(sindex(j)+1); elseif type(varargin(sindex(j)+1))==10 & convstr(varargin(sindex(j)+1), 'u')== 'STATELEVELS' | convstr(varargin(sindex(j)+1), 'u')== 'MIDPERCENTREFERENCELEVEL' | convstr(varargin(sindex(j)+1), 'u')=='FIG' | convstr(varargin(sindex(j)+1), 'u')=='POLARITY' then error('parameter Tolerance required a value.'); elseif type(varargin(sindex(j)+1))==10 then error('Expected Tolerance to be one of these types: double, Instead its type was char.'); end case {'FIG'} if length(varargin) <=sindex(j) then error(strcat(['parameter fig required a value.'])); end if type(varargin(sindex(j)+1))==1 then error ('Expected fig to match one of these strings: on or off'); elseif type(varargin(sindex(j)+1))==10 & convstr(varargin(sindex(j)+1), 'u')=='STATELEVELS' | convstr(varargin(sindex(j)+1), 'u')== 'TOLERANCE' | convstr(varargin(sindex(j)+1), 'u')=='MIDPERCENTREFERENCELEVEL' | convstr(varargin(sindex(j)+1), 'u')=='POLARITY' then error('parameter fig required a value.') else fig= convstr(varargin(sindex(j)+1), 'u'); end if fig == 'OFF' | fig == 'ON' then else error('Expected fig to match one of these strings: on or off'); end case{'ON'} index_on=sindex(j) if length(varargin) == 1 then error ('Unexpected input.') elseif type(varargin(sindex(j)-1))==1 then error ('Unexpected input.'); elseif convstr(varargin(sindex(j)-1), 'u')~='FIG' then error('Unexpected input'); end case{'OFF'} if length(varargin) == 1 then error ('Unexpected input.') elseif type(varargin(sindex(j)-1))==1 then error ('Unexpected input.'); elseif convstr(varargin(sindex(j)-1), 'u')~='FIG' then error('Unexpected input'); end case{'POLARITY'} if length(varargin)<=sindex(j) then error ('Parameter polarity requires a value.') end if type( varargin(sindex(j)+1))==1 then error ('POLARITY must be either ''Positive'' or ''Negative''.') elseif type(varargin(sindex(j)+1))==10 & convstr(varargin(sindex(j)+1), 'u')== 'STATELEVELS' | convstr(varargin(sindex(j)+1), 'u')== 'MIDPERCENTREFERENCELEVEL' | convstr(varargin(sindex(j)+1), 'u')== 'TOLERANCE' | convstr(varargin(sindex(j)+1), 'u')=='FIG' then error ('Parameter polarity requires a value.') elseif convstr(varargin(sindex(j)+1), 'u') ~= 'POSITIVE' & convstr(varargin(sindex(j)+1), 'u')~= 'NEGATIVE' then error ('POLARITY must be either ''Positive'' or ''Negative''.'); else polidx=sindex(j); end case {'POSITIVE'} if j==1 then error(strcat(['Unexpected option:', " ", varargin(sindex(j))])); elseif convstr(varargin(sindex(j)-1), 'u') ~= 'POLARITY' error(strcat(['Unexpected option:', " ", varargin(sindex(j))])); else polinputidx= sindex(j); pol= convstr(varargin (sindex(j)), 'u') ; end case {'NEGATIVE'} if j==1 then error(strcat(['Unexpected option:', " ", varargin(sindex(j))])); elseif convstr(varargin(sindex(j)-1), 'u') ~= 'POLARITY' error(strcat(['Unexpected option:', " ", varargin(sindex(j))])); else polinputidx= sindex(j); pol= convstr(varargin (sindex(j)), 'u') ; end else error(strcat(['Invalid optional argument'," ", varargin(sindex(j))])); end // switch end // for end // if // if length(index_on)>0 then varargin(index_on)='OFF'; end if length(polidx)>0 then varargin(polidx)=null(); varargin(polinputidx-1)=null(); end [crossval midref levels t tolerance]= midcross(x, varargin(:)); upperbound= levels(2)- (tolerance/100)*(levels(2)-levels(1)); mostupperbound=levels(2)+ (tolerance/100)*(levels(2)-levels(1)); lowerbound= levels(1)+ (tolerance/100)*(levels(2)-levels(1)); mostlowerbound=levels(1)- (tolerance/100)*(levels(2)-levels(1)); int_pos=[]; final_pos=[]; int_neg=[]; final_neg=[]; nextcross_pos=[]; nextcross_neg=[]; if length(crossval)>=2 then if x(1)>midref then int_pos=crossval(2:2:$); final_pos=crossval(3:2:$); int_neg=crossval(1:2:$); final_neg=crossval(2:2:$); else int_pos=crossval(1:2:$); final_pos=crossval(2:2:$); int_neg=crossval(2:2:$); final_neg=crossval(3:2:$); end if length(int_pos)>=2 then nextcross_pos=int_pos(2:$); end if length(int_neg)>=2 then nextcross_neg=int_neg(2:$); end if length(int_pos)>length(final_pos) then int_pos=int_pos(1:($-1)) elseif length(int_neg)>length(final_neg) then int_neg=int_neg(1:($-1)) end if length(int_pos)>length(nextcross_pos) then int_pos=int_pos(1:($-1)) end if length(final_pos)>length(nextcross_pos) final_pos=final_pos(1:($-1)) end if length(int_neg)>length(nextcross_neg) then int_neg=int_neg(1:($-1)); end if length(final_neg)>length(nextcross_neg) then final_neg=final_neg(1:($-1)); end end d=[]; if pol=='POSITIVE' then initialcross=int_pos; finalcross=final_pos; nextcross=nextcross_pos; d=(finalcross-initialcross)./(nextcross-initialcross); else initialcross=int_neg; finalcross=final_neg nextcross=nextcross_neg; d=(finalcross-initialcross)./(nextcross-initialcross); end midreference=midref; //midreference=midref; if fig=='ON' then // if the defined output is only 1, the it will provide the graphical representation of //levels if length(d)==0 then plot(t,x, 'LineWidth',1, 'color', 'black') // xtitle('', 'Time (second)','Level (Volts)' ); plot(t,midreference * ones(1, length(t)),'-r', 'LineWidth',0.5) plot(t,mostupperbound * ones(1, length(t)),'--r', 'LineWidth',0.5) plot(t,levels(2) * ones(1, length(t)),'--k', 'LineWidth',0.5) plot(t,upperbound * ones(1, length(t)),'--r', 'LineWidth',0.5) plot(t,lowerbound *ones(1, length(t)),'--g', 'LineWidth',0.5) plot(t,levels(1) * ones(1, length(t)),'--k', 'LineWidth',0.5) plot(t,mostlowerbound * ones(1, length(t)),'--g', 'LineWidth',0.5) xlabel("Time (second)", "fontsize",3, "color", "black" ) ylabel("Level (Volts)", "fontsize",3, "color", "black" ) legends(["Signal"; "upper boundary"; "upper state"; "lower boundary"; "mid reference"; "upper boundary"; "lower state"; "lower boundary"], [[1;1], [5;2], [1;2], [5;2], [5;1], [3;2], [1;2], [3;2]], opt='?') else plot(t,x, 'LineWidth',1, 'color', 'black') plot(t,midreference * ones(1, length(t)),'-g', 'LineWidth',0.5) //n=length(finalcross); // rects=[initialcross(1:2:$); levels(2)*ones(d(1:2:$)); p(1:2:$); (levels(2)-levels(1))*ones(p(1:2:$))] // // // col=-10*ones(p(1:2:$)); midc=[nextcross, initialcross, finalcross]; midcross=gsort(midc, 'c','i' ) plot(midcross, midreference*ones(midcross), "r*", 'MarkerSize',15); plot(t,mostupperbound * ones(1, length(t)),'--r', 'LineWidth',0.5) plot(t,levels(2) * ones(1, length(t)),'--k', 'LineWidth',0.5) plot(t,upperbound * ones(1, length(t)),'--r', 'LineWidth',0.5) plot(t,midreference * ones(1, length(t)),'-r', 'LineWidth',0.5) plot(t,lowerbound *ones(1, length(t)),'--g', 'LineWidth',0.5) plot(t,levels(1) * ones(1, length(t)),'--k', 'LineWidth',0.5) plot(t,mostlowerbound * ones(1, length(t)),'--g', 'LineWidth',0.5) // xrects(rects, col); xlabel("Time (second)", "fontsize",3, "color", "black" ) ylabel("Level (Volts)", "fontsize",3, "color", "black" ) legends([ "Signal"; "mid cross"; "upper boundary"; "upper state"; "lower boundary"; "mid reference"; "upper boundary"; "lower state"; "lower boundary"], [ [1;1], [-10;5], [5;2], [1;2], [5;2], [5;1], [3;2],[1;2], [3;2]], opt='?') end end end // // endfunction
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Bot Fast Strafes.bot;Quaker Bot Fast Strafes.bot;Quaker Bot Fast Strafes.bot;Quaker Bot Fast Strafes.bot;Quaker Bot Fast Strafes.bot;Quaker Bot Fast Strafes.bot;Quaker Bot Fast Strafes.bot;Quaker Bot Fast Strafes.bot;Quaker Bot Fast Strafes.bot;Quaker Bot Fast Strafes.bot;Quaker Bot Fast Strafes.bot;Quaker Bot Fast Strafes.bot;Quaker Bot Fast Strafes.bot;Quaker Bot Fast Strafes.bot;Quaker Bot Fast Strafes.bot;Quaker Bot Fast Strafes.bot;Quaker Bot Fast Strafes.bot;Quaker Bot Fast Strafes.bot;Quaker Bot Fast Strafes.bot;Quaker Bot Fast Strafes.bot;Quaker Bot Fast Strafes.bot;Quaker Bot Fast Strafes.bot PlayerMaxLives=0 BotMaxLives=0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0;0 PlayerTeam=1 BotTeams=2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2;2 MapName=rave.map MapScale=3.8125 BlockProjectilePredictors=true BlockCheats=true InvinciblePlayer=true InvincibleBots=false Timescale=1.0 BlockHealthbars=true TimeRefilledByKill=0.0 ScoreToWin=0.0 ScorePerDamage=0.0 ScorePerKill=0.0 ScorePerMidairDirect=0.0 ScorePerAnyDirect=0.0 ScorePerTime=0.0 ScoreLossPerDamageTaken=0.0 ScoreLossPerDeath=0.0 ScoreLossPerMidairDirected=0.0 ScoreLossPerAnyDirected=0.0 ScoreMultAccuracy=false ScoreMultDamageEfficiency=false ScoreMultKillEfficiency=false GameTag=IRL WeaponHeroTag=ur the weapon baby DifficultyTag=3 AuthorsTag=bozott BlockHitMarkers=false BlockHitSounds=false BlockMissSounds=true BlockFCT=false Description=EVERYONES A DJ GameVersion=1.0.8.0 ScorePerDistance=0.0 MBSEnable=true MBSTime1=0.25 MBSTime2=0.5 MBSTime3=0.75 MBSTime1Mult=1.0 MBSTime2Mult=2.0 MBSTime3Mult=3.0 MBSFBInstead=false MBSRequireEnemyAlive=false [Aim Profile] Name=At Feet MinReactionTime=0.3 MaxReactionTime=0.4 MinSelfMovementCorrectionTime=0.001 MaxSelfMovementCorrectionTime=0.05 FlickFOV=30.0 FlickSpeed=1.5 FlickError=15.0 TrackSpeed=3.5 TrackError=3.5 MaxTurnAngleFromPadCenter=75.0 MinRecenterTime=0.3 MaxRecenterTime=0.5 OptimalAimFOV=30.0 OuterAimPenalty=1.0 MaxError=40.0 ShootFOV=15.0 VerticalAimOffset=-200.0 MaxTolerableSpread=5.0 MinTolerableSpread=1.0 TolerableSpreadDist=2000.0 MaxSpreadDistFactor=2.0 [Aim Profile] Name=Low Skill At Feet MinReactionTime=0.35 MaxReactionTime=0.45 MinSelfMovementCorrectionTime=0.001 MaxSelfMovementCorrectionTime=0.05 FlickFOV=30.0 FlickSpeed=1.5 FlickError=20.0 TrackSpeed=3.0 TrackError=5.0 MaxTurnAngleFromPadCenter=75.0 MinRecenterTime=0.3 MaxRecenterTime=0.5 OptimalAimFOV=30.0 OuterAimPenalty=1.0 MaxError=60.0 ShootFOV=25.0 VerticalAimOffset=-200.0 MaxTolerableSpread=5.0 MinTolerableSpread=1.0 TolerableSpreadDist=2000.0 MaxSpreadDistFactor=2.0 [Aim Profile] Name=Low Skill MinReactionTime=0.35 MaxReactionTime=0.45 MinSelfMovementCorrectionTime=0.001 MaxSelfMovementCorrectionTime=0.05 FlickFOV=30.0 FlickSpeed=1.5 FlickError=20.0 TrackSpeed=3.0 TrackError=5.0 MaxTurnAngleFromPadCenter=75.0 MinRecenterTime=0.3 MaxRecenterTime=0.5 OptimalAimFOV=30.0 OuterAimPenalty=1.0 MaxError=60.0 ShootFOV=25.0 VerticalAimOffset=0.0 MaxTolerableSpread=5.0 MinTolerableSpread=1.0 TolerableSpreadDist=2000.0 MaxSpreadDistFactor=2.0 [Aim Profile] Name=Default MinReactionTime=0.3 MaxReactionTime=0.4 MinSelfMovementCorrectionTime=0.001 MaxSelfMovementCorrectionTime=0.05 FlickFOV=30.0 FlickSpeed=1.5 FlickError=15.0 TrackSpeed=3.5 TrackError=3.5 MaxTurnAngleFromPadCenter=75.0 MinRecenterTime=0.3 MaxRecenterTime=0.5 OptimalAimFOV=30.0 OuterAimPenalty=1.0 MaxError=40.0 ShootFOV=15.0 VerticalAimOffset=0.0 MaxTolerableSpread=5.0 MinTolerableSpread=1.0 TolerableSpreadDist=2000.0 MaxSpreadDistFactor=2.0 [Bot Profile] Name=Quaker Bot Fast Strafes DodgeProfileNames=Short Strafes DodgeProfileWeights=1.0 DodgeProfileMaxChangeTime=5.0 DodgeProfileMinChangeTime=1.0 WeaponProfileWeights=1.0;1.0;2.0;1.0;1.0;1.0;1.0;1.0 AimingProfileNames=At Feet;Low Skill At Feet;Low Skill;Default;Default;Default;Default;Default WeaponSwitchTime=3.0 UseWeapons=false CharacterProfile=Quaker SeeThroughWalls=false NoDodging=false NoAiming=true [Character Profile] Name=Quaker MaxHealth=300.0 WeaponProfileNames=;;LG;;;;; MinRespawnDelay=1.0 MaxRespawnDelay=5.0 StepUpHeight=75.0 CrouchHeightModifier=0.5 CrouchAnimationSpeed=2.0 CameraOffset=X=0.000 Y=0.000 Z=80.000 HeadshotOnly=false DamageKnockbackFactor=4.0 MovementType=Base MaxSpeed=300.0 MaxCrouchSpeed=500.0 Acceleration=9000.0 AirAcceleration=16000.0 Friction=4.0 BrakingFrictionFactor=2.0 JumpVelocity=800.0 Gravity=3.0 AirControl=0.25 CanCrouch=true CanPogoJump=true CanCrouchInAir=true CanJumpFromCrouch=false EnemyBodyColor=X=0.771 Y=0.000 Z=0.000 EnemyHeadColor=X=1.000 Y=1.000 Z=1.000 TeamBodyColor=X=1.000 Y=0.888 Z=0.000 TeamHeadColor=X=1.000 Y=1.000 Z=1.000 BlockSelfDamage=false InvinciblePlayer=false InvincibleBots=false BlockTeamDamage=false AirJumpCount=0 AirJumpVelocity=0.0 MainBBType=Cylindrical MainBBHeight=320.0 MainBBRadius=58.0 MainBBHasHead=false MainBBHeadRadius=45.0 MainBBHeadOffset=0.0 MainBBHide=false ProjBBType=Cylindrical ProjBBHeight=230.0 ProjBBRadius=55.0 ProjBBHasHead=false ProjBBHeadRadius=45.0 ProjBBHeadOffset=0.0 ProjBBHide=true HasJetpack=false JetpackActivationDelay=0.2 JetpackFullFuelTime=4.0 JetpackFuelIncPerSec=1.0 JetpackFuelRegensInAir=false JetpackThrust=6000.0 JetpackMaxZVelocity=400.0 JetpackAirControlWithThrust=0.25 AbilityProfileNames=;;; HideWeapon=false AerialFriction=0.4 StrafeSpeedMult=1.0 BackSpeedMult=1.0 RespawnInvulnTime=0.0 BlockedSpawnRadius=0.0 BlockSpawnFOV=0.0 BlockSpawnDistance=0.0 RespawnAnimationDuration=0.5 AllowBufferedJumps=true BounceOffWalls=false LeanAngle=0.0 LeanDisplacement=0.0 AirJumpExtraControl=0.0 ForwardSpeedBias=1.0 HealthRegainedonkill=0.0 HealthRegenPerSec=0.0 HealthRegenDelay=0.0 JumpSpeedPenaltyDuration=0.0 JumpSpeedPenaltyPercent=0.0 ThirdPersonCamera=false TPSArmLength=300.0 TPSOffset=X=0.000 Y=150.000 Z=150.000 BrakingDeceleration=2048.0 VerticalSpawnOffset=0.0 SpawnXOffset=0.0 SpawnYOffset=0.0 InvertBlockedSpawn=false [Dodge Profile] Name=Short Strafes MaxTargetDistance=2500.0 MinTargetDistance=750.0 ToggleLeftRight=true ToggleForwardBack=false MinLRTimeChange=0.2 MaxLRTimeChange=0.5 MinFBTimeChange=0.2 MaxFBTimeChange=0.5 DamageReactionChangesDirection=false DamageReactionChanceToIgnore=0.5 DamageReactionMinimumDelay=0.125 DamageReactionMaximumDelay=0.25 DamageReactionCooldown=1.0 DamageReactionThreshold=50.0 DamageReactionResetTimer=0.5 JumpFrequency=0.8 CrouchInAirFrequency=0.0 CrouchOnGroundFrequency=0.0 TargetStrafeOverride=Ignore TargetStrafeMinDelay=0.125 TargetStrafeMaxDelay=0.25 MinProfileChangeTime=0.0 MaxProfileChangeTime=0.0 MinCrouchTime=0.3 MaxCrouchTime=0.6 MinJumpTime=0.3 MaxJumpTime=0.6 LeftStrafeTimeMult=1.0 RightStrafeTimeMult=1.0 StrafeSwapMinPause=0.0 StrafeSwapMaxPause=0.0 BlockedMovementPercent=0.5 BlockedMovementReactionMin=0.125 BlockedMovementReactionMax=0.2 [Weapon Profile] Name=LG Type=Hitscan ShotsPerClick=1 DamagePerShot=6.0 KnockbackFactor=2.0 TimeBetweenShots=0.046 Pierces=false Category=FullyAuto BurstShotCount=1 TimeBetweenBursts=0.5 ChargeStartDamage=10.0 ChargeStartVelocity=X=500.000 Y=0.000 Z=0.000 ChargeTimeToAutoRelease=2.0 ChargeTimeToCap=1.0 ChargeMoveSpeedModifier=1.0 MuzzleVelocityMin=X=2000.000 Y=0.000 Z=0.000 MuzzleVelocityMax=X=2000.000 Y=0.000 Z=0.000 InheritOwnerVelocity=0.0 OriginOffset=X=0.000 Y=0.000 Z=0.000 MaxTravelTime=5.0 MaxHitscanRange=100000.0 GravityScale=1.0 HeadshotCapable=false HeadshotMultiplier=2.0 MagazineMax=0 AmmoPerShot=1 ReloadTimeFromEmpty=0.5 ReloadTimeFromPartial=0.5 DamageFalloffStartDistance=100000.0 DamageFalloffStopDistance=100000.0 DamageAtMaxRange=7.0 DelayBeforeShot=0.0 HitscanVisualEffect=Tracer ProjectileGraphic=Ball VisualLifetime=0.05 WallParticleEffect=None HitParticleEffect=None BounceOffWorld=false BounceFactor=0.0 BounceCount=0 HomingProjectileAcceleration=0.0 ProjectileEnemyHitRadius=1.0 CanAimDownSight=true ADSZoomDelay=0.0 ADSZoomSensFactor=0.7 ADSMoveFactor=1.0 ADSStartDelay=0.0 ShootSoundCooldown=0.08 HitSoundCooldown=0.08 HitscanVisualOffset=X=0.000 Y=0.000 Z=-80.000 ADSBlocksShooting=false ShootingBlocksADS=false KnockbackFactorAir=4.0 RecoilNegatable=false DecalType=0 DecalSize=30.0 DelayAfterShooting=0.0 BeamTracksCrosshair=true AlsoShoot= ADSShoot= StunDuration=0.0 CircularSpread=true SpreadStationaryVelocity=0.0 PassiveCharging=false BurstFullyAuto=true FlatKnockbackHorizontal=0.0 FlatKnockbackVertical=0.0 HitscanRadius=0.0 HitscanVisualRadius=6.0 TaggingDuration=0.0 TaggingMaxFactor=1.0 TaggingHitFactor=1.0 ProjectileTrail=None RecoilCrouchScale=1.0 RecoilADSScale=1.0 PSRCrouchScale=1.0 PSRADSScale=1.0 ProjectileAcceleration=0.0 AccelIncludeVertical=true AimPunchAmount=0.0 AimPunchResetTime=0.05 AimPunchCooldown=0.5 AimPunchHeadshotOnly=false AimPunchCosmeticOnly=true MinimumDecelVelocity=0.0 PSRManualNegation=false PSRAutoReset=true AimPunchUpTime=0.05 AmmoReloadedOnKill=0 CancelReloadOnKill=false FlatKnockbackHorizontalMin=0.0 FlatKnockbackVerticalMin=0.0 ADSScope=No Scope ADSFOVOverride=70.0 ADSFOVScale=Quake/Source ADSAllowUserOverrideFOV=true IsBurstWeapon=false ForceFirstPersonInADS=true ZoomBlockedInAir=false ADSCameraOffsetX=0.0 ADSCameraOffsetY=0.0 ADSCameraOffsetZ=0.0 QuickSwitchTime=0.0 Explosive=false Radius=500.0 DamageAtCenter=100.0 DamageAtEdge=0.0 SelfDamageMultiplier=0.5 ExplodesOnContactWithEnemy=false DelayAfterEnemyContact=0.0 ExplodesOnContactWithWorld=false DelayAfterWorldContact=0.0 ExplodesOnNextAttack=false DelayAfterSpawn=0.0 BlockedByWorld=false SpreadSSA=1.0,1.0,-1.0,0.0 SpreadSCA=1.0,1.0,-1.0,0.0 SpreadMSA=1.0,1.0,-1.0,0.0 SpreadMCA=1.0,1.0,-1.0,0.0 SpreadSSH=1.0,1.0,-1.0,0.0 SpreadSCH=1.0,1.0,-1.0,0.0 SpreadMSH=1.0,1.0,-1.0,0.0 SpreadMCH=1.0,1.0,-1.0,0.0 MaxRecoilUp=0.0 MinRecoilUp=0.0 MinRecoilHoriz=0.0 MaxRecoilHoriz=0.0 FirstShotRecoilMult=1.0 RecoilAutoReset=false TimeToRecoilPeak=0.05 TimeToRecoilReset=0.35 AAMode=0 AAPreferClosestPlayer=false AAAlpha=0.05 AAMaxSpeed=1.0 AADeadZone=0.0 AAFOV=30.0 AANeedsLOS=true TrackHorizontal=true TrackVertical=true AABlocksMouse=false AAOffTimer=0.0 AABackOnTimer=0.0 TriggerBotEnabled=false TriggerBotDelay=0.0 TriggerBotFOV=1.0 StickyLock=false HeadLock=false VerticalOffset=0.0 DisableLockOnKill=false UsePerShotRecoil=false PSRLoopStartIndex=0 PSRViewRecoilTracking=0.45 PSRCapUp=9.0 PSRCapRight=4.0 PSRCapLeft=4.0 PSRTimeToPeak=0.095 PSRResetDegreesPerSec=40.0 UsePerBulletSpread=false PBS0=0.0,0.0 [Map Data] reflex map version 8 global entity type WorldSpawn String32 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clc //Initialization of variables z=1.2 //m y=1 //m //calculations hp=0.6 + 1/12 *y*z^3 /(0.6*y*z) //results printf("Position of hinge = %.1f m",hp)
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EXAMPLE11_44.SCE
//ANALOG AND DIGITAL COMMUNICATION //BY Dr.SANJAY SHARMA //CHAPTER 11 //Information Theory clear all; clc; printf("EXAMPLE 11.44(PAGENO 529)"); //given P_x1 = 1/2//probability of first symbol P_x2 = 1/4//probability of second symbol P_x3 = 1/8//probability of third symbol P_x4 = 1/8//probability of fouth symbol n1 = 1 n2 = 2 n3 = 3 n4 = 3 //calculations I_x1 = -log2(P_x1); I_x2 = -log2(P_x2); I_x3 = -log2(P_x3); I_x4 = -log2(P_x4); H_x = P_x1*I_x1 + P_x2*I_x2 + P_x3*I_x3 + P_x4*I_x4; L = P_x1*n1 + P_x2*n2 + P_x3*n3 + P_x4*n4; neta = H_x/L; P_neta = neta*100//efficiency in percentage //results printf("\n\nEfficiency = %.2f",neta); printf("\n\nEfficiency in percentage = %.2f percent",P_neta);
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clc Na=2*10^17 disp("Na = "+string(Na)+" /cm^3") //initializing value of acceptor ion concentration. Er=11.9 disp("Er = "+string(Er)) //initializing value of relative dielectric permittivity constant . Eo=8.854*10^-14 disp("Eo = "+string(Eo)+" F/cm") //initializing value of permittivity of free space. ni=1.5*10^10 disp("ni = "+string(ni)+"cm^-3") //initializing value of intrinsic concentration of electrons. e=1.6*10^-19 disp("e = "+string(e)+" columns") //initializing value of charge of electrons. tox=400*10^-8 disp("tox = "+string(tox)+" cm") //initializing value of thickness of p-type substrate. Vt=0.0259 disp("Vt = "+string(Vt)+" eV") //initializing value of thermal voltage. er=3.9 disp("er = "+string(er)) //initializing value of relative dielectric permittivity constant Vfp=Vt*(log(Na/(ni))) disp("Potential,Vfp=Vt*(log(Na/(ni))))="+string(Vfp)+" V")//calculation Wd=sqrt((4*Er*Eo*Vfp)/(e*Na)) disp("Depletion width,Wd=sqrt((4*Er*Eo*Vs)/(e*Nd)))="+string(Wd)+" cm")//calculation CTmin=(er*Eo/(((er/Er)*(Wd))+(tox))) disp("Minimum Capacitance,CTmin=(er*Eo/((er/Er)*(Wd)+(tox)))="+string(CTmin)+" F/cm^2")//calculation CFB=((er*Eo)/((((er/Er)*sqrt(Vt*Er*Eo/(e*Na))))+(tox))) disp("Flat band capacitance,CFB=((er*Eo)/(((er/Er)*sqrt(Vt*Er*Eo/(e*Na))))+(tox))="+string(CFB)+" F/cm^2")//calculation //the value of Na (acceptor ion concentration) and tox (thickness of p-type substrate) is provided different in the question than used in the solution. //I have used the value provided in the solution.(i.e Na=2*10^17 and tox=400*10^8cm)
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clear // // // //Variable declaration e=1.6*10^-19; //charge(coulomb) m=9*10^-31; //mass(kg) h=6.62*10^-34; //plank's constant(Js) rho=970; //density(kg/m^3) N0=6.02*10^26; //avagadro number A=23; //atomic weight //Calculations n=rho*N0/A; //concentration(electrons/m^3) ef=(h^2/(8*m))*(3*n/%pi)^(2/3); //fermi energy(J) ef=ef/e; //fermi energy(eV) //Result printf("\n fermi energy is %0.3f eV",ef) printf("\n answer varies due to rounding off errors")
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//Tested on Windows 7 Ultimate 32-bit //Chapter 9 Frequency Response of Amplifier Pg no. 301 clear; clc; //Given Gv_dB=75;//voltage gain of amplifier in dB units //Solution Gv=10^(0.1*Gv_dB);//voltage gain magnitude printf("P2/P1 = %.f",Gv);
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function y = genqammod(x,const) //GENQAMMOD General quadrature amplitude modulation // Y = GENQAMMOD(X,CONST) outputs the complex envelope of the modulation // of the message signal X using quadrature amplitude modulation. The // message signal must consist of integers between 0 and 1 less than the // length of CONST. CONST is a one dimensional vector that specifies the // signal mapping. For two-dimensional signals, the function treats each // column as 1 channel. //Check x,Nsamp, const. if ( ~isreal(x) | or(or(ceil(x)~=x)) | ~(type(x)==[1 5 10] ) ) error('comm:genqammod:Xreal'); end //Determine the size of M M = max(size(const)); // check that X are all integers within range. if (min(min(x)) < 0) | (max(max(x)) > (M-1)) error('comm:genqammod:Xreal'); end // check that const is a 1-D vector if(~isvector(const) | ~(type(const)==[1 5 8] )) error('comm:genqammod:const1d'); end // --- Assure that X, if one dimensional, has the correct orientation --- % wid = size(x,1); if(wid ==1) x = x(:); end // --- constellation needs to have the same orientation as the input -- % if(size(const,1) ~= size(x,1) ) const = const(:); end // map y = const(x+1); //ensure output is a complex data type y = complex(real(y),imag(y)); //--- restore the output signal to the original orientation --- % if(wid == 1) y = y.'; end // --- EOF --- % endfunction
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Ex1_19.sce
//Chapter 1 : Wave Optics clear; //Variable declaration lamda=5.9*10**-7 r=5.2*10**-3 //radius of ring n=10 //Calculation R=(r**2)/(n*lamda) t=(n*lamda)/2/10**-6 //Result mprintf("(i)Radius of curvature R= %f m" ,R) mprintf("\n(ii)Thickness of air film t= %.2f*10**-6 m" ,t)
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ATWM1_Working_Memory_MEG_Salient_Uncued_Run1.sce
# ATWM1 MEG Experiment scenario = "ATWM1_Working_Memory_MEG_salient_uncued_run1"; #scenario_type = fMRI; # Fuer Scanner #scenario_type = fMRI_emulation; # Zum Testen scenario_type = trials; # for MEG #scan_period = 2000; # TR #pulses_per_scan = 1; #pulse_code = 1; pulse_width=6; default_monitor_sounds = false; active_buttons = 2; response_matching = simple_matching; button_codes = 10, 20; default_font_size = 36; default_font = "Arial"; default_background_color = 0 ,0 ,0 ; write_codes=true; # for MEG only begin; #Picture definitions box { height = 382; width = 382; color = 0, 0, 0;} frame1; box { height = 369; width = 369; color = 255, 255, 255;} frame2; box { height = 30; width = 4; color = 0, 0, 0;} fix1; box { height = 4; width = 30; color = 0, 0, 0;} fix2; box { height = 30; width = 4; color = 255, 0, 0;} fix3; box { height = 4; width = 30; color = 255, 0, 0;} fix4; box { height = 369; width = 369; color = 42, 42, 42;} background; TEMPLATE "StimuliDeclaration.tem" {}; trial { sound sound_incorrect; time = 0; duration = 1; } wrong; trial { sound sound_correct; time = 0; duration = 1; } right; trial { sound sound_no_response; time = 0; duration = 1; } miss; # Start of experiment (MEG only) - sync with CTF software trial { picture { box frame1; x=0; y=0; box frame2; x=0; y=0; box background; x=0; y=0; bitmap fixation_cross_black; x=0; y=0; } expStart; time = 0; duration = 1000; code = "ExpStart"; port_code = 80; }; # baselinePre (at the beginning of the session) trial { picture { box frame1; x=0; y=0; box frame2; x=0; y=0; box background; x=0; y=0; bitmap fixation_cross_black; x=0; y=0; }default; time = 0; duration = 10000; #mri_pulse = 1; code = "BaselinePre"; port_code = 91; }; TEMPLATE "ATWM1_Working_Memory_MEG.tem" { trigger_encoding trigger_retrieval cue_time preparation_time encoding_time single_stimulus_presentation_time delay_time retrieval_time intertrial_interval alerting_cross stim_enc1 stim_enc2 stim_enc3 stim_enc4 stim_enc_alt1 stim_enc_alt2 stim_enc_alt3 stim_enc_alt4 trial_code stim_retr1 stim_retr2 stim_retr3 stim_retr4 stim_cue1 stim_cue2 stim_cue3 stim_cue4 fixationcross_cued retr_code the_target_button posX1 posY1 posX2 posY2 posX3 posY3 posX4 posY4; 42 61 292 292 399 125 1792 2992 2292 fixation_cross gabor_157 gabor_131 gabor_109 gabor_051 gabor_157 gabor_131_alt gabor_109 gabor_051_alt "1_1_Encoding_Working_Memory_MEG_P8_LR_Salient_DoChange_CuedRetrieval_300_300_399_1800_3000_2300_gabor_patch_orientation_157_131_109_051_target_position_2_4_retrieval_position_4" gabor_circ gabor_circ gabor_circ gabor_003_framed blank blank blank blank fixation_cross_white "1_1_Retrieval_Working_Memory_MEG_P8_LR_Salient_DoChange_CuedRetrieval_retrieval_patch_orientation_003_retrieval_position_4" 2 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69; 42 62 292 292 399 125 1892 2992 2192 fixation_cross gabor_008 gabor_128 gabor_045 gabor_066 gabor_008_alt gabor_128 gabor_045_alt gabor_066 "1_2_Encoding_Working_Memory_MEG_P8_LR_Salient_NoChange_CuedRetrieval_300_300_399_1900_3000_2200_gabor_patch_orientation_008_128_045_066_target_position_1_3_retrieval_position_3" gabor_circ gabor_circ gabor_045_framed gabor_circ blank blank blank blank fixation_cross_white "1_2_Retrieval_Working_Memory_MEG_P8_LR_Salient_NoChange_CuedRetrieval_retrieval_patch_orientation_045_retrieval_position_3" 1 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69; 42 62 292 292 399 125 1842 2992 2192 fixation_cross gabor_040 gabor_078 gabor_058 gabor_098 gabor_040 gabor_078_alt gabor_058 gabor_098_alt "1_3_Encoding_Working_Memory_MEG_P8_LR_Salient_NoChange_CuedRetrieval_300_300_399_1850_3000_2200_gabor_patch_orientation_040_078_058_098_target_position_2_4_retrieval_position_2" gabor_circ gabor_078_framed gabor_circ gabor_circ blank blank blank blank fixation_cross_white "1_3_Retrieval_Working_Memory_MEG_P8_LR_Salient_NoChange_CuedRetrieval_retrieval_patch_orientation_078_retrieval_position_2" 1 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69; 42 61 292 292 399 125 1992 2992 2042 fixation_cross gabor_056 gabor_095 gabor_179 gabor_029 gabor_056_alt gabor_095 gabor_179_alt gabor_029 "1_4_Encoding_Working_Memory_MEG_P8_LR_Salient_DoChange_CuedRetrieval_300_300_399_2000_3000_2050_gabor_patch_orientation_056_095_179_029_target_position_1_3_retrieval_position_1" gabor_008_framed gabor_circ gabor_circ gabor_circ blank blank blank blank fixation_cross_white "1_4_Retrieval_Working_Memory_MEG_P8_LR_Salient_DoChange_CuedRetrieval_retrieval_patch_orientation_008_retrieval_position_1" 2 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69; 42 62 292 292 399 125 2192 2992 2342 fixation_cross gabor_176 gabor_107 gabor_150 gabor_043 gabor_176_alt gabor_107 gabor_150_alt gabor_043 "1_5_Encoding_Working_Memory_MEG_P8_LR_Salient_NoChange_CuedRetrieval_300_300_399_2200_3000_2350_gabor_patch_orientation_176_107_150_043_target_position_1_3_retrieval_position_1" gabor_176_framed gabor_circ gabor_circ gabor_circ blank blank blank blank fixation_cross_white "1_5_Retrieval_Working_Memory_MEG_P8_LR_Salient_NoChange_CuedRetrieval_retrieval_patch_orientation_176_retrieval_position_1" 1 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69; 42 64 292 292 399 125 1742 2992 1942 fixation_cross gabor_161 gabor_113 gabor_076 gabor_142 gabor_161_alt gabor_113 gabor_076 gabor_142_alt "1_6_Encoding_Working_Memory_MEG_P8_LR_Salient_NoChange_UncuedRetriev_300_300_399_1750_3000_1950_gabor_patch_orientation_161_113_076_142_target_position_1_4_retrieval_position_3" gabor_circ gabor_circ gabor_076_framed gabor_circ blank blank blank blank fixation_cross_white "1_6_Retrieval_Working_Memory_MEG_P8_LR_Salient_NoChange_UncuedRetriev_retrieval_patch_orientation_076_retrieval_position_3" 1 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69; 42 62 292 292 399 125 1842 2992 1892 fixation_cross gabor_040 gabor_170 gabor_012 gabor_055 gabor_040 gabor_170_alt gabor_012 gabor_055_alt "1_7_Encoding_Working_Memory_MEG_P8_LR_Salient_NoChange_CuedRetrieval_300_300_399_1850_3000_1900_gabor_patch_orientation_040_170_012_055_target_position_2_4_retrieval_position_2" gabor_circ gabor_170_framed gabor_circ gabor_circ blank blank blank blank fixation_cross_white "1_7_Retrieval_Working_Memory_MEG_P8_LR_Salient_NoChange_CuedRetrieval_retrieval_patch_orientation_170_retrieval_position_2" 1 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69; 42 61 292 292 399 125 1792 2992 2342 fixation_cross gabor_078 gabor_145 gabor_112 gabor_027 gabor_078_alt gabor_145 gabor_112_alt gabor_027 "1_8_Encoding_Working_Memory_MEG_P8_LR_Salient_DoChange_CuedRetrieval_300_300_399_1800_3000_2350_gabor_patch_orientation_078_145_112_027_target_position_1_3_retrieval_position_3" gabor_circ gabor_circ gabor_062_framed gabor_circ blank blank blank blank fixation_cross_white "1_8_Retrieval_Working_Memory_MEG_P8_LR_Salient_DoChange_CuedRetrieval_retrieval_patch_orientation_062_retrieval_position_3" 2 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69; 42 62 292 292 399 125 1792 2992 1992 fixation_cross gabor_088 gabor_114 gabor_160 gabor_054 gabor_088 gabor_114_alt gabor_160_alt gabor_054 "1_9_Encoding_Working_Memory_MEG_P8_LR_Salient_NoChange_CuedRetrieval_300_300_399_1800_3000_2000_gabor_patch_orientation_088_114_160_054_target_position_2_3_retrieval_position_3" gabor_circ gabor_circ gabor_160_framed gabor_circ blank blank blank blank fixation_cross_white "1_9_Retrieval_Working_Memory_MEG_P8_LR_Salient_NoChange_CuedRetrieval_retrieval_patch_orientation_160_retrieval_position_3" 1 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69; 42 62 292 292 399 125 2242 2992 2192 fixation_cross gabor_175 gabor_119 gabor_006 gabor_152 gabor_175 gabor_119_alt gabor_006 gabor_152_alt "1_10_Encoding_Working_Memory_MEG_P8_LR_Salient_NoChange_CuedRetrieval_300_300_399_2250_3000_2200_gabor_patch_orientation_175_119_006_152_target_position_2_4_retrieval_position_2" gabor_circ gabor_119_framed gabor_circ gabor_circ blank blank blank blank fixation_cross_white "1_10_Retrieval_Working_Memory_MEG_P8_LR_Salient_NoChange_CuedRetrieval_retrieval_patch_orientation_119_retrieval_position_2" 1 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69; 42 61 292 292 399 125 2092 2992 2142 fixation_cross gabor_090 gabor_072 gabor_045 gabor_009 gabor_090_alt gabor_072 gabor_045_alt gabor_009 "1_11_Encoding_Working_Memory_MEG_P8_LR_Salient_DoChange_CuedRetrieval_300_300_399_2100_3000_2150_gabor_patch_orientation_090_072_045_009_target_position_1_3_retrieval_position_3" gabor_circ gabor_circ gabor_180_framed gabor_circ blank blank blank blank fixation_cross_white "1_11_Retrieval_Working_Memory_MEG_P8_LR_Salient_DoChange_CuedRetrieval_retrieval_patch_orientation_180_retrieval_position_3" 2 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69; 42 61 292 292 399 125 1842 2992 1992 fixation_cross gabor_007 gabor_072 gabor_039 gabor_178 gabor_007 gabor_072_alt gabor_039_alt gabor_178 "1_12_Encoding_Working_Memory_MEG_P8_LR_Salient_DoChange_CuedRetrieval_300_300_399_1850_3000_2000_gabor_patch_orientation_007_072_039_178_target_position_2_3_retrieval_position_2" gabor_circ gabor_118_framed gabor_circ gabor_circ blank blank blank blank fixation_cross_white "1_12_Retrieval_Working_Memory_MEG_P8_LR_Salient_DoChange_CuedRetrieval_retrieval_patch_orientation_118_retrieval_position_2" 2 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69; 42 63 292 292 399 125 2092 2992 2092 fixation_cross gabor_029 gabor_056 gabor_180 gabor_117 gabor_029 gabor_056 gabor_180_alt gabor_117_alt "1_13_Encoding_Working_Memory_MEG_P8_LR_Salient_DoChange_UncuedRetriev_300_300_399_2100_3000_2100_gabor_patch_orientation_029_056_180_117_target_position_3_4_retrieval_position_1" gabor_164_framed gabor_circ gabor_circ gabor_circ blank blank blank blank fixation_cross_white "1_13_Retrieval_Working_Memory_MEG_P8_LR_Salient_DoChange_UncuedRetriev_retrieval_patch_orientation_164_retrieval_position_1" 2 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69; 42 62 292 292 399 125 2142 2992 1892 fixation_cross gabor_092 gabor_037 gabor_144 gabor_176 gabor_092 gabor_037 gabor_144_alt gabor_176_alt "1_14_Encoding_Working_Memory_MEG_P8_LR_Salient_NoChange_CuedRetrieval_300_300_399_2150_3000_1900_gabor_patch_orientation_092_037_144_176_target_position_3_4_retrieval_position_4" gabor_circ gabor_circ gabor_circ gabor_176_framed blank blank blank blank fixation_cross_white "1_14_Retrieval_Working_Memory_MEG_P8_LR_Salient_NoChange_CuedRetrieval_retrieval_patch_orientation_176_retrieval_position_4" 1 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69; 42 62 292 292 399 125 1742 2992 2392 fixation_cross gabor_089 gabor_071 gabor_029 gabor_105 gabor_089 gabor_071 gabor_029_alt gabor_105_alt "1_15_Encoding_Working_Memory_MEG_P8_LR_Salient_NoChange_CuedRetrieval_300_300_399_1750_3000_2400_gabor_patch_orientation_089_071_029_105_target_position_3_4_retrieval_position_4" gabor_circ gabor_circ gabor_circ gabor_105_framed blank blank blank blank fixation_cross_white "1_15_Retrieval_Working_Memory_MEG_P8_LR_Salient_NoChange_CuedRetrieval_retrieval_patch_orientation_105_retrieval_position_4" 1 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69; 42 63 292 292 399 125 1892 2992 2392 fixation_cross gabor_029 gabor_078 gabor_143 gabor_007 gabor_029_alt gabor_078 gabor_143 gabor_007_alt "1_16_Encoding_Working_Memory_MEG_P8_LR_Salient_DoChange_UncuedRetriev_300_300_399_1900_3000_2400_gabor_patch_orientation_029_078_143_007_target_position_1_4_retrieval_position_3" gabor_circ gabor_circ gabor_095_framed gabor_circ blank blank blank blank fixation_cross_white "1_16_Retrieval_Working_Memory_MEG_P8_LR_Salient_DoChange_UncuedRetriev_retrieval_patch_orientation_095_retrieval_position_3" 2 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69; 42 62 292 292 399 125 1842 2992 2142 fixation_cross gabor_009 gabor_167 gabor_082 gabor_127 gabor_009_alt gabor_167_alt gabor_082 gabor_127 "1_17_Encoding_Working_Memory_MEG_P8_LR_Salient_NoChange_CuedRetrieval_300_300_399_1850_3000_2150_gabor_patch_orientation_009_167_082_127_target_position_1_2_retrieval_position_1" gabor_009_framed gabor_circ gabor_circ gabor_circ blank blank blank blank fixation_cross_white "1_17_Retrieval_Working_Memory_MEG_P8_LR_Salient_NoChange_CuedRetrieval_retrieval_patch_orientation_009_retrieval_position_1" 1 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69; 42 62 292 292 399 125 2192 2992 2292 fixation_cross gabor_022 gabor_105 gabor_164 gabor_080 gabor_022 gabor_105_alt gabor_164 gabor_080_alt "1_18_Encoding_Working_Memory_MEG_P8_LR_Salient_NoChange_CuedRetrieval_300_300_399_2200_3000_2300_gabor_patch_orientation_022_105_164_080_target_position_2_4_retrieval_position_2" gabor_circ gabor_105_framed gabor_circ gabor_circ blank blank blank blank fixation_cross_white "1_18_Retrieval_Working_Memory_MEG_P8_LR_Salient_NoChange_CuedRetrieval_retrieval_patch_orientation_105_retrieval_position_2" 1 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69; 42 63 292 292 399 125 2242 2992 2092 fixation_cross gabor_092 gabor_136 gabor_059 gabor_030 gabor_092_alt gabor_136_alt gabor_059 gabor_030 "1_19_Encoding_Working_Memory_MEG_P8_LR_Salient_DoChange_UncuedRetriev_300_300_399_2250_3000_2100_gabor_patch_orientation_092_136_059_030_target_position_1_2_retrieval_position_3" gabor_circ gabor_circ gabor_011_framed gabor_circ blank blank blank blank fixation_cross_white "1_19_Retrieval_Working_Memory_MEG_P8_LR_Salient_DoChange_UncuedRetriev_retrieval_patch_orientation_011_retrieval_position_3" 2 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69; 42 61 292 292 399 125 2242 2992 2242 fixation_cross gabor_062 gabor_171 gabor_103 gabor_034 gabor_062 gabor_171_alt gabor_103_alt gabor_034 "1_20_Encoding_Working_Memory_MEG_P8_LR_Salient_DoChange_CuedRetrieval_300_300_399_2250_3000_2250_gabor_patch_orientation_062_171_103_034_target_position_2_3_retrieval_position_3" gabor_circ gabor_circ gabor_150_framed gabor_circ blank blank blank blank fixation_cross_white "1_20_Retrieval_Working_Memory_MEG_P8_LR_Salient_DoChange_CuedRetrieval_retrieval_patch_orientation_150_retrieval_position_3" 2 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69; 42 61 292 292 399 125 1892 2992 2392 fixation_cross gabor_161 gabor_178 gabor_021 gabor_040 gabor_161_alt gabor_178 gabor_021 gabor_040_alt "1_21_Encoding_Working_Memory_MEG_P8_LR_Salient_DoChange_CuedRetrieval_300_300_399_1900_3000_2400_gabor_patch_orientation_161_178_021_040_target_position_1_4_retrieval_position_1" gabor_111_framed gabor_circ gabor_circ gabor_circ blank blank blank blank fixation_cross_white "1_21_Retrieval_Working_Memory_MEG_P8_LR_Salient_DoChange_CuedRetrieval_retrieval_patch_orientation_111_retrieval_position_1" 2 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69; 42 61 292 292 399 125 2142 2992 2592 fixation_cross gabor_016 gabor_131 gabor_101 gabor_058 gabor_016 gabor_131 gabor_101_alt gabor_058_alt "1_22_Encoding_Working_Memory_MEG_P8_LR_Salient_DoChange_CuedRetrieval_300_300_399_2150_3000_2600_gabor_patch_orientation_016_131_101_058_target_position_3_4_retrieval_position_3" gabor_circ gabor_circ gabor_147_framed gabor_circ blank blank blank blank fixation_cross_white "1_22_Retrieval_Working_Memory_MEG_P8_LR_Salient_DoChange_CuedRetrieval_retrieval_patch_orientation_147_retrieval_position_3" 2 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69; 42 61 292 292 399 125 1892 2992 2042 fixation_cross gabor_026 gabor_009 gabor_057 gabor_165 gabor_026 gabor_009_alt gabor_057_alt gabor_165 "1_23_Encoding_Working_Memory_MEG_P8_LR_Salient_DoChange_CuedRetrieval_300_300_399_1900_3000_2050_gabor_patch_orientation_026_009_057_165_target_position_2_3_retrieval_position_2" gabor_circ gabor_147_framed gabor_circ gabor_circ blank blank blank blank fixation_cross_white "1_23_Retrieval_Working_Memory_MEG_P8_LR_Salient_DoChange_CuedRetrieval_retrieval_patch_orientation_147_retrieval_position_2" 2 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69; 42 62 292 292 399 125 1792 2992 2542 fixation_cross gabor_130 gabor_046 gabor_107 gabor_151 gabor_130 gabor_046_alt gabor_107_alt gabor_151 "1_24_Encoding_Working_Memory_MEG_P8_LR_Salient_NoChange_CuedRetrieval_300_300_399_1800_3000_2550_gabor_patch_orientation_130_046_107_151_target_position_2_3_retrieval_position_2" gabor_circ gabor_046_framed gabor_circ gabor_circ blank blank blank blank fixation_cross_white "1_24_Retrieval_Working_Memory_MEG_P8_LR_Salient_NoChange_CuedRetrieval_retrieval_patch_orientation_046_retrieval_position_2" 1 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69; 42 64 292 292 399 125 1792 2992 2592 fixation_cross gabor_171 gabor_018 gabor_150 gabor_036 gabor_171 gabor_018_alt gabor_150 gabor_036_alt "1_25_Encoding_Working_Memory_MEG_P8_LR_Salient_NoChange_UncuedRetriev_300_300_399_1800_3000_2600_gabor_patch_orientation_171_018_150_036_target_position_2_4_retrieval_position_3" gabor_circ gabor_circ gabor_150_framed gabor_circ blank blank blank blank fixation_cross_white "1_25_Retrieval_Working_Memory_MEG_P8_LR_Salient_NoChange_UncuedRetriev_retrieval_patch_orientation_150_retrieval_position_3" 1 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69; 42 62 292 292 399 125 2042 2992 1892 fixation_cross gabor_094 gabor_075 gabor_143 gabor_019 gabor_094_alt gabor_075_alt gabor_143 gabor_019 "1_26_Encoding_Working_Memory_MEG_P8_LR_Salient_NoChange_CuedRetrieval_300_300_399_2050_3000_1900_gabor_patch_orientation_094_075_143_019_target_position_1_2_retrieval_position_2" gabor_circ gabor_075_framed gabor_circ gabor_circ blank blank blank blank fixation_cross_white "1_26_Retrieval_Working_Memory_MEG_P8_LR_Salient_NoChange_CuedRetrieval_retrieval_patch_orientation_075_retrieval_position_2" 1 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69; 42 61 292 292 399 125 1842 2992 2492 fixation_cross gabor_121 gabor_146 gabor_006 gabor_089 gabor_121 gabor_146_alt gabor_006_alt gabor_089 "1_27_Encoding_Working_Memory_MEG_P8_LR_Salient_DoChange_CuedRetrieval_300_300_399_1850_3000_2500_gabor_patch_orientation_121_146_006_089_target_position_2_3_retrieval_position_3" gabor_circ gabor_circ gabor_056_framed gabor_circ blank blank blank blank fixation_cross_white "1_27_Retrieval_Working_Memory_MEG_P8_LR_Salient_DoChange_CuedRetrieval_retrieval_patch_orientation_056_retrieval_position_3" 2 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69; 42 62 292 292 399 125 1992 2992 2192 fixation_cross gabor_090 gabor_176 gabor_159 gabor_138 gabor_090_alt gabor_176 gabor_159 gabor_138_alt "1_28_Encoding_Working_Memory_MEG_P8_LR_Salient_NoChange_CuedRetrieval_300_300_399_2000_3000_2200_gabor_patch_orientation_090_176_159_138_target_position_1_4_retrieval_position_4" gabor_circ gabor_circ gabor_circ gabor_138_framed blank blank blank blank fixation_cross_white "1_28_Retrieval_Working_Memory_MEG_P8_LR_Salient_NoChange_CuedRetrieval_retrieval_patch_orientation_138_retrieval_position_4" 1 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69; 42 62 292 292 399 125 1942 2992 2492 fixation_cross gabor_141 gabor_122 gabor_005 gabor_067 gabor_141_alt gabor_122 gabor_005 gabor_067_alt "1_29_Encoding_Working_Memory_MEG_P8_LR_Salient_NoChange_CuedRetrieval_300_300_399_1950_3000_2500_gabor_patch_orientation_141_122_005_067_target_position_1_4_retrieval_position_1" gabor_141_framed gabor_circ gabor_circ gabor_circ blank blank blank blank fixation_cross_white "1_29_Retrieval_Working_Memory_MEG_P8_LR_Salient_NoChange_CuedRetrieval_retrieval_patch_orientation_141_retrieval_position_1" 1 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69; 42 64 292 292 399 125 2192 2992 2442 fixation_cross gabor_154 gabor_133 gabor_076 gabor_003 gabor_154_alt gabor_133 gabor_076 gabor_003_alt "1_30_Encoding_Working_Memory_MEG_P8_LR_Salient_NoChange_UncuedRetriev_300_300_399_2200_3000_2450_gabor_patch_orientation_154_133_076_003_target_position_1_4_retrieval_position_3" gabor_circ gabor_circ gabor_076_framed gabor_circ blank blank blank blank fixation_cross_white "1_30_Retrieval_Working_Memory_MEG_P8_LR_Salient_NoChange_UncuedRetriev_retrieval_patch_orientation_076_retrieval_position_3" 1 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69; 42 61 292 292 399 125 2042 2992 1942 fixation_cross gabor_163 gabor_180 gabor_091 gabor_116 gabor_163 gabor_180 gabor_091_alt gabor_116_alt "1_31_Encoding_Working_Memory_MEG_P8_LR_Salient_DoChange_CuedRetrieval_300_300_399_2050_3000_1950_gabor_patch_orientation_163_180_091_116_target_position_3_4_retrieval_position_3" gabor_circ gabor_circ gabor_140_framed gabor_circ blank blank blank blank fixation_cross_white "1_31_Retrieval_Working_Memory_MEG_P8_LR_Salient_DoChange_CuedRetrieval_retrieval_patch_orientation_140_retrieval_position_3" 2 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69; 42 62 292 292 399 125 1992 2992 2242 fixation_cross gabor_017 gabor_039 gabor_064 gabor_149 gabor_017 gabor_039 gabor_064_alt gabor_149_alt "1_32_Encoding_Working_Memory_MEG_P8_LR_Salient_NoChange_CuedRetrieval_300_300_399_2000_3000_2250_gabor_patch_orientation_017_039_064_149_target_position_3_4_retrieval_position_4" gabor_circ gabor_circ gabor_circ gabor_149_framed blank blank blank blank fixation_cross_white "1_32_Retrieval_Working_Memory_MEG_P8_LR_Salient_NoChange_CuedRetrieval_retrieval_patch_orientation_149_retrieval_position_4" 1 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69; 42 61 292 292 399 125 2092 2992 2292 fixation_cross gabor_017 gabor_104 gabor_043 gabor_080 gabor_017_alt gabor_104_alt gabor_043 gabor_080 "1_33_Encoding_Working_Memory_MEG_P8_LR_Salient_DoChange_CuedRetrieval_300_300_399_2100_3000_2300_gabor_patch_orientation_017_104_043_080_target_position_1_2_retrieval_position_1" gabor_063_framed gabor_circ gabor_circ gabor_circ blank blank blank blank fixation_cross_white "1_33_Retrieval_Working_Memory_MEG_P8_LR_Salient_DoChange_CuedRetrieval_retrieval_patch_orientation_063_retrieval_position_1" 2 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69; 42 61 292 292 399 125 1992 2992 2592 fixation_cross gabor_100 gabor_024 gabor_176 gabor_160 gabor_100 gabor_024_alt gabor_176 gabor_160_alt "1_34_Encoding_Working_Memory_MEG_P8_LR_Salient_DoChange_CuedRetrieval_300_300_399_2000_3000_2600_gabor_patch_orientation_100_024_176_160_target_position_2_4_retrieval_position_2" gabor_circ gabor_070_framed gabor_circ gabor_circ blank blank blank blank fixation_cross_white "1_34_Retrieval_Working_Memory_MEG_P8_LR_Salient_DoChange_CuedRetrieval_retrieval_patch_orientation_070_retrieval_position_2" 2 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69; 42 62 292 292 399 125 2242 2992 2242 fixation_cross gabor_074 gabor_162 gabor_030 gabor_011 gabor_074 gabor_162_alt gabor_030 gabor_011_alt "1_35_Encoding_Working_Memory_MEG_P8_LR_Salient_NoChange_CuedRetrieval_300_300_399_2250_3000_2250_gabor_patch_orientation_074_162_030_011_target_position_2_4_retrieval_position_2" gabor_circ gabor_162_framed gabor_circ gabor_circ blank blank blank blank fixation_cross_white "1_35_Retrieval_Working_Memory_MEG_P8_LR_Salient_NoChange_CuedRetrieval_retrieval_patch_orientation_162_retrieval_position_2" 1 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69; 42 64 292 292 399 125 1792 2992 2492 fixation_cross gabor_171 gabor_030 gabor_083 gabor_100 gabor_171_alt gabor_030_alt gabor_083 gabor_100 "1_36_Encoding_Working_Memory_MEG_P8_LR_Salient_NoChange_UncuedRetriev_300_300_399_1800_3000_2500_gabor_patch_orientation_171_030_083_100_target_position_1_2_retrieval_position_4" gabor_circ gabor_circ gabor_circ gabor_100_framed blank blank blank blank fixation_cross_white "1_36_Retrieval_Working_Memory_MEG_P8_LR_Salient_NoChange_UncuedRetriev_retrieval_patch_orientation_100_retrieval_position_4" 1 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69; 42 62 292 292 399 125 2042 2992 1992 fixation_cross gabor_094 gabor_120 gabor_077 gabor_148 gabor_094_alt gabor_120_alt gabor_077 gabor_148 "1_37_Encoding_Working_Memory_MEG_P8_LR_Salient_NoChange_CuedRetrieval_300_300_399_2050_3000_2000_gabor_patch_orientation_094_120_077_148_target_position_1_2_retrieval_position_2" gabor_circ gabor_120_framed gabor_circ gabor_circ blank blank blank blank fixation_cross_white "1_37_Retrieval_Working_Memory_MEG_P8_LR_Salient_NoChange_CuedRetrieval_retrieval_patch_orientation_120_retrieval_position_2" 1 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69; 42 61 292 292 399 125 2092 2992 2542 fixation_cross gabor_073 gabor_108 gabor_043 gabor_092 gabor_073_alt gabor_108 gabor_043_alt gabor_092 "1_38_Encoding_Working_Memory_MEG_P8_LR_Salient_DoChange_CuedRetrieval_300_300_399_2100_3000_2550_gabor_patch_orientation_073_108_043_092_target_position_1_3_retrieval_position_1" gabor_026_framed gabor_circ gabor_circ gabor_circ blank blank blank blank fixation_cross_white "1_38_Retrieval_Working_Memory_MEG_P8_LR_Salient_DoChange_CuedRetrieval_retrieval_patch_orientation_026_retrieval_position_1" 2 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69; 42 61 292 292 399 125 1942 2992 2342 fixation_cross gabor_010 gabor_128 gabor_066 gabor_084 gabor_010_alt gabor_128 gabor_066 gabor_084_alt "1_39_Encoding_Working_Memory_MEG_P8_LR_Salient_DoChange_CuedRetrieval_300_300_399_1950_3000_2350_gabor_patch_orientation_010_128_066_084_target_position_1_4_retrieval_position_4" gabor_circ gabor_circ gabor_circ gabor_038_framed blank blank blank blank fixation_cross_white "1_39_Retrieval_Working_Memory_MEG_P8_LR_Salient_DoChange_CuedRetrieval_retrieval_patch_orientation_038_retrieval_position_4" 2 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69; 42 64 292 292 399 125 1892 2992 2542 fixation_cross gabor_018 gabor_063 gabor_137 gabor_178 gabor_018_alt gabor_063 gabor_137_alt gabor_178 "1_40_Encoding_Working_Memory_MEG_P8_LR_Salient_NoChange_UncuedRetriev_300_300_399_1900_3000_2550_gabor_patch_orientation_018_063_137_178_target_position_1_3_retrieval_position_2" gabor_circ gabor_063_framed gabor_circ gabor_circ blank blank blank blank fixation_cross_white "1_40_Retrieval_Working_Memory_MEG_P8_LR_Salient_NoChange_UncuedRetriev_retrieval_patch_orientation_063_retrieval_position_2" 1 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69; 42 61 292 292 399 125 1742 2992 2142 fixation_cross gabor_015 gabor_031 gabor_054 gabor_171 gabor_015_alt gabor_031 gabor_054 gabor_171_alt "1_41_Encoding_Working_Memory_MEG_P8_LR_Salient_DoChange_CuedRetrieval_300_300_399_1750_3000_2150_gabor_patch_orientation_015_031_054_171_target_position_1_4_retrieval_position_4" gabor_circ gabor_circ gabor_circ gabor_121_framed blank blank blank blank fixation_cross_white "1_41_Retrieval_Working_Memory_MEG_P8_LR_Salient_DoChange_CuedRetrieval_retrieval_patch_orientation_121_retrieval_position_4" 2 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69; 42 61 292 292 399 125 2242 2992 2092 fixation_cross gabor_118 gabor_138 gabor_002 gabor_053 gabor_118_alt gabor_138 gabor_002 gabor_053_alt "1_42_Encoding_Working_Memory_MEG_P8_LR_Salient_DoChange_CuedRetrieval_300_300_399_2250_3000_2100_gabor_patch_orientation_118_138_002_053_target_position_1_4_retrieval_position_1" gabor_070_framed gabor_circ gabor_circ gabor_circ blank blank blank blank fixation_cross_white "1_42_Retrieval_Working_Memory_MEG_P8_LR_Salient_DoChange_CuedRetrieval_retrieval_patch_orientation_070_retrieval_position_1" 2 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69; 42 61 292 292 399 125 2192 2992 2442 fixation_cross gabor_106 gabor_144 gabor_075 gabor_032 gabor_106_alt gabor_144_alt gabor_075 gabor_032 "1_43_Encoding_Working_Memory_MEG_P8_LR_Salient_DoChange_CuedRetrieval_300_300_399_2200_3000_2450_gabor_patch_orientation_106_144_075_032_target_position_1_2_retrieval_position_1" gabor_056_framed gabor_circ gabor_circ gabor_circ blank blank blank blank fixation_cross_white "1_43_Retrieval_Working_Memory_MEG_P8_LR_Salient_DoChange_CuedRetrieval_retrieval_patch_orientation_056_retrieval_position_1" 2 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69; 42 62 292 292 399 125 1742 2992 2242 fixation_cross gabor_012 gabor_088 gabor_072 gabor_132 gabor_012 gabor_088_alt gabor_072_alt gabor_132 "1_44_Encoding_Working_Memory_MEG_P8_LR_Salient_NoChange_CuedRetrieval_300_300_399_1750_3000_2250_gabor_patch_orientation_012_088_072_132_target_position_2_3_retrieval_position_2" gabor_circ gabor_088_framed gabor_circ gabor_circ blank blank blank blank fixation_cross_white "1_44_Retrieval_Working_Memory_MEG_P8_LR_Salient_NoChange_CuedRetrieval_retrieval_patch_orientation_088_retrieval_position_2" 1 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69; 42 64 292 292 399 125 1942 2992 1942 fixation_cross gabor_036 gabor_021 gabor_109 gabor_001 gabor_036 gabor_021_alt gabor_109 gabor_001_alt "1_45_Encoding_Working_Memory_MEG_P8_LR_Salient_NoChange_UncuedRetriev_300_300_399_1950_3000_1950_gabor_patch_orientation_036_021_109_001_target_position_2_4_retrieval_position_1" gabor_036_framed gabor_circ gabor_circ gabor_circ blank blank blank blank fixation_cross_white "1_45_Retrieval_Working_Memory_MEG_P8_LR_Salient_NoChange_UncuedRetriev_retrieval_patch_orientation_036_retrieval_position_1" 1 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69; 42 62 292 292 399 125 1942 2992 2542 fixation_cross gabor_102 gabor_015 gabor_126 gabor_040 gabor_102 gabor_015_alt gabor_126 gabor_040_alt "1_46_Encoding_Working_Memory_MEG_P8_LR_Salient_NoChange_CuedRetrieval_300_300_399_1950_3000_2550_gabor_patch_orientation_102_015_126_040_target_position_2_4_retrieval_position_4" gabor_circ gabor_circ gabor_circ gabor_040_framed blank blank blank blank fixation_cross_white "1_46_Retrieval_Working_Memory_MEG_P8_LR_Salient_NoChange_CuedRetrieval_retrieval_patch_orientation_040_retrieval_position_4" 1 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69; 42 61 292 292 399 125 1742 2992 1992 fixation_cross gabor_050 gabor_119 gabor_097 gabor_172 gabor_050 gabor_119_alt gabor_097 gabor_172_alt "1_47_Encoding_Working_Memory_MEG_P8_LR_Salient_DoChange_CuedRetrieval_300_300_399_1750_3000_2000_gabor_patch_orientation_050_119_097_172_target_position_2_4_retrieval_position_4" gabor_circ gabor_circ gabor_circ gabor_034_framed blank blank blank blank fixation_cross_white "1_47_Retrieval_Working_Memory_MEG_P8_LR_Salient_DoChange_CuedRetrieval_retrieval_patch_orientation_034_retrieval_position_4" 2 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69; 42 61 292 292 399 125 2142 2992 2092 fixation_cross gabor_138 gabor_074 gabor_119 gabor_050 gabor_138 gabor_074 gabor_119_alt gabor_050_alt "1_48_Encoding_Working_Memory_MEG_P8_LR_Salient_DoChange_CuedRetrieval_300_300_399_2150_3000_2100_gabor_patch_orientation_138_074_119_050_target_position_3_4_retrieval_position_3" gabor_circ gabor_circ gabor_164_framed gabor_circ blank blank blank blank fixation_cross_white "1_48_Retrieval_Working_Memory_MEG_P8_LR_Salient_DoChange_CuedRetrieval_retrieval_patch_orientation_164_retrieval_position_3" 2 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69; 42 62 292 292 399 125 2142 2992 2042 fixation_cross gabor_171 gabor_154 gabor_007 gabor_115 gabor_171_alt gabor_154 gabor_007 gabor_115_alt "1_49_Encoding_Working_Memory_MEG_P8_LR_Salient_NoChange_CuedRetrieval_300_300_399_2150_3000_2050_gabor_patch_orientation_171_154_007_115_target_position_1_4_retrieval_position_1" gabor_171_framed gabor_circ gabor_circ gabor_circ blank blank blank blank fixation_cross_white "1_49_Retrieval_Working_Memory_MEG_P8_LR_Salient_NoChange_CuedRetrieval_retrieval_patch_orientation_171_retrieval_position_1" 1 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69; 42 62 292 292 399 125 1892 2992 2342 fixation_cross gabor_156 gabor_109 gabor_067 gabor_088 gabor_156 gabor_109_alt gabor_067 gabor_088_alt "1_50_Encoding_Working_Memory_MEG_P8_LR_Salient_NoChange_CuedRetrieval_300_300_399_1900_3000_2350_gabor_patch_orientation_156_109_067_088_target_position_2_4_retrieval_position_4" gabor_circ gabor_circ gabor_circ gabor_088_framed blank blank blank blank fixation_cross_white "1_50_Retrieval_Working_Memory_MEG_P8_LR_Salient_NoChange_CuedRetrieval_retrieval_patch_orientation_088_retrieval_position_4" 1 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69; 42 61 292 292 399 125 2042 2992 2592 fixation_cross gabor_067 gabor_037 gabor_002 gabor_176 gabor_067 gabor_037_alt gabor_002_alt gabor_176 "1_51_Encoding_Working_Memory_MEG_P8_LR_Salient_DoChange_CuedRetrieval_300_300_399_2050_3000_2600_gabor_patch_orientation_067_037_002_176_target_position_2_3_retrieval_position_2" gabor_circ gabor_087_framed gabor_circ gabor_circ blank blank blank blank fixation_cross_white "1_51_Retrieval_Working_Memory_MEG_P8_LR_Salient_DoChange_CuedRetrieval_retrieval_patch_orientation_087_retrieval_position_2" 2 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69; 42 63 292 292 399 125 2092 2992 2192 fixation_cross gabor_032 gabor_120 gabor_139 gabor_013 gabor_032 gabor_120_alt gabor_139_alt gabor_013 "1_52_Encoding_Working_Memory_MEG_P8_LR_Salient_DoChange_UncuedRetriev_300_300_399_2100_3000_2200_gabor_patch_orientation_032_120_139_013_target_position_2_3_retrieval_position_4" gabor_circ gabor_circ gabor_circ gabor_059_framed blank blank blank blank fixation_cross_white "1_52_Retrieval_Working_Memory_MEG_P8_LR_Salient_DoChange_UncuedRetriev_retrieval_patch_orientation_059_retrieval_position_4" 2 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69; 42 61 292 292 399 125 1942 2992 1942 fixation_cross gabor_084 gabor_021 gabor_173 gabor_143 gabor_084 gabor_021_alt gabor_173_alt gabor_143 "1_53_Encoding_Working_Memory_MEG_P8_LR_Salient_DoChange_CuedRetrieval_300_300_399_1950_3000_1950_gabor_patch_orientation_084_021_173_143_target_position_2_3_retrieval_position_2" gabor_circ gabor_066_framed gabor_circ gabor_circ blank blank blank blank fixation_cross_white "1_53_Retrieval_Working_Memory_MEG_P8_LR_Salient_DoChange_CuedRetrieval_retrieval_patch_orientation_066_retrieval_position_2" 2 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69; 42 64 292 292 399 125 1992 2992 1942 fixation_cross gabor_006 gabor_127 gabor_178 gabor_045 gabor_006_alt gabor_127 gabor_178_alt gabor_045 "1_54_Encoding_Working_Memory_MEG_P8_LR_Salient_NoChange_UncuedRetriev_300_300_399_2000_3000_1950_gabor_patch_orientation_006_127_178_045_target_position_1_3_retrieval_position_4" gabor_circ gabor_circ gabor_circ gabor_045_framed blank blank blank blank fixation_cross_white "1_54_Retrieval_Working_Memory_MEG_P8_LR_Salient_NoChange_UncuedRetriev_retrieval_patch_orientation_045_retrieval_position_4" 1 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69; 42 62 292 292 399 125 1842 2992 2242 fixation_cross gabor_032 gabor_076 gabor_004 gabor_055 gabor_032_alt gabor_076_alt gabor_004 gabor_055 "1_55_Encoding_Working_Memory_MEG_P8_LR_Salient_NoChange_CuedRetrieval_300_300_399_1850_3000_2250_gabor_patch_orientation_032_076_004_055_target_position_1_2_retrieval_position_2" gabor_circ gabor_076_framed gabor_circ gabor_circ blank blank blank blank fixation_cross_white "1_55_Retrieval_Working_Memory_MEG_P8_LR_Salient_NoChange_CuedRetrieval_retrieval_patch_orientation_076_retrieval_position_2" 1 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69; 42 62 292 292 399 125 1742 2992 2042 fixation_cross gabor_152 gabor_014 gabor_092 gabor_132 gabor_152 gabor_014 gabor_092_alt gabor_132_alt "1_56_Encoding_Working_Memory_MEG_P8_LR_Salient_NoChange_CuedRetrieval_300_300_399_1750_3000_2050_gabor_patch_orientation_152_014_092_132_target_position_3_4_retrieval_position_4" gabor_circ gabor_circ gabor_circ gabor_132_framed blank blank blank blank fixation_cross_white "1_56_Retrieval_Working_Memory_MEG_P8_LR_Salient_NoChange_CuedRetrieval_retrieval_patch_orientation_132_retrieval_position_4" 1 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69; 42 62 292 292 399 125 1892 2992 1892 fixation_cross gabor_086 gabor_176 gabor_068 gabor_151 gabor_086_alt gabor_176 gabor_068 gabor_151_alt "1_57_Encoding_Working_Memory_MEG_P8_LR_Salient_NoChange_CuedRetrieval_300_300_399_1900_3000_1900_gabor_patch_orientation_086_176_068_151_target_position_1_4_retrieval_position_1" gabor_086_framed gabor_circ gabor_circ gabor_circ blank blank blank blank fixation_cross_white "1_57_Retrieval_Working_Memory_MEG_P8_LR_Salient_NoChange_CuedRetrieval_retrieval_patch_orientation_086_retrieval_position_1" 1 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69; 42 61 292 292 399 125 1742 2992 2442 fixation_cross gabor_001 gabor_150 gabor_018 gabor_079 gabor_001 gabor_150 gabor_018_alt gabor_079_alt "1_58_Encoding_Working_Memory_MEG_P8_LR_Salient_DoChange_CuedRetrieval_300_300_399_1750_3000_2450_gabor_patch_orientation_001_150_018_079_target_position_3_4_retrieval_position_4" gabor_circ gabor_circ gabor_circ gabor_126_framed blank blank blank blank fixation_cross_white "1_58_Retrieval_Working_Memory_MEG_P8_LR_Salient_DoChange_CuedRetrieval_retrieval_patch_orientation_126_retrieval_position_4" 2 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69; 42 61 292 292 399 125 2242 2992 2142 fixation_cross gabor_107 gabor_040 gabor_159 gabor_180 gabor_107 gabor_040_alt gabor_159 gabor_180_alt "1_59_Encoding_Working_Memory_MEG_P8_LR_Salient_DoChange_CuedRetrieval_300_300_399_2250_3000_2150_gabor_patch_orientation_107_040_159_180_target_position_2_4_retrieval_position_2" gabor_circ gabor_090_framed gabor_circ gabor_circ blank blank blank blank fixation_cross_white "1_59_Retrieval_Working_Memory_MEG_P8_LR_Salient_DoChange_CuedRetrieval_retrieval_patch_orientation_090_retrieval_position_2" 2 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69; 42 61 292 292 399 125 2192 2992 2292 fixation_cross gabor_162 gabor_096 gabor_038 gabor_179 gabor_162 gabor_096_alt gabor_038_alt gabor_179 "1_60_Encoding_Working_Memory_MEG_P8_LR_Salient_DoChange_CuedRetrieval_300_300_399_2200_3000_2300_gabor_patch_orientation_162_096_038_179_target_position_2_3_retrieval_position_2" gabor_circ gabor_145_framed gabor_circ gabor_circ blank blank blank blank fixation_cross_white "1_60_Retrieval_Working_Memory_MEG_P8_LR_Salient_DoChange_CuedRetrieval_retrieval_patch_orientation_145_retrieval_position_2" 2 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69; 42 61 292 292 399 125 2192 2992 2442 fixation_cross gabor_039 gabor_116 gabor_097 gabor_009 gabor_039 gabor_116_alt gabor_097 gabor_009_alt "1_61_Encoding_Working_Memory_MEG_P8_LR_Salient_DoChange_CuedRetrieval_300_300_399_2200_3000_2450_gabor_patch_orientation_039_116_097_009_target_position_2_4_retrieval_position_2" gabor_circ gabor_164_framed gabor_circ gabor_circ blank blank blank blank fixation_cross_white "1_61_Retrieval_Working_Memory_MEG_P8_LR_Salient_DoChange_CuedRetrieval_retrieval_patch_orientation_164_retrieval_position_2" 2 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69; 42 63 292 292 399 125 2092 2992 2292 fixation_cross gabor_117 gabor_052 gabor_080 gabor_007 gabor_117 gabor_052_alt gabor_080 gabor_007_alt "1_62_Encoding_Working_Memory_MEG_P8_LR_Salient_DoChange_UncuedRetriev_300_300_399_2100_3000_2300_gabor_patch_orientation_117_052_080_007_target_position_2_4_retrieval_position_1" gabor_162_framed gabor_circ gabor_circ gabor_circ blank blank blank blank fixation_cross_white "1_62_Retrieval_Working_Memory_MEG_P8_LR_Salient_DoChange_UncuedRetriev_retrieval_patch_orientation_162_retrieval_position_1" 2 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69; 42 61 292 292 399 125 1942 2992 2492 fixation_cross gabor_032 gabor_055 gabor_162 gabor_008 gabor_032 gabor_055_alt gabor_162_alt gabor_008 "1_63_Encoding_Working_Memory_MEG_P8_LR_Salient_DoChange_CuedRetrieval_300_300_399_1950_3000_2500_gabor_patch_orientation_032_055_162_008_target_position_2_3_retrieval_position_3" gabor_circ gabor_circ gabor_117_framed gabor_circ blank blank blank blank fixation_cross_white "1_63_Retrieval_Working_Memory_MEG_P8_LR_Salient_DoChange_CuedRetrieval_retrieval_patch_orientation_117_retrieval_position_3" 2 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69; 42 62 292 292 399 125 2042 2992 1992 fixation_cross gabor_105 gabor_133 gabor_161 gabor_019 gabor_105_alt gabor_133 gabor_161 gabor_019_alt "1_64_Encoding_Working_Memory_MEG_P8_LR_Salient_NoChange_CuedRetrieval_300_300_399_2050_3000_2000_gabor_patch_orientation_105_133_161_019_target_position_1_4_retrieval_position_1" gabor_105_framed gabor_circ gabor_circ gabor_circ blank blank blank blank fixation_cross_white "1_64_Retrieval_Working_Memory_MEG_P8_LR_Salient_NoChange_CuedRetrieval_retrieval_patch_orientation_105_retrieval_position_1" 1 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69; 42 62 292 292 399 125 2142 2992 2342 fixation_cross gabor_149 gabor_040 gabor_061 gabor_178 gabor_149_alt gabor_040_alt gabor_061 gabor_178 "1_65_Encoding_Working_Memory_MEG_P8_LR_Salient_NoChange_CuedRetrieval_300_300_399_2150_3000_2350_gabor_patch_orientation_149_040_061_178_target_position_1_2_retrieval_position_2" gabor_circ gabor_040_framed gabor_circ gabor_circ blank blank blank blank fixation_cross_white "1_65_Retrieval_Working_Memory_MEG_P8_LR_Salient_NoChange_CuedRetrieval_retrieval_patch_orientation_040_retrieval_position_2" 1 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69; 42 62 292 292 399 125 1992 2992 2092 fixation_cross gabor_128 gabor_010 gabor_053 gabor_087 gabor_128_alt gabor_010 gabor_053_alt gabor_087 "1_66_Encoding_Working_Memory_MEG_P8_LR_Salient_NoChange_CuedRetrieval_300_300_399_2000_3000_2100_gabor_patch_orientation_128_010_053_087_target_position_1_3_retrieval_position_1" gabor_128_framed gabor_circ gabor_circ gabor_circ blank blank blank blank fixation_cross_white "1_66_Retrieval_Working_Memory_MEG_P8_LR_Salient_NoChange_CuedRetrieval_retrieval_patch_orientation_128_retrieval_position_1" 1 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69; 42 61 292 292 399 125 1792 2992 2142 fixation_cross gabor_160 gabor_112 gabor_007 gabor_138 gabor_160_alt gabor_112 gabor_007 gabor_138_alt "1_67_Encoding_Working_Memory_MEG_P8_LR_Salient_DoChange_CuedRetrieval_300_300_399_1800_3000_2150_gabor_patch_orientation_160_112_007_138_target_position_1_4_retrieval_position_1" gabor_024_framed gabor_circ gabor_circ gabor_circ blank blank blank blank fixation_cross_white "1_67_Retrieval_Working_Memory_MEG_P8_LR_Salient_DoChange_CuedRetrieval_retrieval_patch_orientation_024_retrieval_position_1" 2 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69; 42 63 292 292 399 125 2142 2992 2392 fixation_cross gabor_162 gabor_003 gabor_018 gabor_089 gabor_162_alt gabor_003 gabor_018_alt gabor_089 "1_68_Encoding_Working_Memory_MEG_P8_LR_Salient_DoChange_UncuedRetriev_300_300_399_2150_3000_2400_gabor_patch_orientation_162_003_018_089_target_position_1_3_retrieval_position_4" gabor_circ gabor_circ gabor_circ gabor_139_framed blank blank blank blank fixation_cross_white "1_68_Retrieval_Working_Memory_MEG_P8_LR_Salient_DoChange_UncuedRetriev_retrieval_patch_orientation_139_retrieval_position_4" 2 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69; 42 62 292 292 399 125 2042 2992 1892 fixation_cross gabor_133 gabor_175 gabor_155 gabor_068 gabor_133 gabor_175 gabor_155_alt gabor_068_alt "1_69_Encoding_Working_Memory_MEG_P8_LR_Salient_NoChange_CuedRetrieval_300_300_399_2050_3000_1900_gabor_patch_orientation_133_175_155_068_target_position_3_4_retrieval_position_4" gabor_circ gabor_circ gabor_circ gabor_068_framed blank blank blank blank fixation_cross_white "1_69_Retrieval_Working_Memory_MEG_P8_LR_Salient_NoChange_CuedRetrieval_retrieval_patch_orientation_068_retrieval_position_4" 1 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69; 42 63 292 292 399 125 1842 2992 2042 fixation_cross gabor_013 gabor_043 gabor_093 gabor_150 gabor_013 gabor_043 gabor_093_alt gabor_150_alt "1_70_Encoding_Working_Memory_MEG_P8_LR_Salient_DoChange_UncuedRetriev_300_300_399_1850_3000_2050_gabor_patch_orientation_013_043_093_150_target_position_3_4_retrieval_position_1" gabor_060_framed gabor_circ gabor_circ gabor_circ blank blank blank blank fixation_cross_white "1_70_Retrieval_Working_Memory_MEG_P8_LR_Salient_DoChange_UncuedRetriev_retrieval_patch_orientation_060_retrieval_position_1" 2 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69; }; # baselinePost (at the end of the session) trial { picture { box frame1; x=0; y=0; box frame2; x=0; y=0; box background; x=0; y=0; bitmap fixation_cross_black; x=0; y=0; }; time = 0; duration = 5000; code = "BaselinePost"; port_code = 92; };
9ab52d290025567636daaf457e3bbf37baccb4cd
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/set11/s_Fundamentals_Of_Engineering_Electromagnetics_S._Bhooshan_980.zip/Fundamentals_Of_Engineering_Electromagnetics_S._Bhooshan_980/CH1/EX1.7/1_7.sce
058eeea2e1915822ee9f8f746385dbe6ec98e216
[]
no_license
hohiroki/Scilab_TBC
cb11e171e47a6cf15dad6594726c14443b23d512
98e421ab71b2e8be0c70d67cca3ecb53eeef1df6
refs/heads/master
2021-01-18T02:07:29.200029
2016-04-29T07:01:39
2016-04-29T07:01:39
null
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null
null
null
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UTF-8
Scilab
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127
sce
1_7.sce
errcatch(-1,"stop");mode(2);; ; format('v',11); A=[1 3 5]; B=[0 5 0]; C=A-B; disp(C,"difference(in newton)="); exit();
c17e94e1d02cdcb2e3f126a1b848ee50dde62481
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/tst/eval/simpl2.tst
2677877ca59a8eca607b1f77ae20f8feea4c81a5
[]
no_license
namin/GETFOL
bd60e9a2d9f0905c50ff5c0cff4b6bf57a2049e2
bf42caf61799578eb82e9f17b3342bc2ee638a22
refs/heads/master
2021-10-25T08:08:20.142137
2021-10-22T16:16:40
2021-10-22T16:16:40
204,234,318
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2019-08-25T02:05:54
2019-08-25T02:05:54
null
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Scilab
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1,310
tst
simpl2.tst
COMMENT | ************************************************************* | COMMENT | * AUTHOR: Paolo Pecchiari | COMMENT | * | COMMENT | * SUBJECT: SIMPLIFY TEST | COMMENT | * | COMMENT | * GETFOL VERSION: September 1990 | COMMENT | * | COMMENT | ************************************************************* | declare indconst a b c; DECREP rep1 rep2; attach a to a; attach b to[*] b; attach c to [rep1]c; hardware c dar c; declare funconst f 2; declare predconst p 2; declare predconst pp 1; attach pp to pp; attach f to f; attach f to [rep1 rep2 = *] l; attach p to p; attach p to [rep1 *] p; declare sentconst S1,S2,S3; attach S1 to T; simplify S1; simplify S1 and S1; simplify S1 imp S1; attach S2 to NIL; simplify S2; attach S3 to UNDEF&; simplify S3; declare predconst P 2; attach P to P; DEFLAM P(x y) T; attach a to a; attach b to b; simplify P(a b); DEFLAM fact(n) (IF (EQ n 0) 1 (* n (fact (- n 1)))); know natnums; declare funconst fact 1; attach fact to [NATNUMREP=NATNUMREP]fact; simplify fact(3); attach a to c; DEFLAM P(a b) (IF (EQ a (QUOTE c))T NIL); simplify P(a b); simplify P(b a); declare sort s; DEFLAM s(x) T; attach s to s; simplify s(a); declare sort t; moregeneral t <s>; simplify t(a);
000d83dd905d9cea4fc778fa1fb2ca6c06fa8993
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/opp6code/pkgcur.tst
a2887ebe7a7e9b0a6d32a5bb9f60d928c67acbfd
[]
no_license
thangduong3010/PL-SQL
bc0fa5c3400e46acc0ab63156573590935607b5d
1415772c87750bd30625eacf2bd116fb7e0c0aae
refs/heads/master
2020-05-22T06:57:54.352234
2016-12-26T04:47:27
2016-12-26T04:47:27
39,061,697
1
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null
null
null
null
UTF-8
Scilab
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1,337
tst
pkgcur.tst
CREATE OR REPLACE PROCEDURE pkgcur_test1 (deptno_in IN INTEGER) IS rec emp%ROWTYPE; BEGIN /* Accessing the package cursor directly: OPEN and FETCH. */ OPEN personnel.emps_for_dept (deptno_in); FETCH personnel.emps_for_dept INTO rec; p.l (rec.ename); END; / CREATE OR REPLACE PROCEDURE pkgcur_test2 IS rec emp%ROWTYPE; BEGIN /* Accessing the package cursor directly: JUST FETCH. */ FETCH personnel.emps_for_dept INTO rec; p.l (rec.ename); END; / /* Now try out the direct access method */ BEGIN pkgcur_test1 (10); pkgcur_test2; pkgcur_test2; CLOSE personnel.emps_for_dept; /* This will try to open twice, and raise an error. */ pkgcur_test1 (20); pkgcur_test2; pkgcur_test1 (30); pkgcur_test2; /* And remember, it's STILL not closed. */ END; / /* Now try out the packaged procedures */ BEGIN personnel.open_emps_for_dept (10); pkgcur_test2; pkgcur_test2; personnel.close_emps_for_dept; /* Now my sequential opens will not cause a problem. */ personnel.open_emps_for_dept (20); pkgcur_test2; personnel.open_emps_for_dept (30); pkgcur_test2; /* Don't forget to close... */ personnel.close_emps_for_dept; EXCEPTION WHEN OTHERS THEN /* Even or especially when an exception occurs... */ personnel.close_emps_for_dept; END; /
db732f67307f083511191551e1b1d0270d1b667d
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/1478/CH2/EX2.18.56/2_18_56.sce
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[]
no_license
FOSSEE/Scilab-TBC-Uploads
948e5d1126d46bdd2f89a44c54ba62b0f0a1f5e1
7bc77cb1ed33745c720952c92b3b2747c5cbf2df
refs/heads/master
2020-04-09T02:43:26.499817
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Scilab
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sce
2_18_56.sce
//water and its treatment// //example 2.18.56// clc Hardness=300//Hardness of water(mg/lit) or ppm// H=Hardness/1000//Hardness of water(gms/lit)// volume_NaCl=75//Volume of NaCl// Wt_per_Litre=75//gms NaCl consumed by zeolite bed per litre// total_wt=Wt_per_Litre*volume_NaCl//total gms NaCl consumed by zeolite bed// CaCO3_equivalent=total_wt*50/58.595//in terms of (gms/lit)// volume_hardwater=CaCO3_equivalent/H printf("\nQuantity of water softened using zeolite bed is %.f litres",volume_hardwater);
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/2153/CH2/EX2.6.a/ex_2_6_a.sce
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FOSSEE/Scilab-TBC-Uploads
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2020-04-09T02:43:26.499817
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sce
ex_2_6_a.sce
//Example 2.6.a : the energy of the photon emitted clc; clear; close; format('v',5); //given data : Z=1;//for hydrozen n1=3; n2=2; E3=-(13.6*Z^2)/n1^2; E2=-(13.6*Z^2)/n2^2; del_E=E3-E2; disp(del_E,"the energy of photon emitted,del_E(eV) = ")
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/377/CH8/EX8.3/8_3.sce
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FOSSEE/Scilab-TBC-Uploads
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2020-04-09T02:43:26.499817
2018-02-03T05:31:52
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sce
8_3.sce
disp("n=σ/(e*μd)"); a=5.9*10^7; //say σ=a b=3.2*10^-3; //say μd=b e=1.6*10^-19; d=8.5*10^28; n=a/(e*b); printf('\n The value of n is %f*10^29 m^-3',n*10^-29); c=n/d; //say d=concentration of copper atoms and c=avg. no. of electrons/atom printf('\n The average number of electrons/atom is %1.2f',c);
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[]
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FOSSEE/Scilab-TBC-Uploads
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sce
example2_3_pg69.sce
// Example2_3_pg69.sce // To find primary voltage and current supplied // Theory of Alternating Current Machinery by Alexander Langsdorf // First Edition 1999, Thirty Second reprint // Tata McGraw Hill Publishing Company // Example in Page 69 clear; clc; close; // Given data // Transformer A data va_A = 100e+3; // VA rating of Transformer v1_A = 4600; // Voltage in volts v2_A = 230; // Voltage in volts x_A = 0.027; // Reactance in Ohms r_A = 0.008; // Resistance in Ohms // Transformer B data va_B = 200e+3; // VA rating of Transformer v1_B = 4610; // Voltage in volts v2_B = 225; // Voltage in volts x_B = 0.013; // Reactance in ohms r_B = 0.003; // Resistance in ohms // Common Data P_load = 150e+3; // Power in Watts pf = +0.85; // + denotes lagging power factor vg = 225; // Voltage in volts // Calculations // Transformer A a_1 = v1_A / v2_A; z_1 = r_A + x_A*%i; y_1 = 1 / z_1; y_1_HVside = y_1 / a_1; // Transformer B a_2 = v1_B / v2_B; z_2 = r_B + x_B*%i; y_2 = 1 / z_2; y_2_HVside = y_2 / a_2; y_K = y_1 + y_2; y_K_HVside = y_1_HVside + y_2_HVside; // To find the current I = P_load / (vg * pf) ; V2_vec = vg; theta = acos(0.85); I_vec = I*(cos(theta) - sin(theta)*%i); // - sign indicates I lags V V1_vec = ((V2_vec * y_K) + I_vec) / (y_K_HVside) ; I1_vec = (I_vec + V1_vec*((y_K / a_1) - y_K_HVside)) / (z_1 * y_K ); I2_vec = I_vec - I1_vec; printf(' Primary Voltage of transformer = %f /_ %f Volts\n', abs(V1_vec), (atan((imag(V1_vec))/(real(V1_vec))))*180/%pi); printf(' Current Supplied by transformer A = %f /_ %f Volts\n', abs(I1_vec), (atan((imag(I1_vec))/(real(I1_vec))))*180/%pi); printf(' Current Supplied by transformer B = %f /_ %f Volts\n', abs(I2_vec), (atan((imag(I2_vec))/(real(I2_vec))))*180/%pi); // Result // Primary Voltage of transformer = 4678.867698 /_ 1.211839 Volts // Current Supplied by transformer A = 361.324403 /_ -44.400715 Volts // Current Supplied by transformer B = 438.858386 /_ -21.431553 Volts
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/macros/ifftn.sci
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[]
no_license
vu2swz/FOSSEE-Signal-Processing-Toolbox
aa5f283d050be62418dddbf41552f197b9949c4c
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refs/heads/master
2021-08-19T20:06:19.346872
2017-11-27T09:57:21
2017-11-27T09:57:21
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UTF-8
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sci
ifftn.sci
function y = ifftn(A, varargin) funcprot(0); rhs = argn(2) if(rhs<1 | rhs>2) error("Wrong number of input arguments."); end select(rhs) case 1 then y = callOctave("ifftn",A); case 2 then y = callOctave("ifftn",A, varargin(1)); end endfunction
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/Octave/builder.sce
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[]
no_license
vbhatt-cs/Scilab-IPT
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78dc014d91c81043e4e81f3055c777ad6e7b0a75
refs/heads/master
2021-05-30T18:54:47.751439
2016-03-19T16:41:03
2016-03-19T16:41:03
null
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0
null
null
null
null
UTF-8
Scilab
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false
683
sce
builder.sce
// This file is released under the 3-clause BSD license. See COPYING-BSD. function builder_gw_cpp() WITHOUT_AUTO_PUTLHSVAR = %t; tbx_build_gateway("skeleton_cpp", .. ["callOctave","callOctave"], .. ["s_o_test_v7.cpp"], .. get_absolute_file_path("builder.sce"),[],["-L/usr/lib/x86_64-linux-gnu -loctave -L/usr/lib/x86_64-linux-gnu -loctinterp"],["-I/usr/include/scilab -I/usr/include/octave-3.8.1/ -I/usr/include/octave-3.8.1/octave/"],[]); //Original include was octave-4.0.0 //Ubuntu Trusty doesnt have it in the repo, so I downgraded it to /usr/include/octave-3.8.1 endfunction builder_gw_cpp(); clear builder_gw_cpp; // remove builder_gw_cpp on stack
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[]
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FOSSEE/Scilab-TBC-Uploads
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sce
4_1.sce
pathname=get_absolute_file_path('4_1.sce') filename=pathname+filesep()+'4_1_data.sci' exec(filename) //Change in efficiency with respect to efficiency //z=dn/n n=1-((1/r)^(y-1)) z=-((1-n)*(y-1)*log(8)*(dCv))/n printf("\n\nRESULTS\n\n") printf("\nThe effect of efficiency on Otto cycle is %f",z*100)
ddf5e6ab81018dd34fb62db92781628d0f7f5dc0
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/App/js/app/components/grid.tst
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[]
no_license
mike-ward/Nancy.Start
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ff5804c48b4ec18a8793a9d2eb1ff3bac6fe5788
refs/heads/master
2021-01-09T05:24:39.589221
2018-02-19T18:42:53
2018-02-19T18:42:53
80,761,860
1
0
null
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null
null
UTF-8
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314
tst
grid.tst
describe('Grid', () => { it('should contain a div with a class of .footer', () => { const vnode = App.Components.grid.view({ attrs: { gridOptions: { columns: [], data: [] } }, state: { sortedColumnId: null } }); expect(vnode.tag).toBe('div'); expect(vnode.attrs.className).toBe('grid'); }); });
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/projects/01/And4Way.tst
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[]
no_license
hiragi-gkuth/n2t
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refs/heads/main
2023-06-10T21:34:49.395174
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2021-07-03T09:06:34
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tst
And4Way.tst
load And4Way.hdl, output-file And4Way.out, compare-to And4Way.cmp, output-list a%B3.1.3 b%B3.1.3 c%B3.1.3 d%B3.1.3 out%B3.1.3; set a 0, set b 0, set c 0, set d 0, eval, output; set a 0, set b 0, set c 0, set d 1, eval, output; set a 0, set b 0, set c 1, set d 0, eval, output; set a 0, set b 0, set c 1, set d 1, eval, output; set a 0, set b 1, set c 0, set d 0, eval, output; set a 0, set b 1, set c 0, set d 1, eval, output; set a 0, set b 1, set c 1, set d 0, eval, output; set a 0, set b 1, set c 1, set d 1, eval, output; set a 1, set b 0, set c 0, set d 0, eval, output; set a 1, set b 0, set c 0, set d 1, eval, output; set a 1, set b 0, set c 1, set d 0, eval, output; set a 1, set b 0, set c 1, set d 1, eval, output; set a 1, set b 1, set c 0, set d 0, eval, output; set a 1, set b 1, set c 0, set d 1, eval, output; set a 1, set b 1, set c 1, set d 0, eval, output; set a 1, set b 1, set c 1, set d 1, eval, output;
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/qammod.sci
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kUser18/comm_scilab
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refs/heads/master
2020-03-26T11:00:15.328570
2018-09-30T20:35:50
2018-09-30T20:35:50
144,823,988
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qammod.sci
function Q = qammod(x, m) // //Function Description //qammod: This function modulates a sequence of integers //x into a complex baseband quadrature amplitude modulation signal. // //Calling sequence:- //Psk = qammod(x,m) // //Parameters: //x: int - matrix // The sequence of integers to be modulated. // Each entry must be in the range [0,m-1] //m: int - scalar // The number of constellation points. // Must be greater than or equal to 1. // Must be an even power of 2. // //Example Usage // P = qammod(0:15, 16) // //Authors //Devdatta Kathale // //Function Description Ends // //Check inputs if or(m<floor(m)) | or(m<1) then error('qammod: m must be a positive integer.') end k = log2(m) if k > floor(k) then error('qammod: M must be a square of a power of 2') end if or(x<0) | or(x>m-1) | or(x>floor(x)) then error('qammod: x must be a vector of integers in the range [0,M-1]') end // //Construct constellation n = sqrt(m) mymatrix = (0:n-1)'*ones(1,n) + %i*ones(n,1)*(0:n-1) mymatrix = mymatrix*2 - mymatrix($) constellation = mymatrix' // //Flatten, assign values, and restore shape x_dim = size(x) x_flat = matrix(x, [-1,1] ) Q = constellation(x_flat+1) Q = matrix(Q, x_dim) // endfunction
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/2273/CH1/EX1.5/ex1_5.sce
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FOSSEE/Scilab-TBC-Uploads
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2020-04-09T02:43:26.499817
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ex1_5.sce
//find the DC supply voltage clear; clc; //soltion //given //consider 1 phase AC system pf=0.8; v=(33*10^3);//volts r1=0.15;//ohm//total resistance of the 1 phase line PD1=0.2;//percentage voltage drop in 1 phase AC system Vd=PD1*v;//volt//voltage drop in the line I1=Vd/r1;//ampere//load current p=v*I1*pf;//watts//power recieved by the consumer P=p/10^8; printf("1 phase AC system \n"); printf("Voltage drop= %d volts\n",Vd); printf("Load current= %d ampere\n",I1); printf("Power recieved by consumer= %d watts or= %f*10^5 kW \n\n",p,P); //consider DC 2 wire system r2=0.1;//ohm//total resistance of the DC 2 wire line PD2=0.25;//percentage voltage drop in DC 2 wire system printf("DC 2 wire system\n"); printf("Load current in DC system= %f/V \n",p); printf("Voltage drop= Load curret*line resistance= I2*R2= (%d/V)*%f \n", p, r2); printf("Given voltage drop is 25 percentage of max voltage= .25*V \n "); V=sqrt((p*r2)/PD2); printf("Equating above equation we get V= %f KV",V/1000);
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/macros/goertzel.sci
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2020-03-22T21:37:22.593805
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goertzel.sci
function Y = goertzel(X,INDVEC,DIM) //Computes DFT using the second order Goertzel Algorithm //Calling Sequence //Y = goertzel(X,INDVEC,DIM) //Parameters //X //A vector matrix or n-dimensional array //INDVEC //The indices at which the DFT is to be computed //DIM //The dimension along which the algorithm is to be implemented //Description //goertzel(X,INDVEC) //Computes the DFT of X at indices INDVEC using the second order algorithm along //the first non-singleton dimension. Elements of INDVEC must be positive integers //less than the length of the first non-singleton dimension. If INDVEC is empty //the DFT is computed at all indices along the first non-singleton dimension //goertzel(X,INDVEC,DIM) //Implements the algorithm along dimension DIM //In general goertzel is slower than fft when computing the DFT for all indices //along a particular dimension. However it is computationally more efficient when //the DFT at only a subset of indices is desired //Example //x=rand(1,5) //x = // // 0.6283918 0.8497452 0.6857310 0.8782165 0.0683740 //y=goertzel(x,2); //y = // // - 0.3531539 - 0.6299881i //Author //Ankur Mallick //References //Goertzel, G. (January 1958), "An Algorithm for the Evaluation of Finite Trigonometric Series", American Mathematical Monthly 65 (1): 34–35, doi:10.2307/2310304 funcprot(0); if(argn(2)<3|isempty(DIM)) DIM=find(size(X)>1,1); //First non-singleton dimension end if(DIM>ndims(X)) error('Invalid Dimensions'); end perm=[DIM, 1:DIM-1, DIM+1:ndims(X)]; X=permute(X,perm); //Makes DIM the leading dimension S=size(X); if(argn(2)<2|isempty(INDVEC)) INDVEC=1:S(1); end if(max(INDVEC)>S(1)|min(INDVEC)<1) error('Index out of bounds'); elseif(or(INDVEC~=round(INDVEC))) error('Indices must be integers'); end X1=matrix(X,1,prod(S)); T=[type(X1), type(INDVEC), type(DIM)]; //all inputs should be of type double if(~and(T==1)) error('Invalid data type'); end //Implementing Goertzel algorithm len=[length(INDVEC), S(2:length(S))]; Y=matrix(zeros(1,prod(len)),len); v=ones(length(INDVEC),1); w=(2*%pi*(INDVEC-1)/S(1))'; re=2*cos(w); im=sin(w); for i=1:prod(S(2:length(S))) x=X(:,i) sp1=0; sp2=0; for j=1:S(1) s=x(j)*v+re.*sp1-sp2; sp2=sp1; sp1=s; end Y(:,i)=((re/2)+im*%i).*sp1-sp2; end iperm(perm)=1:length(perm); Y=permute(Y,iperm); //Converting Y to the original shape of X endfunction
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/293/CH9/EX9.3/eg9_3.sce
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2020-04-09T02:43:26.499817
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eg9_3.sce
//a //transistor parameters R2 = 0.625; hie = 1.67; Rb = 4.16; Rl = 2.4; Roe = 150; Cc = 25 * 10^-6; rBB = 0.29; rBE = 1.375; Cd = 6900 * 10^-12; Ct = 40 * 10^-12; gm = 0.032; Req = (Rl*Roe)/(Rl + Roe); hfe = 44; a = 1 + (R2/Req); b = 1 + (hie/Rb); Aim = -hfe/(a*b); // mid band frequency gain disp("a") disp(Aim,"The mid band frequency gain of the first stage of the circuit is: ") //b Tl = 2*%pi*(Req + R2)*Cc*(10^3); Fl = 1/Tl; Rp = (Req*R2)/(Req + R2); C = Cd + Ct*(1 + gm*Rp*10^3); d = Rb + hie ; e = rBE * (Rb + rBB)* 10^3 * C ; Fh = d/(2*%pi*e); BW = Fh - Fl; disp("b") disp(BW, "The bandwidth of the first stage amplifier in Hz is :")
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2020-04-09T02:43:26.499817
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Example_1_15.sce
//Example 1.15 clc; clear; disp("Possible outcomes...(1,1),(1,2)......(6,5),(6,6)"); N=36; disp(N,"total No. of possible outcomes (N) ="); disp("Favourable outcomes....(2,6),(3,4),(4,3),(6,2)"); M=4 disp(M,"No. of Favorable cases of (dice points product is 12)="); P=M/N; disp(P,"Probability of (dice points product is 12)=");
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EX3_19.sce
//EXAMPLE 3.19 PG NO-187 VL=230; VP=VL/1.732; IL=13.279; COSQ=0.8; SINQ=0.6; P=(1.732*VL*IL*COSQ) R.P=(1.732*VL*IL*SINQ) VA=(1.732*VL*VP) disp('i) POWER FACTOR = '+string (P)+' W'); disp('i) POWER FACTOR = '+string (R.P)+' var'); disp('i)TOTAL VA = '+string (VA)+' VA');
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Example6_14c.sce
clc //Given that m = 9e-31 // mass in kg E = 1e9 // Energy of accelerated electron in eV c = 3e8 // speed of light in m/s // sample problem 14c page No. 227 printf("\n \n\n # Problem 14c # \n") printf("\n Standard formula used \n E = m*c^2") E_0 = m * c^2// calculation of rest mass energy ratio = E / E_0 *1.6e-19// calculation of Ratio of energy to rest mass energy printf ("\n Ratio of energy to rest mass energy is %e.",ratio )
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exa3_1.sce
// Example 3.1 // Model of a Battery v_s=6; // Terminal voltage of Battery when i=0 R_s= -(6.0-5.8)/(0-0.05);// Slope Resistance from v-i curve // Setting v>= 0.9v_s=5.4 V // Using Ohm's Law and above mentioned conditions we get // 5.4=(6*R_L)/(4+R_L) R_L=(5.4*4)/0.6;// Minimum value of Load resistance for treating Battery as a // ideal voltage source // R_L >=36 Ohms disp(R_L,"Minimum value of Load Resistance(in Ohms)=")
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HR2.prev.tst
polys[0]=0 polys[1]=1 polys[2]=1 polys[3]=-1 order=2 initialize: mN=-1, mRElen=3, mNPlen=1, mOrder=2, mLinit=2 polys[0]=0 polys[1]=1 polys[2]=1 polys[3]=-1 order=2 initialize: mN=-1, mRElen=3, mNPlen=1, mOrder=2, mLinit=2 setGfType: mN=2, mRElen=3, mNPlen=1, mOrder=2, mLinit=-1 setRE(1,1): [0,*0,0] -> [0,*1,0] result=1, RE=[0,*1,0] 1 1 setRE(0,0): [*0,1,0] -> [*0,1,0] result=0, RE=[*0,1,0] 0 0 pvals[3]=-1 pvals[2]=1 pvals[1]=1 pvals[0]=0 sum: 0 (pvals[3]=-1, RE=[0,1,*0]) -> -1 (pvals[3]=-1, RE=[0,*1,0]) sum: -1 (pvals[2]=1, RE=[0,*1,0]) -> -1 (pvals[2]=1, RE=[*0,1,0]) setRE(2,1): [0,1,*0] -> [0,1,*1] result=1, RE=[0,1,*1] -1 1 pvals[3]=-1 pvals[2]=1 pvals[1]=1 pvals[0]=0 sum: 0 (pvals[3]=-1, RE=[0,*1,1]) -> 0 (pvals[3]=-1, RE=[*0,1,1]) sum: 0 (pvals[2]=1, RE=[*0,1,1]) -> 1 (pvals[2]=1, RE=[0,1,*1]) setRE(1,-1): [0,*1,1] -> [0,*-1,1] result=-1, RE=[0,*-1,1] -2 -1 pvals[3]=-1 pvals[2]=1 pvals[1]=1 pvals[0]=0 sum: 0 (pvals[3]=-1, RE=[*0,-1,1]) -> -1 (pvals[3]=-1, RE=[0,-1,*1]) sum: -1 (pvals[2]=1, RE=[0,-1,*1]) -> -2 (pvals[2]=1, RE=[0,*-1,1]) setRE(0,2): [*0,-1,1] -> [*2,-1,1] result=2, RE=[*2,-1,1] -3 2 pvals[3]=-1 pvals[2]=1 pvals[1]=1 pvals[0]=0 sum: 0 (pvals[3]=-1, RE=[2,-1,*1]) -> 1 (pvals[3]=-1, RE=[2,*-1,1]) sum: 1 (pvals[2]=1, RE=[2,*-1,1]) -> 3 (pvals[2]=1, RE=[*2,-1,1]) setRE(2,-3): [2,-1,*1] -> [2,-1,*-3] result=-3, RE=[2,-1,*-3] -4 -3 pvals[3]=-1 pvals[2]=1 pvals[1]=1 pvals[0]=0 sum: 0 (pvals[3]=-1, RE=[2,*-1,-3]) -> -2 (pvals[3]=-1, RE=[*2,-1,-3]) sum: -2 (pvals[2]=1, RE=[*2,-1,-3]) -> -5 (pvals[2]=1, RE=[2,-1,*-3]) setRE(1,5): [2,*-1,-3] -> [2,*5,-3] result=5, RE=[2,*5,-3] -5 5 pvals[3]=-1 pvals[2]=1 pvals[1]=1 pvals[0]=0 sum: 0 (pvals[3]=-1, RE=[*2,5,-3]) -> 3 (pvals[3]=-1, RE=[2,5,*-3]) sum: 3 (pvals[2]=1, RE=[2,5,*-3]) -> 8 (pvals[2]=1, RE=[2,*5,-3]) setRE(0,-8): [*2,5,-3] -> [*-8,5,-3] result=-8, RE=[*-8,5,-3] -6 -8 pvals[3]=-1 pvals[2]=1 pvals[1]=1 pvals[0]=0 sum: 0 (pvals[3]=-1, RE=[-8,5,*-3]) -> -5 (pvals[3]=-1, RE=[-8,*5,-3]) sum: -5 (pvals[2]=1, RE=[-8,*5,-3]) -> -13 (pvals[2]=1, RE=[*-8,5,-3]) setRE(2,13): [-8,5,*-3] -> [-8,5,*13] result=13, RE=[-8,5,*13] -7 13 pvals[3]=-1 pvals[2]=1 pvals[1]=1 pvals[0]=0 sum: 0 (pvals[3]=-1, RE=[-8,*5,13]) -> 8 (pvals[3]=-1, RE=[*-8,5,13]) sum: 8 (pvals[2]=1, RE=[*-8,5,13]) -> 21 (pvals[2]=1, RE=[-8,5,*13]) setRE(1,-21): [-8,*5,13] -> [-8,*-21,13] result=-21, RE=[-8,*-21,13] -8 -21 pvals[3]=-1 pvals[2]=1 pvals[1]=1 pvals[0]=0 sum: 0 (pvals[3]=-1, RE=[*-8,-21,13]) -> -13 (pvals[3]=-1, RE=[-8,-21,*13]) sum: -13 (pvals[2]=1, RE=[-8,-21,*13]) -> -34 (pvals[2]=1, RE=[-8,*-21,13]) setRE(0,34): [*-8,-21,13] -> [*34,-21,13] result=34, RE=[*34,-21,13] -9 34 pvals[3]=-1 pvals[2]=1 pvals[1]=1 pvals[0]=0 sum: 0 (pvals[3]=-1, RE=[34,-21,*13]) -> 21 (pvals[3]=-1, RE=[34,*-21,13]) sum: 21 (pvals[2]=1, RE=[34,*-21,13]) -> 55 (pvals[2]=1, RE=[*34,-21,13]) setRE(2,-55): [34,-21,*13] -> [34,-21,*-55] result=-55, RE=[34,-21,*-55] -10 -55
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Rotate3pt.sci
// 08.08.15 function Ans=Rotate3pt(varargin) Eps=10^(-4); Nargs=length(varargin); P=varargin(1); W1=varargin(2); W2=varargin(3); C=[0,0,0]; if Nargs>=4 C=varargin(4); end; if type(W2)==1 & length(W2)==1 Ct=cos(W2); St=sin(W2); V3=1/norm(W1)*W1; if V3(1)==0 Tmp=[1,0,0]; else Tmp=[0,1,0]; end; W1=[Tmp(2)*V3(3)-Tmp(3)*V3(2),Tmp(3)*V3(1)-Tmp(1)*V3(3),Tmp(1)*V3(2)-Tmp(2)*V3(1)]; V1=1/norm(W1)*W1; V2=[V3(2)*V1(3)-V3(3)*V1(2),V3(3)*V1(1)-V3(1)*V1(3),V3(1)*V1(2)-V3(2)*V1(1)]; else Tmp=[W1(2)*W2(3)-W1(3)*W2(2),W1(3)*W2(1)-W1(1)*W2(3),W1(1)*W2(2)-W1(2)*W2(1)]; if norm(Tmp)<Eps Ans=P; return; end; V1=1/norm(W1)*W1; Ns=V1(1)*W2(1)+V1(2)*W2(2)+V1(3)*W2(3); Tmp=W2-Ns*V1; V2=1/norm(Tmp)*Tmp; Tmp=[V1(2)*V2(3)-V1(3)*V2(2),V1(3)*V2(1)-V1(1)*V2(3),V1(1)*V2(2)-V1(2)*V2(1)]; V3=1/norm(Tmp)*Tmp; Ct=Ns/norm(W2); St=sqrt(1-Ct^2); end; if norm(Tmp)<Eps Ans=P; return; end; V1x=V1(1); V1y=V1(2); V1z=V1(3); V2x=V2(1); V2y=V2(2); V2z=V2(3); V3x=V3(1); V3y=V3(2); V3z=V3(3); if Mixtype(P)~=1 PtL=P; else PtL=MixS(P); end; Ans=[]; for N=1:Mixlength(PtL) P=Mixop(N,PtL); if P(1)==%inf Ans=Mixadd(Ans,[%inf,%inf,%inf]); continue; end; x=P(1)-C(1); y=P(2)-C(2); z=P(3)-C(3); X=((V1x*Ct+V2x*St)*V1x+(-V1x*St+V2x*Ct)*V2x+V3x^2)*x; X=X+((V1x*Ct+V2x*St)*V1y+(-V1x*St+V2x*Ct)*V2y+V3x*V3y)*y; X=X+((V1x*Ct+V2x*St)*V1z+(-V1x*St+V2x*Ct)*V2z+V3x*V3z)*z; Y=((V1y*Ct+V2y*St)*V1x+(-V1y*St+V2y*Ct)*V2x+V3x*V3y)*x; Y=Y+((V1y*Ct+V2y*St)*V1y+(-V1y*St+V2y*Ct)*V2y+V3y^2)*y; Y=Y+((V1y*Ct+V2y*St)*V1z+(-V1y*St+V2y*Ct)*V2z+V3y*V3z)*z; Z=((V1z*Ct+V2z*St)*V1x+(-V1z*St+V2z*Ct)*V2x+V3x*V3z)*x; Z=Z+((V1z*Ct+V2z*St)*V1y+(-V1z*St+V2z*Ct)*V2y+V3y*V3z)*y; Z=Z+((V1z*Ct+V2z*St)*V1z+(-V1z*St+V2z*Ct)*V2z+V3z^2)*z; Ans=Mixadd(Ans,C+[X,Y,Z]); end; if Mixlength(Ans)==1 Ans=Mixop(1,Ans); end; endfunction
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Chapter6_Example44.sce
clc clear //Input data t=100;//The given temperature of water in degree centigrade C1=1.01;//The specific heat of water at 100 degree centigrade in cal/g L=-0.64;//The rate at which the latent heat of vapourisation decreases with rise in temperature in cal/K l=540;//The latent heat of vapourisation of steam in cal //Calculations T=t+273;//The given temperature of water in K C2=L-(l/T)+C1;//The specific heat of saturated steam in cal/g //Output printf('The specific heat of satureted steam is %3.3f cal/g \n (The specific heat of saturated steam is negative)',C2)
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ex4_15.sce
// Exa 4.15 clc; clear; close; // Given data V_CC = 18;// in V bita = 90; R_C = 2.2 * 10^3;// in ohm R_E = 1.8*10^3;// in ohm R_B = 510*10^3;// in ohm I_B = V_CC/( (bita*(R_C+R_E))+R_B );// in A I_C = bita*I_B;// in A disp(I_C*10^3,"The value of I_C in mA is"); V_CE = I_B*R_B;// in V disp(V_CE,"The value of V_CE in V is");
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29_01.sce
//Problem 29.01: A coil of inductance 5 mH and resistance 10 ohm is connected in parallel with a 250 nF capacitor across a 50 V variable-frequency supply. Determine (a) the resonant frequency, (b) the dynamic resistance, (c) the current at resonance, and (d) the circuit Q-factor at resonance. //initializing the variables: R = 10; // in ohms L = 0.005; // IN Henry C = 0.25e-6; // IN fARADS V = 50; //in volts //calculation: //Resonant frequency, for parallel fr = ((1/(L*C) - ((R^2)/(L^2)))^0.5)/(2*%pi) //dynamic resistance Rd = L/(C*R) //Current at resonance Ir = V/Rd wr = 2*%pi*fr //Q-factor at resonance, Q = wr*L/R Qr = wr*L/R printf("\n\n Result \n\n") printf("\n (a)Resonance frequency is %.0f Hz ",fr) printf("\n (b)dynamic resistance %.0f ohm ",Rd) printf("\n (c)Current at resonance, Ir is %.3f A ",Ir) printf("\n (d)Q-factor at resonance is %.1f ",Qr)
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lab1-taylor.sce
M = csvRead('/home/jilcimar/PESSOAL/computacao-numerica/taylor-pendulo/files/sample.csv') x0 = 448 y0 = 77 x = M(:,1) y = M(:,2) t = M(:,3) deltaX = x - x0 deltaY = y - y0 angulo_pendolo = acos(deltaX./sqrt(deltaX**2 + deltaY**2)) function [w0, r]=coeficientes(t, ang, p) //vetores de tempo e angulo, e o período n=length(t); //numero de elementos em t w0=2*%pi/p; // frequencia em radianos A=[n sum(cos(w0*t)) sum(sin(w0*t)); sum(cos(w0*t)) sum(cos(w0*t).*cos(w0*t)) sum(cos(w0*t).*sin(w0*t)); sum(sin(w0*t)) sum(cos(w0*t).*sin(w0*t)) sum(sin(w0*t).*sin(w0*t))]; B=[sum(ang); sum(ang.*cos(w0*t)); sum(ang.*sin(w0*t));]; r=inv(A)*B; endfunction t=[t];//tempo de cada imagem ang=[angulo_pendolo]; //ângulos de cada imagem, respectivamente; p= 1.445; //período ou tempo para uma volta completa [w0,r]=coeficientes(t,ang,p) disp(w0, "w0= "); disp(r, "r= "); figure plot(t,ang,'.'); tn=min(t):1:max(t); angn=r(1)+r(2)*cos(w0*tn)+r(3)*sin(w0*tn); plot(tn,angn,'k') xgrid;
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Ex8_1.sce
clear // //given f=50 p=4 //case a s=(120*f)/p //synchronous speed printf("\n synchronous speed= %0.0f rpm",s) //case b slip=0.03 r=s-s*slip //rotor speed printf("\n rotor speed= %0.0f rpm",r) //case c r=900 //given speed of rotor slip=(s-r)/s //per unit slip rf=slip*f printf("\n rotor frequency= %0.0f Hz",rf)
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CandidateSelector expand width=4 base=9 exponent=4 left=2 right=2 fileName=data/euler422.man chain2 [[3,1,1,-5],[7,2,-5,-4],[1,-5,2,-1],[5,2,1,-8]] det=24 [631,222,558,503] [158,59,134,133] [2,22,-2,-22] chain2 [[-4,-3,6,0],[7,2,-5,-4],[8,-1,-3,-6],[5,2,1,-8]] det=28 [631,222,558,503] [158,59,134,133] [-5,22,5,-22]
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5_3.sce
//Example 5.3 //Calculate the time required for cooling of the rod. //Given d=0.0254 //m, diameter of steel rod l=0.4 //m, length of rod T1=80 //C, initial temp. T2=30 //C, ambient temp. T3=35 //c, temp. after cooling rho=7800 //kg/m^3 ,density of steel rod cp=0.473 //kj/kg C. specific heat //Calculation m=%pi/4*d^2*l*rho //kg. mass of cylinder A=%pi*d*l //m^2, area of cylinder dt=T1-T2 //c, instantaneous temp. difference h=1.32*(dt/d)^0.25 //W/m^2 C, heat transfer coefficient i=integrate('1/(T^(5/4))','T',5,50) t=i/(3.306*A/(m*cp*10^3)) printf("The required time for cooling is %f hr",t/3600)
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ex12_5.sce
// Exa 12.5 format('v',8) clc; clear; close; // Given data memory= 16;// in K memory= memory*1024;// in bits // Number of words N1= memory; disp(N1,"The number of words is : ") N2= 32;// number of bits per word disp(N2,"The number of bits per word is : ") // Number of memory cell N3= N2*memory; disp(N3,"The number of memory cell is : ")
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WT_arc_plot.sce
// This code is to plot the Fermi arcs output by Wannier Tools // Besides, this code also helps you locate the positions of a particular // area of the plot. // To use it, you must download 'arc.dat_l, arc.dat_r and input.dat // if want to plot spintexture, also need 'spindos.dat' clear; clc; xdel(winsid());exec(PiLib); // Parameters ======================================== work_dir=[]//['C:\MyDrive\Work\Sr2ReAuO6\arc-full\']; arc_bulk_plot='off' // arc.dat_bulk arc_plot='on' // arc.dat_l, arc.dat_r spin_plot='off' // spindos.dat spin_filter=[2.0,2]; // fliter to plot spin texure [dos_value, k_interval], jdos_plot='off' // arc.jdat_l, arc.jdat_r, arc.jsdat_l, arc.jsdat_r frac_cal='off' range_cal=[75,75;130 130]; save_fig='png' // 'scg', 'png' ,'off' // Main ============================================ // Parse input file ----------------------------------------------------- work_dir=PIL_dir_path(work_dir); fid=mopen(work_dir+'input.dat','r'); inp_data=mgetl(fid,-1); mclose(fid); Nk1_ind=grep(inp_data,'Nk1'); Nk1=msscanf(1,part(inp_data(Nk1_ind).. ,strindex(inp_data(Nk1_ind),'=')+1:length(inp_data(Nk1_ind))),'%f'); Nk2_ind=grep(inp_data,'Nk2'); Nk2=msscanf(1,part(inp_data(Nk2_ind).. ,strindex(inp_data(Nk2_ind),'=')+1:length(inp_data(Nk1_ind))),'%f') lat_par_ind=grep(inp_data,'LATTICE'); lat_par=msscanf(3,inp_data(lat_par_ind+2:lat_par_ind+4),'%f %f %f'); surf_par_ind=grep(inp_data,'SURFACE'); surf_par=msscanf(3,inp_data(surf_par_ind+1:surf_par_ind+3),'%f %f %f'); kslab_par_ind=grep(inp_data,'KPLANE_SLAB'); kslab_par=msscanf(3,inp_data(kslab_par_ind+1:kslab_par_ind+3),'%f %f'); // calculate reciprocal lattice vectors for slab kslab=PIL_red_BZ_vec(surf_par*lat_par); kslab_org=kslab_par(1,:)*kslab; kslab_v1=kslab_par(2,:)*kslab; kslab_v2=kslab_par(3,:)*kslab; // angle between two basis ang_v1v2=acos(kslab_v1*kslab_v2'/(norm(kslab_v1)*norm(kslab_v2)))/%pi*180; unit_v1=[1 0]; unit_v2=[cos(ang_v1v2) sin(ang_v1v2)]; // generate k-path data [k1_pt,k_path_div]=PIL_k_path([kslab_org;kslab_org+kslab_v1],Nk1); [k2_pt,k_path_div]=PIL_k_path([kslab_org;kslab_org+kslab_v2],Nk2); printf('\n'); // plot bulk spectrum -------------------------------------------------- if arc_bulk_plot=='on' then fid=mopen(work_dir+'arc.dat_bulk','r'); arc_bulk=mfscanf(-1,fid,'%f %f %f'); mclose(fid); x_pt=arc_bulk(1:Nk2:$,1); y_pt=arc_bulk(1:Nk2,2); if find(abs(k1_pt(:,1)-x_pt)>=1e-5)~=[] disp('Error: k1_pt(:,1) and arc x_pt are inconsistent!'); end if find(abs(k2_pt(:,2)-y_pt)>=1e-5)~=[] disp('Error: k2_pt(:,1) and arc y_pt are inconsistent!'); end figure(0); Sgrayplot([1:Nk1]',[1:Nk2]',matrix(arc_bulk(:,3),Nk2,Nk1)'); xset("colormap",hotcolormap(64)); colorbar(min(arc_bulk(:,3)),max(arc_bulk(:,3))); title('arc-bulk','fontsize',4); f=gcf(); f.background=-2; a=gca(); a.tight_limits='on'; a.thickness=3; a.font_size=3; a.box='on'; select save_fig case 'scg' xsave(work_dir+'arc-bulk.scg') case 'png' xs2png(0,work_dir+'arc-bulk.png') case 'off' end end // plot Fermi arc ----------------------------------------------------------- if arc_plot=='on' then f_name=['arc.dat_l','arc.dat_r']; for n=1:2 fid=mopen(work_dir+f_name(n),'r'); arc_dat=mfscanf(-1,fid,'%f %f %f %f'); mclose(fid); // check if data are consistent with input x_pt=arc_dat(1:Nk2:$,1); y_pt=arc_dat(1:Nk2,2); if find(abs(k1_pt(:,1)-x_pt)>=1e-5)~=[] disp('Error: k1_pt(:,1) and arc x_pt are inconsistent!'); end if find(abs(k2_pt(:,2)-y_pt)>=1e-5)~=[] disp('Error: k2_pt(:,1) and arc y_pt are inconsistent!'); end arc_dat(:,4)=exp(arc_dat(:,4)); //arc_dat(:,4)=log(exp(arc_dat(:,3))-exp(arc_bulk(:,3))) // plot arc data title_text=['L-all','L-surf','R-all','R-surf'] for m=1:2 figure(2*(n-1)+m); Sgrayplot([1:Nk1]',[1:Nk2]',matrix(arc_dat(:,2+m),Nk2,Nk1)'); xset("colormap",hotcolormap(64)); xlabel('Axis-1','fontsize',4); ylabel('Axis-2',"fontsize", 4); colorbar(min(arc_dat(:,2+m)),max(arc_dat(:,2+m))) title('surface-'+title_text(2*(n-1)+m),'fontsize',4); f=gcf(); f.background=-2; a=gca(); a.tight_limits='on'; a.thickness=3; a.font_size=3; a.box='on'; select save_fig case 'scg' xsave(work_dir+'arc-'+title_text(2*(n-1)+m)+'.scg') case 'png' xs2png(2*(n-1)+m,work_dir+'arc-'+title_text(2*(n-1)+m)+'.png') case 'off' end end end printf('check variables k1_pt and k2_pt for their values!'); end // plot spin texture -------------------------------------------------------- if spin_plot=='on' then fid=mopen(work_dir+'spindos.dat','r'); mgetl(fid,1); spin_dat=mfscanf(-1,fid,strcat(repmat('%f ',1,6))+' \n'); mclose(fid); // check if data are consistent with input x_pt=spin_dat(1:Nk2:$,1); y_pt=spin_dat(1:Nk2,2); if find(abs(k1_pt(:,1)-x_pt)>=1e-5)~=[] disp('Error: k1_pt(:,1) and spin x_pt are inconsistent!'); end if find(abs(k2_pt(:,2)-y_pt)>=1e-5)~=[] disp('Error: k2_pt(:,1) and spin y_pt are inconsistent!'); end // pick points to plot spin_dat(:,1:2)=PIL_nest_loop([1,Nk1;1,Nk2]); spin_sel=spin_dat(.. find(pmodulo(spin_dat(:,1),spin_filter(2))==0.. & pmodulo(spin_dat(:,2),spin_filter(2))==0.. & spin_dat(:,3)>= spin_filter(1)),:); tot_spin_sel=length(spin_sel(:,1)); spin_sel=cat(2,spin_sel,zeros(tot_spin_sel,1)); for n=1:tot_spin_sel spin_sel(n,7)=norm(spin_sel(n,4:6)); end spin_sel(:,4:7)=spin_filter(2)*spin_sel(:,4:7)/max(spin_sel(:,7)); // prepare spin plot data spin_plot=zeros(2*tot_spin_sel,3); for n=1:tot_spin_sel if spin_sel(n,6) >=0 then spin_plot(2*n-1,:)=[spin_sel(n,1:2),0]; spin_plot(2*n,:)=[spin_sel(n,1:2),0]+spin_sel(n,4:6); else spin_plot(2*n-1,:)=[spin_sel(n,1:2),0,]+abs(spin_sel(n,4:6)); spin_plot(2*n,:)=[spin_sel(n,1:2),0,]; end end figure(5); Sgrayplot([1:Nk1]',[1:Nk2]',matrix(spin_dat(:,3),Nk2,Nk1)'); try xarrows(spin_plot(:,1),spin_plot(:,2),spin_plot(:,3)); catch xarrows(spin_plot(:,1),spin_plot(:,2)); end xset("colormap",hotcolormap(64)); e=gce(); e.thickness=2; e.arrow_size=3*spin_filter(2); xlabel('Axis-1','fontsize',4); ylabel('Axis-2',"fontsize", 4); colorbar(min(spin_dat(:,3)),max(spin_dat(:,3))) f=gcf(); f.background=-2; a=gca(); a.tight_limits='on'; a.thickness=3; a.font_size=3; a.box='on'; select save_fig case 'png' xs2png(5,work_dir+'spin_texture.png'); case 'scg' xsave(work_dir+'spin_texture.scg'); case 'off' end end // plot jdos ----------------------------------------------------------- if jdos_plot=='on' then prefix=['jdat_l','jdat_r','jsdat_l','jsdat_r'] for n=1:length(length(prefix)) fid=mopen(work_dir+'arc.'+prefix(n),'r'); jdos=mfscanf(-1,fid,'%f %f %f'); mclose(fid); x_pt=jdos(1:Nk2:$,1); y_pt=jdos(1:Nk2,2); if find(abs(k1_pt(:,1)-x_pt)>=1e-5)~=[] disp('Error: k1_pt(:,1) and jdos x_pt are inconsistent!'); end if find(abs(k2_pt(:,2)-y_pt)>=1e-5)~=[] disp('Error: k2_pt(:,1) and jdos y_pt are inconsistent!'); end figure(5+n); Sgrayplot([1:Nk1]',[1:Nk2]',matrix(jdos(:,3),Nk2,Nk1)'); xset("colormap",hotcolormap(64)); colorbar(min(jdos(:,3)),max(jdos(:,3))); title('arc-'+prefix(n),'fontsize',4); f=gcf(); f.background=-2; a=gca(); a.tight_limits='on'; a.thickness=3; a.font_size=3; a.box='on'; select save_fig case 'scg' xsave(work_dir+prefix(n)'+'.scg') case 'png' xs2png(5+n,work_dir+prefix(n)'+'.png') end end end // plot jsdos ---------------------------------------------------------- // calculate focus parameters ------------------------------------------ if frac_cal=='on' then range_cal=(range_cal-1)./repmat([Nk1,Nk2],2,1); O_pt=kslab_par(1,:)+range_cal(1,:)*kslab_par(2:3,:); v1=(range_cal(2,1)-range_cal(1,1))*kslab_par(2,:); v2=(range_cal(2,2)-range_cal(1,2))*kslab_par(3,:); printf('\n'); printf('Orgin Point (fractional):\n'); printf('%f %f \n\n',O_pt); printf('V1 (fractional):\n'); printf('%f %f \n\n',v1); printf('V2 (fractional):\n'); printf('%f %f \n\n',v2); printf('Suggested mesh ratio:\n'); printf('%4.2f : 1.00\n\n',norm(v1*kslab)/norm(v2*kslab)); printf('copy and paste format:\n'); printf('%f %f \n',[O_pt;v1;v2]); end
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function [x,y,typ] = mdaq_pwm(job,arg1,arg2) pwm_desc = ["This block sets MicroDAQ PWM outputs."; "Block controls PWM module module which contains A and B channels."; "PWM period is defined in microseconds. Polarity allows to generate"; "inverted PWM waveform. Block input data should be in range 0-100."; ""; "A input - PWM A channel waveform duty" "B input - PWM B channel waveform duty" ""; "PWM module: PWM1...PWM3"; ""; "Period: 2-500000 microseconds" ""; "Polarity:"; " 0 - Active HIGH"; " 1 - Active LOW"; ""; "Set block parameters:"]; x=[];y=[];typ=[]; select job case 'set' then x=arg1 model=arg1.model; graphics=arg1.graphics; exprs=graphics.exprs; while %t do try getversion('scilab'); [ok,pwm_module_str,pwm_period,pwm_polarity,exprs]=.. scicos_getvalue(pwm_desc,.. ['Module:'; 'Period [us]:'; 'Polarity:'],.. list('str',1,'vec',1,'vec',1),exprs) catch [ok,pwm_module_str,pwm_period,pwm_polarity,exprs]=.. scicos_getvalue(pwm_desc,.. ['Module:'; 'Period [us]:'; 'Polarity:'],.. list('str',1,'vec',1,'vec',1),exprs) end if ~ok then break end pwm_module_str = convstr(pwm_module_str, 'l'); pwm_module = strtod(part(pwm_module_str, 4:5)); if isnan(pwm_module) == %t | part(pwm_module_str, 1:3) <> "pwm" then ok = %f; message("Wrong PWM module selected!"); end if pwm_module > 3 | pwm_module < 1 then ok = %f; message("Select module 1,2 or 3"); end if pwm_period < 2 | pwm_period > 500000 then ok = %f; message("Wrong PWM period value! (2-500000)"); end if pwm_polarity > 1 | pwm_polarity < 0 then ok = %f; message("Select polarity 0 or 1"); end if ok then [model,graphics,ok] = check_io(model,graphics, [1,1], [], 1, []); graphics.exprs = exprs; model.ipar = [pwm_module; pwm_period; pwm_polarity]; model.dstate = []; x.graphics = graphics; x.model = model; x.graphics.style=["mdaq_pwm;blockWithLabel;verticalLabelPosition=center;displayedLabel=%1$s;fontColor=#5f5f5f"] break; end end case 'define' then pwm_module = 1; pwm_module_str = []; pwm_period = 1000; pwm_polarity = 0; model=scicos_model() model.sim=list('mdaq_pwm_sim',5) model.in =[1;1] model.in2=[1;1] model.intyp=[1;1] model.out=[] model.evtin=1 model.rpar=[] model.ipar=[pwm_module;pwm_period;pwm_polarity] model.dstate=[]; model.blocktype='d' model.dep_ut=[%t %f] exprs=["PWM1";sci2exp(pwm_period);sci2exp(pwm_polarity)] gr_i=['xstringb(orig(1),orig(2),[''PWM:'' ; string(pwm_module)],sz(1),sz(2),''fill'');'] x=standard_define([4 3],model,exprs,gr_i) x.graphics.in_implicit=[]; x.graphics.exprs=exprs; x.graphics.style=["blockWithLabel;verticalLabelPosition=center;displayedLabel=%1$s;fontColor=#5f5f5f"] x.graphics.in_label = ["A", "B"]; end endfunction
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//Exa 2.14 clc; clear; close; //given data e=1.6*10^-19;//in coulamb resistivity=9*10^-3;//in ohm-m RH=3.6*10^-4;//in m^3-coulamb^-1 SIGMA=1/resistivity;//in (ohm-m)^-1 rho=1/RH;//in cooulamb/m^3 n=rho/e;//in m^-3 disp(n,"Density of charge carriers in m^-3 : "); MU=SIGMA*RH;//in m^2/V-s disp(MU,"Mobility in m^2/V-s : ");
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// Scilab code Ex1.3: Pg 20 (2005) clc; clear; c = 3e+08; // Velocity of light, m/s L_p = 100; // Proper length of spaceship, m v = 0.99*c; // Velocity of spaceship, m/s // Using length contracction formula, L = L_p*sqrt(1 - (v/c)^2); // Observed length of spaceship, m printf("Observed length of spaceship = %2d m", L); // Result // Observed length of spaceship = 14 m
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clear; clc; disp("--------------Example 30.3----------------") message=['H' 'E' 'L' 'L' 'O']; key=15; // shift down key alphabet=['A' 'B' 'C' 'D' 'E' 'F' 'G' 'H' 'I' 'J' 'K' 'L' 'M' 'N' 'O' 'P' 'Q' 'R' 'S' 'T' 'U' 'V' 'W' 'X' 'Y' 'Z']; ciphertext=""; for k=1:5 // encrypt each character in the message for i=1:26 if(message(k)==alphabet(i)) // find the index of the character in the alphabet array break; end end temp=i+15; // shift down by 15 towards end of the alphabet if(temp > = 26) a=modulo(temp,26); // wrap around thhe alphabet if its greater than 26 else a=temp; end ciphertext=ciphertext+alphabet(a); // form the ciphertext end printf("The cipher text is %s.",ciphertext); // display the result
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//EXAMPLE 3-10 PG NO-180 Za=6+%i*0; Zb=5.26+%i*3; Zc=3.535+%i*3.535; Van=230.94+%i*0; Vcn=-115.47-%i*200; Vbn=-115.47+%i*200; Ya=1/Za; disp('i) admittance (Ya) is in rectangular form = '+string (Ya) +' siemens '); Yb=1/Zb; disp('i) admittance (Yb) is in rectangular form = '+string (Yb) +' siemens '); Yc=1/Zc; disp('i) admittance (Yc) is in rectangular form = '+string (Yc) +' siemens '); Von=[(Van*Ya)+(Vbn*Yb)+(Vcn*Yc)]/(Ya+Yb+Yc); disp('i) Voltage (Von) is in rectangular form = '+string (Von) +' V'); Vao=Van-Von; disp('i) Voltage (Vao) is in rectangular form = '+string (Vao) +' V'); Vbo=Vbn-Von; disp('i) Voltage (Vbo) is in rectangular form = '+string (Vbo) +' V'); Vco=Vcn-Von; disp('i) Voltage (Vco) is in rectangular form = '+string (Vco) +' V'); Ia=Vao*Ya; disp('i) CURRENT (Ia) is in rectangular form = '+string (Ia) +' A '); Ib=Vbo*Yc; disp('i) CURRENT (Ib) is in rectangular form = '+string (Ib) +' A '); Ic=Vco*Yc; disp('i) CURRENT (Ic) is in rectangular form = '+string (Ic) +' A ');
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//Example 17.1 //Uncertainty in angle of Emergence clc; clear; //given data : E=3.2D-17;//energy of enectron in J m=9.1D-31;// mass of electron in kg h=6.626D-34;// plank's constant in J.sec r=1D-6;//radius of circular hole in m p=sqrt(2*m*E);// momentum in Kg.m/sec delta_x=2*r;// uncetainty in position in m delta_p=h/(delta_x);// uncertainty in momentum in Kg.m/sec delta_theta=delta_p/p;//uncertainty in angle of emergence disp(delta_theta," Uncertainty in angle of Emergence in radian"); //in book it is wrongly calculated
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//Author: Parthasarathi Panda //parthasarathipanda314@gmail.com function [zerosort,g]=sosbreak(p) //function for breaking a polynomial in second order polynomials (and an extra linear) [zero,g]=factors(p);//factorising into real coefficient polynomials degn=degree(p); zerosort=list(); //to segregate linear and quadratic factors for i=[1:length(zero)] q=zero(i); //putting the quadratic factor at the front if degree(q)==2 then zerosort(0)=q; //putting the linear factor at the end else zerosort($+1)=q; end end if (modulo(degn,2))==0 then e=length(zerosort); //leave the last linear element if an odd degree polynomial else e=length(zerosort)-1; end for i=[e:-2:1] q=zerosort(i); if degree(q)==2 then break; end zerosort(i)=q*zerosort(i-1);//combining 2 linear polynomial into one quadratic polynomial zerosort(i-1)=null();//removing leftover linear polynomial end endfunction
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tone_oddball_450SOA.sce
# port code 201 = start recording # port code 200 = pause recording # port code 17 = standard (100ms sound) isi = 350 soa = 450 # port code 19 = deviant (180ms sound) isi = 270 soa = 450 scenario = "tone_oddball_450SOA"; no_logfile = false; scenario_type = trials; default_background_color = 0, 0, 0; default_text_color = 255, 0, 255; default_font_size = 18; write_codes = true; pulse_width = 10; pcl_file = "tone_oddball_450SOA.pcl"; begin; # port codes: # 3 = 100 ms as a standard. # 5 = 180 ms as a deviant. #Load the auditory stimuli: sound { wavefile { filename = "1000Hz_100ms.wav"; preload = true; }; } standard_tone; sound { wavefile { filename = "1000Hz_180ms.wav"; preload = true; }; } deviant_tone; picture { } default; trial { trial_duration = 2000; stimulus_event { picture default; code = "450 ISI"; port_code = 201; time = 0; }; } nothing_trial; trial { trial_duration = 350; stimulus_event { nothing{}; time = 0; }event_isi; } isi_trial; trial { stimulus_event { sound standard_tone; time = 0; code = "standard"; port_code = 17; } event_standard; }standard_trial; trial { stimulus_event { sound deviant_tone; time = 0; code = "deviant"; port_code = 19; } event_deviant; }deviant_trial; trial { trial_duration = 2000; stimulus_event { nothing{}; code = "455 ISI"; port_code = 200; time = 0; } event_end_block; } end_block_trial;
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//CHAPTER 1- D.C. CIRCUIT ANALYSIS AND NETWORK THEOREMS //Example 30 clc; disp("CHAPTER 1"); disp("EXAMPLE 30"); //VARIABLE INITIALIZATION I1=25; //current source in Amperes I2=20; //current source in Amperes v=20; //voltage source in Volts r1=4; //LHS resistance in Ohms r2=10; //in Ohms r3=2; //in Ohms r4=1; //in Ohms r5=10; //RHS resistance in Ohms //SOLUTION //source transformation v1=I1*r1; //current source I1 is converted to voltage source v1 v2=I2*r3; //current source I2 is converted to voltage source v2 //using mesh analysis //(8)IA+(-1)IB=30........eq (1) //(-2)IA+(3)IB=20........eq (2) //solving the equations by matrix method A=[8 -1;-2 3]; b=[30;20]; x=inv(A)*b; IA=x(1,:); //to access the 1st element of 2X1 matrix IB=x(2,:); //to access the 2nd element of 2X1 matrix disp(sprintf("By Mesh analysis I_A= %d A and I_B= %d A",IA,IB)); //using nodal analysis req=r1+r2; res=(v1/req)+(v2/r3)+(v/r4); v3=res/((1/req)+(1/r3)+(1/r4)); I3=(v1-v3)/req; I4=(v2-v)/r3; //since here ((v2-v)/r3)=((v3-v)/r4) (this is only done for convinient calculation) disp(sprintf("By Nodal analysis I_1= %d A and I_2= %d A",I3,I4)); //END
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Expanding for base=3, level=4, reasons+features=base,same,similiar,evenexp norm Refined variables=x,y [0+1x,0+1y]: unknown -> [1] [0,0] x²-y³-6 ---------------- level 0 expanding queue[0]^-1,meter=[3,3]: x²-y³-6 [1+3x,1+3y]: unknown -> [1] [1,1] 2x+3x²-3y-9y²-9y³-2 [2+3x,1+3y]: negative-1 [1] by {x=>-x-1} endexp[0] ---------------- level 1 expanding queue[1]^0,meter=[3,1]: 2x+3x²-3y-9y²-9y³-2 [4+9x,1+3y]: unknown -> [2] [1,0] 8x+9x²-y-3y²-3y³+1 endexp[1] ---------------- level 2 expanding queue[2]^1,meter=[3,3]: 8x+9x²-y-3y²-3y³+1 [13+27x,1+9y]: unknown -> [3] [1,0] 26x+27x²-y-9y²-27y³+6 [4+27x,4+9y]: unknown -> [4] [0,1] 8x+27x²-16y-36y²-27y³-2 [22+27x,7+9y]: unknown -> [5] [2,2] 44x+27x²-49y-63y²-27y³+5 endexp[2] ---------------- level 3 expanding queue[3]^2,meter=[3,3]: 26x+27x²-y-9y²-27y³+6 [13+81x,1+27y]: unknown -> [6] [0,0] 26x+81x²-y-27y²-243y³+2 [67+81x,10+27y]: unknown -> [7] [2,1] 134x+81x²-100y-270y²-243y³+43 [40+81x,19+27y]: unknown -> [8] [1,2] 80x+81x²-361y-513y²-243y³-65 endexp[3] expanding queue[4]^2,meter=[3,3]: 8x+27x²-16y-36y²-27y³-2 [31+81x,4+27y]: unknown -> [9] [1,0] 62x+81x²-16y-108y²-243y³+11 [4+81x,13+27y]: unknown -> [10] [0,1] 8x+81x²-169y-351y²-243y³-27 [58+81x,22+27y]: unknown -> [11] [2,2] 116x+81x²-484y-594y²-243y³-90 endexp[4] expanding queue[5]^2,meter=[3,3]: 44x+27x²-49y-63y²-27y³+5 [76+81x,7+27y]: unknown -> [12] [2,0] 152x+81x²-49y-189y²-243y³+67 [49+81x,16+27y]: unknown -> [13] [1,1] 98x+81x²-256y-432y²-243y³-21 [22+81x,25+27y]: unknown -> [14] [0,2] 44x+81x²-625y-675y²-243y³-187 endexp[5] ---------------- level 4 Maximum level 4 [15] mod 3: x²-y³-6
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clc // Example 1.7.py // A flat plate with a chord length of 3 ft and an infinite span(perpendicular to // the page in fig 1.5) is immersed in a Mach 2 flow at standard sea level // conditions at an angle of attack of 10 degrees. The pressure distribution // over the plate is as follows: upper surface, p2=constant=1132 lb/ft^2 lower // surface, p3=constant=3568 lb/ft^2. The local shear stress is given by tau_w = // 13/xeta^0.2, where tau_w is in pounds per square feet and xeta is the distance // in feet along the plate from the leading edge. Assume the distribution of // tau_w over the top and bottom surfaces is the same. Both the pressure and // shear disributions are sketched qualitatively in fig. 1.5. Calculate the lift // and drag per unit span on the plate. // // Variable declaration M1 = 2.0 // mach number freestream p1 = 2116.0 // pressure at sea level (in lb/ft^2) l = 3.0 // chord of plate (in ft) alpha = 10.0 // angle of attack in degrees p2 = 1132.0 // pressure on the upper surface (in lb/ft^2) p3 = 3568.0 // pressure on the lower surface (in lb/ft^2) // Calculations // assuming unit span pds = -p2*l + p3*l // integral p.ds from leading edge to trailing edge (in lb/ft) L = pds*cos(alpha*%pi/180.0) // lift per unit span (in lb/ft), alpha is converted to radians Dw = pds*sin(alpha*%pi/180.0) // pressure drag per unit span (in lb/ft), alpha is converted to radians Df = 16.25 * (l** 4.0/5.0) // skin friction drag per unit span (in lb/ft) // from integral tau.d(xeta) Df = 2 * Df * cos(alpha*%pi/180.0) // since skin friction acts on both the side D = Df + Dw // total drag per unit span (in lb/ft) // Result printf("\n Total Lift per unit span = %.0f lb", L) printf("\n Total Drag per unit span = %.0f lb", D)