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import requests | |
import numpy as np | |
import tensorflow as tf | |
from tensorflow.keras import layers | |
import asyncio | |
from fastapi import FastAPI, Request | |
from fastapi.responses import StreamingResponse, PlainTextResponse | |
import sentencepiece as spm | |
import re | |
import math | |
from sklearn.feature_extraction.text import TfidfVectorizer | |
from sklearn.metrics.pairwise import cosine_similarity | |
app = FastAPI() | |
from fastapi.middleware.cors import CORSMiddleware | |
origins = [ | |
"https://insect5386.github.io", | |
"https://insect5386.github.io/insect5386" | |
] | |
app.add_middleware( | |
CORSMiddleware, | |
allow_origins=origins, | |
allow_credentials=True, | |
allow_methods=["*"], | |
allow_headers=["*"], | |
) | |
sp = spm.SentencePieceProcessor() | |
sp.load("kolig_unigram.model") | |
pad_id = sp.piece_to_id("<pad>") | |
if pad_id == -1: pad_id = 0 | |
start_id = sp.piece_to_id("<start>") | |
if start_id == -1: start_id = 1 | |
end_id = sp.piece_to_id("<end>") | |
if end_id == -1: end_id = 2 | |
unk_id = sp.piece_to_id("<unk>") | |
if unk_id == -1: unk_id = 3 | |
vocab_size = sp.get_piece_size() | |
max_len = 100 | |
def text_to_ids(text): | |
return sp.encode(text, out_type=int) | |
def ids_to_text(ids): | |
return sp.decode(ids) | |
class RotaryPositionalEmbedding(layers.Layer): | |
def __init__(self, dim): | |
super().__init__() | |
inv_freq = 1.0 / (10000 ** (np.arange(0, dim, 2) / dim)) | |
self.inv_freq = tf.constant(inv_freq, dtype=tf.float32) | |
def call(self, x): | |
batch, heads, seq_len, depth = tf.unstack(tf.shape(x)) | |
t = tf.range(seq_len, dtype=tf.float32) | |
freqs = tf.einsum('i,j->ij', t, self.inv_freq) | |
emb_sin = tf.sin(freqs) | |
emb_cos = tf.cos(freqs) | |
emb_cos = tf.reshape(emb_cos, [1, 1, seq_len, -1]) | |
emb_sin = tf.reshape(emb_sin, [1, 1, seq_len, -1]) | |
x1 = x[..., ::2] | |
x2 = x[..., 1::2] | |
x_rotated = tf.stack([ | |
x1 * emb_cos - x2 * emb_sin, | |
x1 * emb_sin + x2 * emb_cos | |
], axis=-1) | |
x_rotated = tf.reshape(x_rotated, tf.shape(x)) | |
return x_rotated | |
class SwiGLU(tf.keras.layers.Layer): | |
def __init__(self, d_model, d_ff): | |
super().__init__() | |
self.proj = tf.keras.layers.Dense(d_ff * 2) | |
self.out = tf.keras.layers.Dense(d_model) | |
def call(self, x): | |
x_proj = self.proj(x) | |
x_val, x_gate = tf.split(x_proj, 2, axis=-1) | |
return self.out(x_val * tf.nn.silu(x_gate)) | |
class GPTBlock(tf.keras.layers.Layer): | |
def __init__(self, d_model, d_ff, num_heads=8, dropout_rate=0.1, adapter_dim=64): | |
super().__init__() | |
self.ln1 = tf.keras.layers.LayerNormalization(epsilon=1e-5) | |
self.mha = tf.keras.layers.MultiHeadAttention(num_heads=num_heads, key_dim=d_model // num_heads) | |
self.dropout1 = tf.keras.layers.Dropout(dropout_rate) | |
self.adapter_down = tf.keras.layers.Dense(adapter_dim, activation='gelu') | |
self.adapter_up = tf.keras.layers.Dense(d_model) | |
self.ln2 = tf.keras.layers.LayerNormalization(epsilon=1e-5) | |
self.ffn = SwiGLU(d_model, d_ff) | |
self.dropout2 = tf.keras.layers.Dropout(dropout_rate) | |
self.rope = RotaryPositionalEmbedding(d_model // num_heads) | |
def call(self, x, training=False): | |
x_norm = self.ln1(x) | |
b, s, _ = tf.shape(x_norm)[0], tf.shape(x_norm)[1], tf.shape(x_norm)[2] | |
h = self.mha.num_heads | |
d = x_norm.shape[-1] // h | |
qkv = tf.reshape(x_norm, [b, s, h, d]) | |
qkv = tf.transpose(qkv, [0, 2, 1, 3]) | |
q = self.rope(qkv) | |
k = self.rope(qkv) | |
q = tf.reshape(tf.transpose(q, [0, 2, 1, 3]), [b, s, h * d]) | |
k = tf.reshape(tf.transpose(k, [0, 2, 1, 3]), [b, s, h * d]) | |
attn_out = self.mha(query=q, value=x_norm, key=k, use_causal_mask=True, training=training) | |
attn_out = self.dropout1(attn_out, training=training) | |
adapter_out = self.adapter_up(self.adapter_down(attn_out)) | |
attn_out = attn_out + adapter_out | |
x = x + attn_out | |
ffn_out = self.ffn(self.ln2(x)) | |
x = x + self.dropout2(ffn_out, training=training) | |
return x | |
class InteractGPT(tf.keras.Model): | |
def __init__(self, vocab_size, seq_len, d_model, d_ff, n_layers, num_heads=8, dropout_rate=0.1): | |
super().__init__() | |
self.token_embedding = tf.keras.layers.Embedding(vocab_size, d_model) | |
self.blocks = [GPTBlock(d_model, d_ff, num_heads, dropout_rate) for _ in range(n_layers)] | |
self.ln_f = tf.keras.layers.LayerNormalization(epsilon=1e-5) | |
def call(self, x, training=False): | |
x = self.token_embedding(x) | |
for block in self.blocks: | |
x = block(x, training=training) | |
x = self.ln_f(x) | |
logits = tf.matmul(x, self.token_embedding.embeddings, transpose_b=True) | |
return logits | |
model = InteractGPT(vocab_size=vocab_size, seq_len=max_len, d_model=256, d_ff=1024, n_layers=6) | |
dummy_input = tf.zeros((1, max_len), dtype=tf.int32) # λ°°μΉ1, μνμ€κΈΈμ΄ max_len | |
_ = model(dummy_input) # λͺ¨λΈμ΄ λΉλλ¨ | |
model.load_weights("Flexi.weights.h5") | |
print("λͺ¨λΈ κ°μ€μΉ λ‘λ μλ£!") | |
def is_greedy_response_acceptable(text): | |
text = text.strip() | |
# λ무 μ§§μ λ¬Έμ₯ κ±°λ₯΄κΈ° | |
if len(text) < 5: | |
return False | |
# λ¨μ΄ μ λ무 μ μ κ²λ κ±°λ¦ | |
if len(text.split()) < 3: | |
return False | |
# γ γ γ κ°μ μλͺ¨ μ°μλ§ μμΌλ©΄ κ±°λ¦ (λ¨, 'γ γ ' ν¬ν¨λλ©΄ νμ©) | |
if re.search(r'[γ±-γ γ -γ £]{3,}', text) and 'γ γ ' not in text: | |
return False | |
# λ¬Έμ₯ λμ΄ μ΄μν κ²½μ° (λ€/μ/μ£ λ± μΌλ°μ ννλ‘ λλμ§ μμΌλ©΄ κ±°λ¦) | |
if not re.search(r'(λ€|μ|μ£ |λ€\.|μ\.|μ£ \.|λ€!|μ!|μ£ !|\!|\?|\.)$', text): | |
return False | |
return True | |
def generate_text_sample(model, prompt, max_len=100, max_gen=98, | |
temperature=0.7, top_k=40, top_p=0.9, min_len=12): | |
model_input = text_to_ids(f"<start> {prompt} <sep>") | |
model_input = model_input[:max_len] | |
generated = list(model_input) | |
for _ in range(max_gen): | |
pad_len = max(0, max_len - len(generated)) | |
input_padded = np.pad(generated, (0, pad_len), constant_values=pad_id) | |
input_tensor = tf.convert_to_tensor([input_padded]) | |
logits = model(input_tensor, training=False) | |
next_logits = logits[0, len(generated) - 1].numpy() | |
# Temperature μ μ© | |
next_logits = next_logits / temperature | |
probs = np.exp(next_logits - np.max(next_logits)) | |
probs = probs / probs.sum() | |
# Top-K νν°λ§ | |
if top_k is not None and top_k > 0: | |
indices_to_remove = probs < np.sort(probs)[-top_k] | |
probs[indices_to_remove] = 0 | |
probs /= probs.sum() | |
# Top-P (λμ νλ₯ ) νν°λ§ | |
if top_p is not None and 0 < top_p < 1: | |
sorted_indices = np.argsort(probs)[::-1] | |
sorted_probs = probs[sorted_indices] | |
cumulative_probs = np.cumsum(sorted_probs) | |
# λμ νλ₯ μ΄ top_p μ΄κ³Όνλ ν ν°λ€μ μ κ±° | |
cutoff_index = np.searchsorted(cumulative_probs, top_p, side='right') | |
probs_to_keep = sorted_indices[:cutoff_index+1] | |
mask = np.ones_like(probs, dtype=bool) | |
mask[probs_to_keep] = False | |
probs[mask] = 0 | |
probs /= probs.sum() | |
# μνλ§ | |
next_token = np.random.choice(len(probs), p=probs) | |
generated.append(int(next_token)) | |
# λμ½λ© λ° νμ²λ¦¬ | |
decoded = sp.decode(generated) | |
for t in ["<start>", "<sep>", "<end>"]: | |
decoded = decoded.replace(t, "") | |
decoded = decoded.strip() | |
if len(generated) >= min_len and (next_token == end_id or decoded.endswith(('μ', 'λ€', '.', '!', '?'))): | |
if is_greedy_response_acceptable(decoded): | |
return decoded | |
else: | |
continue | |
decoded = sp.decode(generated) | |
for t in ["<start>", "<sep>", "<end>"]: | |
decoded = decoded.replace(t, "") | |
return decoded.strip() | |
def mismatch_tone(input_text, output_text): | |
if "γ γ " in input_text and not re.search(r'γ γ |γ |μ¬λ°|λ|λ§λ|λ§μ§|μ¬ν', output_text): | |
return True | |
return False | |
# μ ν¨ν μλ΅μΈμ§ κ²μ¬ | |
def is_valid_response(response): | |
if len(response.strip()) < 2: | |
return False | |
if re.search(r'[γ±-γ γ -γ £]{3,}', response): | |
return False | |
if len(response.split()) < 2: | |
return False | |
if response.count(' ') < 2: | |
return False | |
if any(tok in response.lower() for tok in ['hello', 'this', 'γ γ ']): | |
return False | |
return True | |
# μν€ μμ½ κ΄λ ¨ | |
def extract_main_query(text): | |
sentences = re.split(r'[.?!]\s*', text) | |
sentences = [s.strip() for s in sentences if s.strip()] | |
if not sentences: | |
return text | |
last = sentences[-1] | |
last = re.sub(r'[^κ°-ν£a-zA-Z0-9 ]', '', last) | |
particles = ['μ΄', 'κ°', 'μ', 'λ', 'μ', 'λ₯Ό', 'μ', 'μμ', 'μκ²', 'νν ', '보λ€'] | |
for p in particles: | |
last = re.sub(rf'\b(\w+){p}\b', r'\1', last) | |
return last.strip() | |
def get_wikipedia_summary(query): | |
cleaned_query = extract_main_query(query) | |
url = f"https://ko.wikipedia.org/api/rest_v1/page/summary/{cleaned_query}" | |
res = requests.get(url) | |
if res.status_code == 200: | |
return res.json().get("extract", "μμ½ μ 보λ₯Ό μ°Ύμ μ μμ΅λλ€.") | |
else: | |
return "μν€λ°±κ³Όμμ μ 보λ₯Ό κ°μ Έμ¬ μ μμ΅λλ€." | |
def textrank_summarize(text, top_n=3): | |
sentences = re.split(r'(?<=[.!?])\s+', text.strip()) | |
sentences = [s.strip() for s in sentences if len(s.strip()) > 10] | |
if len(sentences) <= top_n: | |
return text | |
vectorizer = TfidfVectorizer() | |
tfidf_matrix = vectorizer.fit_transform(sentences) | |
sim_matrix = cosine_similarity(tfidf_matrix) | |
np.fill_diagonal(sim_matrix, 0) | |
def pagerank(matrix, damping=0.85, max_iter=100, tol=1e-4): | |
N = matrix.shape[0] | |
ranks = np.ones(N) / N | |
row_sums = np.sum(matrix, axis=1) | |
row_sums[row_sums == 0] = 1 | |
for _ in range(max_iter): | |
prev_ranks = ranks.copy() | |
for i in range(N): | |
incoming = matrix[:, i] | |
ranks[i] = (1 - damping) / N + damping * np.sum(incoming * prev_ranks / row_sums) | |
if np.linalg.norm(ranks - prev_ranks) < tol: | |
break | |
return ranks | |
scores = pagerank(sim_matrix) | |
ranked_idx = np.argsort(scores)[::-1] | |
selected_idx = sorted(ranked_idx[:top_n]) | |
summary = ' '.join([sentences[i] for i in selected_idx]) | |
return summary | |
def summarize_from_wikipedia(query, top_n=3): | |
raw_summary = get_wikipedia_summary(query) | |
first_summary = textrank_summarize(raw_summary, top_n=top_n) | |
second_summary = textrank_summarize(first_summary, top_n=top_n) | |
return second_summary | |
def simple_intent_classifier(text): | |
text = text.lower() | |
greet_keywords = ["μλ ", "λ°κ°μ", "μ΄λ¦", "λꡬ", "μκ°", "μ΄λμ μ", "μ 체", "λͺ μ΄", "λ λμΌ"] | |
info_keywords = ["μ€λͺ ", "μ 보", "무μ", "λμΌ", "μ΄λ", "λꡬ", "μ", "μ΄λ»κ²", "μ’ λ₯", "κ°λ "] | |
math_keywords = ["λνκΈ°", "λΉΌκΈ°", "κ³±νκΈ°", "λλκΈ°", "루νΈ", "μ κ³±", "+", "-", "*", "/", "=", "^", "β", "κ³μ°", "λͺμ΄μΌ", "μΌλ§μΌ"] | |
if any(kw in text for kw in greet_keywords): | |
return "μΈμ¬" | |
elif any(kw in text for kw in info_keywords): | |
return "μ 보μ§λ¬Έ" | |
elif any(kw in text for kw in math_keywords): | |
return "μνμ§λ¬Έ" | |
else: | |
return "μΌμλν" | |
def parse_math_question(text): | |
text = text.replace("κ³±νκΈ°", "*").replace("λνκΈ°", "+").replace("λΉΌκΈ°", "-").replace("λλκΈ°", "/").replace("μ κ³±", "*2") | |
text = re.sub(r'루νΈ\s(\d+)', r'math.sqrt(\1)', text) | |
try: | |
result = eval(text) | |
return f"μ λ΅μ {result}μ λλ€." | |
except: | |
return "κ³μ°ν μ μλ μμμ΄μμ. λ€μ νλ² νμΈν΄ μ£ΌμΈμ!" | |
# μ΅μ’ μλ΅ ν¨μ | |
def respond(input_text): | |
intent = simple_intent_classifier(input_text) | |
if "μ΄λ¦" in input_text: | |
return "μ μ΄λ¦μ Flexiμ λλ€." | |
if "λꡬ" in input_text: | |
return "μ λ FlexiλΌκ³ ν΄μ." | |
if intent == "μνμ§λ¬Έ": | |
return parse_math_question(input_text) | |
if intent == "μΈμ¬": | |
return "λ°κ°μμ! 무μμ λμλ릴κΉμ?" | |
if intent == "μ 보μ§λ¬Έ": | |
keyword = re.sub(r"(μ λν΄|μ λν|μ λν΄μ)?\s*(μ€λͺ ν΄μ€|μλ €μ€|λμΌ|κ°λ |μ μ|μ 보)?", "", input_text).strip() | |
if not keyword: | |
return "μ΄λ€ μ£Όμ μ λν΄ κΆκΈνκ°μ?" | |
summary = summarize_from_wikipedia(keyword) | |
return f"{summary}\nλ€λ₯Έ κΆκΈν μ μμΌμ κ°μ?" | |
# μΌμ λν: μνλ§ + fallback | |
response = generate_text_sample(model, input_text) | |
if not is_valid_response(response) or mismatch_tone(input_text, response): | |
response = generate_text_sample(model, input_text) | |
return response | |
async def generate(request: Request): | |
prompt = request.query_params.get("prompt", "μλ νμΈμ") | |
response_text = respond(prompt) | |
return response_text |