trurl-2-7b-GGML / app.py
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import gradio as gr
import random
import time
from ctransformers import AutoModelForCausalLM
params = {
"max_new_tokens":512,
"stop":["<end>" ,"<|endoftext|>"],
"temperature":0.7,
"top_p":0.8,
"stream":True,
"batch_size": 8}
llm = AutoModelForCausalLM.from_pretrained("Aspik101/trurl-2-7b-GGML", model_type="llama")
with gr.Blocks() as demo:
chatbot = gr.Chatbot()
msg = gr.Textbox()
clear = gr.Button("Clear")
def user(user_message, history):
return "", history + [[user_message, None]]
def bot(history):
print(history)
#stream = llm(prompt = f"Jesteś AI assystentem. Odpowiadaj po polski. <user>: {history}. <assistant>:", **params)
stream = llm(prompt = f"Jesteś AI assystentem. Odpowiadaj po polski. {history}.", **params)
#stream = llm(prompt = f"{history}", **params)
history[-1][1] = ""
answer_save = ""
for character in stream:
history[-1][1] += character
answer_save += character
time.sleep(0.005)
yield history
print(answer_save)
msg.submit(user, [msg, chatbot], [msg, chatbot], queue=False).then(
bot, chatbot, chatbot
)
clear.click(lambda: None, None, chatbot, queue=False)
demo.queue()
demo.launch()