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Upload app.py

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  1. app.py +160 -0
app.py ADDED
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+ import gradio as gr
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+ from gradio_client import Client
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+ from huggingface_hub import InferenceClient
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+ import random
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+ ss_client = Client("https://omnibus-html-image-current-tab.hf.space/")
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+
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+ models=[
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+ "google/gemma-7b",
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+ "google/gemma-7b-it",
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+ "google/gemma-2b",
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+ "google/gemma-2b-it"
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+ ]
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+ clients=[
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+ InferenceClient(models[0]),
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+ InferenceClient(models[1]),
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+ InferenceClient(models[2]),
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+ InferenceClient(models[3]),
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+ ]
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+
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+ VERBOSE=False
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+
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+ def load_models(inp):
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+ if VERBOSE==True:
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+ print(type(inp))
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+ print(inp)
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+ print(models[inp])
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+ #client_z.clear()
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+ #client_z.append(InferenceClient(models[inp]))
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+ return gr.update(label=models[inp])
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+
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+ def format_prompt(message, history, cust_p):
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+ prompt = ""
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+ if history:
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+ for user_prompt, bot_response in history:
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+ prompt += f"<start_of_turn>user{user_prompt}<end_of_turn>"
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+ prompt += f"<start_of_turn>model{bot_response}<end_of_turn>"
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+ if VERBOSE==True:
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+ print(prompt)
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+ #prompt += f"<start_of_turn>user\n{message}<end_of_turn>\n<start_of_turn>model\n"
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+ prompt+=cust_p.replace("USER_INPUT",message)
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+ return prompt
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+
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+ def chat_inf(system_prompt,prompt,history,memory,client_choice,seed,temp,tokens,top_p,rep_p,chat_mem,cust_p):
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+ #token max=8192
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+ print(client_choice)
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+ hist_len=0
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+ client=clients[int(client_choice)-1]
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+ if not history:
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+ history = []
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+ hist_len=0
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+ if not memory:
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+ memory = []
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+ mem_len=0
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+ if memory:
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+ for ea in memory[0-chat_mem:]:
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+ hist_len+=len(str(ea))
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+ in_len=len(system_prompt+prompt)+hist_len
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+
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+ if (in_len+tokens) > 8000:
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+ history.append((prompt,"Wait, that's too many tokens, please reduce the 'Chat Memory' value, or reduce the 'Max new tokens' value"))
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+ yield history,memory
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+ else:
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+ generate_kwargs = dict(
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+ temperature=temp,
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+ max_new_tokens=tokens,
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+ top_p=top_p,
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+ repetition_penalty=rep_p,
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+ do_sample=True,
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+ seed=seed,
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+ )
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+ if system_prompt:
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+ formatted_prompt = format_prompt(f"{system_prompt}, {prompt}", memory[0-chat_mem:],cust_p)
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+ else:
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+ formatted_prompt = format_prompt(prompt, memory[0-chat_mem:],cust_p)
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+ stream = client.text_generation(formatted_prompt, **generate_kwargs, stream=True, details=True, return_full_text=True)
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+ output = ""
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+ for response in stream:
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+ output += response.token.text
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+ yield [(prompt,output)],memory
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+ history.append((prompt,output))
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+ memory.append((prompt,output))
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+ yield history,memory
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+
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+ if VERBOSE==True:
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+ print("\n######### HIST "+str(in_len))
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+ print("\n######### TOKENS "+str(tokens))
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+
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+ def get_screenshot(chat: list,height=5000,width=600,chatblock=[],theme="light",wait=3000,header=True):
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+ print(chatblock)
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+ tog = 0
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+ if chatblock:
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+ tog = 3
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+ result = ss_client.predict(str(chat),height,width,chatblock,header,theme,wait,api_name="/run_script")
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+ out = f'https://omnibus-html-image-current-tab.hf.space/file={result[tog]}'
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+ print(out)
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+ return out
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+
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+ def clear_fn():
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+ return None,None,None,None
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+ rand_val=random.randint(1,1111111111111111)
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+
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+ def check_rand(inp,val):
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+ if inp==True:
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+ return gr.Slider(label="Seed", minimum=1, maximum=1111111111111111, value=random.randint(1,1111111111111111))
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+ else:
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+ return gr.Slider(label="Seed", minimum=1, maximum=1111111111111111, value=int(val))
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+
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+ with gr.Blocks() as app:
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+ memory=gr.State()
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+ gr.HTML("""<center><h1 style='font-size:xx-large;'>Google Gemma Models</h1><br><h3>running on Huggingface Inference Client</h3><br><h7>EXPERIMENTAL""")
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+ chat_b = gr.Chatbot(height=500)
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+ with gr.Group():
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+ with gr.Row():
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+ with gr.Column(scale=3):
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+ inp = gr.Textbox(label="Prompt")
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+ sys_inp = gr.Textbox(label="System Prompt (optional)")
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+ with gr.Accordion("Prompt Format",open=False):
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+ custom_prompt=gr.Textbox(label="Modify Prompt Format", info="For testing purposes. 'USER_INPUT' is where 'SYSTEM_PROMPT, PROMPT' will be placed", lines=3,value="<start_of_turn>userUSER_INPUT<end_of_turn><start_of_turn>model")
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+ with gr.Row():
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+ with gr.Column(scale=2):
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+ btn = gr.Button("Chat")
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+ with gr.Column(scale=1):
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+ with gr.Group():
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+ stop_btn=gr.Button("Stop")
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+ clear_btn=gr.Button("Clear")
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+ client_choice=gr.Dropdown(label="Models",type='index',choices=[c for c in models],value=models[0],interactive=True)
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+ with gr.Column(scale=1):
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+ with gr.Group():
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+ rand = gr.Checkbox(label="Random Seed", value=True)
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+ seed=gr.Slider(label="Seed", minimum=1, maximum=1111111111111111,step=1, value=rand_val)
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+ tokens = gr.Slider(label="Max new tokens",value=1600,minimum=0,maximum=8000,step=64,interactive=True, visible=True,info="The maximum number of tokens")
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+ temp=gr.Slider(label="Temperature",step=0.01, minimum=0.01, maximum=1.0, value=0.49)
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+ top_p=gr.Slider(label="Top-P",step=0.01, minimum=0.01, maximum=1.0, value=0.49)
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+ rep_p=gr.Slider(label="Repetition Penalty",step=0.01, minimum=0.1, maximum=2.0, value=0.99)
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+ chat_mem=gr.Number(label="Chat Memory", info="Number of previous chats to retain",value=4)
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+ with gr.Accordion(label="Screenshot",open=False):
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+ with gr.Row():
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+ with gr.Column(scale=3):
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+ im_btn=gr.Button("Screenshot")
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+ img=gr.Image(type='filepath')
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+ with gr.Column(scale=1):
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+ with gr.Row():
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+ im_height=gr.Number(label="Height",value=5000)
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+ im_width=gr.Number(label="Width",value=500)
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+ wait_time=gr.Number(label="Wait Time",value=3000)
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+ theme=gr.Radio(label="Theme", choices=["light","dark"],value="light")
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+ chatblock=gr.Dropdown(label="Chatblocks",info="Choose specific blocks of chat",choices=[c for c in range(1,40)],multiselect=True)
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+
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+
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+ client_choice.change(load_models,client_choice,[chat_b])
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+ app.load(load_models,client_choice,[chat_b])
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+
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+ im_go=im_btn.click(get_screenshot,[chat_b,im_height,im_width,chatblock,theme,wait_time],img)
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+
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+ chat_sub=inp.submit(check_rand,[rand,seed],seed).then(chat_inf,[sys_inp,inp,chat_b,memory,client_choice,seed,temp,tokens,top_p,rep_p,chat_mem,custom_prompt],[chat_b,memory])
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+ go=btn.click(check_rand,[rand,seed],seed).then(chat_inf,[sys_inp,inp,chat_b,memory,client_choice,seed,temp,tokens,top_p,rep_p,chat_mem,custom_prompt],[chat_b,memory])
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+
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+ stop_btn.click(None,None,None,cancels=[go,im_go,chat_sub])
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+ clear_btn.click(clear_fn,None,[inp,sys_inp,chat_b,memory])
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+ app.queue(default_concurrency_limit=10).launch()