Reworked remove_surrounded_chars() to use regular expression ( https://regexr.com/7alb5 ) instead of repeated string concatenations for elevenlab_tts, silero_tts, sd_api_pictures. This should be both faster and more robust in handling asterisks. Reduced the memory footprint of send_pictures and sd_api_pictures by scaling the images in the chat to 300 pixels max-side wise. (The user already has the original in case of the sent picture and there's an option to save the SD generation). This should fix history growing annoyingly large with multiple pictures present
189 lines
7.9 KiB
Python
189 lines
7.9 KiB
Python
import base64
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import io
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import re
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from pathlib import Path
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import gradio as gr
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import requests
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import torch
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from PIL import Image
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import modules.chat as chat
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import modules.shared as shared
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torch._C._jit_set_profiling_mode(False)
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# parameters which can be customized in settings.json of webui
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params = {
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'enable_SD_api': False,
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'address': 'http://127.0.0.1:7860',
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'save_img': False,
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'SD_model': 'NeverEndingDream', # not really used right now
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'prompt_prefix': '(Masterpiece:1.1), (solo:1.3), detailed, intricate, colorful',
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'negative_prompt': '(worst quality, low quality:1.3)',
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'side_length': 512,
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'restore_faces': False
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}
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SD_models = ['NeverEndingDream'] # TODO: get with http://{address}}/sdapi/v1/sd-models and allow user to select
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streaming_state = shared.args.no_stream # remember if chat streaming was enabled
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picture_response = False # specifies if the next model response should appear as a picture
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pic_id = 0
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def remove_surrounded_chars(string):
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# regexp is way faster than repeated string concatenation!
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# this expression matches to 'as few symbols as possible (0 upwards) between any asterisks' OR
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# 'as few symbols as possible (0 upwards) between an asterisk and the end of the string'
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return re.sub('\*[^\*]*?(\*|$)','',string)
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# I don't even need input_hijack for this as visible text will be commited to history as the unmodified string
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def input_modifier(string):
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"""
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This function is applied to your text inputs before
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they are fed into the model.
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"""
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global params, picture_response
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if not params['enable_SD_api']:
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return string
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commands = ['send', 'mail', 'me']
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mediums = ['image', 'pic', 'picture', 'photo']
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subjects = ['yourself', 'own']
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lowstr = string.lower()
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# TODO: refactor out to separate handler and also replace detection with a regexp
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if any(command in lowstr for command in commands) and any(case in lowstr for case in mediums): # trigger the generation if a command signature and a medium signature is found
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picture_response = True
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shared.args.no_stream = True # Disable streaming cause otherwise the SD-generated picture would return as a dud
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shared.processing_message = "*Is sending a picture...*"
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string = "Please provide a detailed description of your surroundings, how you look and the situation you're in and what you are doing right now"
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if any(target in lowstr for target in subjects): # the focus of the image should be on the sending character
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string = "Please provide a detailed and vivid description of how you look and what you are wearing"
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return string
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# Get and save the Stable Diffusion-generated picture
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def get_SD_pictures(description):
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global params, pic_id
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payload = {
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"prompt": params['prompt_prefix'] + description,
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"seed": -1,
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"sampler_name": "DPM++ 2M Karras",
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"steps": 32,
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"cfg_scale": 7,
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"width": params['side_length'],
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"height": params['side_length'],
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"restore_faces": params['restore_faces'],
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"negative_prompt": params['negative_prompt']
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}
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response = requests.post(url=f'{params["address"]}/sdapi/v1/txt2img', json=payload)
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r = response.json()
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visible_result = ""
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for img_str in r['images']:
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image = Image.open(io.BytesIO(base64.b64decode(img_str.split(",",1)[0])))
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if params['save_img']:
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output_file = Path(f'extensions/sd_api_pictures/outputs/{pic_id:06d}.png')
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image.save(output_file.as_posix())
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pic_id += 1
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# lower the resolution of received images for the chat, otherwise the log size gets out of control quickly with all the base64 values in visible history
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width, height = image.size
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if (width > 300):
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height = int(height * (300 / width))
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width = 300
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elif (height > 300):
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width = int(width * (300 / height))
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height = 300
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newsize = (width, height)
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image = image.resize(newsize, Image.LANCZOS)
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buffered = io.BytesIO()
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image.save(buffered, format="JPEG")
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buffered.seek(0)
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image_bytes = buffered.getvalue()
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img_str = "data:image/jpeg;base64," + base64.b64encode(image_bytes).decode()
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visible_result = visible_result + f'<img src="{img_str}" alt="{description}">\n'
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return visible_result
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# TODO: how do I make the UI history ignore the resulting pictures (I don't want HTML to appear in history)
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# and replace it with 'text' for the purposes of logging?
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def output_modifier(string):
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"""
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This function is applied to the model outputs.
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"""
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global pic_id, picture_response, streaming_state
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if not picture_response:
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return string
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string = remove_surrounded_chars(string)
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string = string.replace('"', '')
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string = string.replace('“', '')
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string = string.replace('\n', ' ')
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string = string.strip()
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if string == '':
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string = 'no viable description in reply, try regenerating'
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# I can't for the love of all that's holy get the name from shared.gradio['name1'], so for now it will be like this
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text = f'*Description: "{string}"*'
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image = get_SD_pictures(string)
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picture_response = False
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shared.processing_message = "*Is typing...*"
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shared.args.no_stream = streaming_state
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return image + "\n" + text
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def bot_prefix_modifier(string):
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"""
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This function is only applied in chat mode. It modifies
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the prefix text for the Bot and can be used to bias its
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behavior.
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"""
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return string
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def force_pic():
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global picture_response
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picture_response = True
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def ui():
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# Gradio elements
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with gr.Accordion("Stable Diffusion api integration", open=True):
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with gr.Row():
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with gr.Column():
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enable = gr.Checkbox(value=params['enable_SD_api'], label='Activate SD Api integration')
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save_img = gr.Checkbox(value=params['save_img'], label='Keep original received images in the outputs subdir')
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with gr.Column():
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address = gr.Textbox(placeholder=params['address'], value=params['address'], label='Stable Diffusion host address')
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with gr.Row():
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force_btn = gr.Button("Force the next response to be a picture")
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generate_now_btn = gr.Button("Generate an image response to the input")
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with gr.Accordion("Generation parameters", open=False):
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prompt_prefix = gr.Textbox(placeholder=params['prompt_prefix'], value=params['prompt_prefix'], label='Prompt Prefix (best used to describe the look of the character)')
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with gr.Row():
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negative_prompt = gr.Textbox(placeholder=params['negative_prompt'], value=params['negative_prompt'], label='Negative Prompt')
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dimensions = gr.Slider(256,702,value=params['side_length'],step=64,label='Image dimensions')
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# model = gr.Dropdown(value=SD_models[0], choices=SD_models, label='Model')
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# Event functions to update the parameters in the backend
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enable.change(lambda x: params.update({"enable_SD_api": x}), enable, None)
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save_img.change(lambda x: params.update({"save_img": x}), save_img, None)
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address.change(lambda x: params.update({"address": x}), address, None)
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prompt_prefix.change(lambda x: params.update({"prompt_prefix": x}), prompt_prefix, None)
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negative_prompt.change(lambda x: params.update({"negative_prompt": x}), negative_prompt, None)
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dimensions.change(lambda x: params.update({"side_length": x}), dimensions, None)
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# model.change(lambda x: params.update({"SD_model": x}), model, None)
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force_btn.click(force_pic)
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generate_now_btn.click(force_pic)
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generate_now_btn.click(eval('chat.cai_chatbot_wrapper'), shared.input_params, shared.gradio['display'], show_progress=shared.args.no_stream)
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