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import gradio as gr
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from modules import loaders , presets , shared , ui , ui_chat , utils
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from modules . utils import gradio
def create_ui ( default_preset ) :
generate_params = presets . load_preset ( default_preset )
with gr . Tab ( " Parameters " , elem_id = " parameters " ) :
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with gr . Tab ( " Generation " ) :
with gr . Row ( ) :
with gr . Column ( ) :
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with gr . Row ( ) :
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shared . gradio [ ' preset_menu ' ] = gr . Dropdown ( choices = utils . get_available_presets ( ) , value = default_preset , label = ' Preset ' , elem_classes = ' slim-dropdown ' )
ui . create_refresh_button ( shared . gradio [ ' preset_menu ' ] , lambda : None , lambda : { ' choices ' : utils . get_available_presets ( ) } , ' refresh-button ' )
shared . gradio [ ' save_preset ' ] = gr . Button ( ' 💾 ' , elem_classes = ' refresh-button ' )
shared . gradio [ ' delete_preset ' ] = gr . Button ( ' 🗑️ ' , elem_classes = ' refresh-button ' )
with gr . Column ( ) :
shared . gradio [ ' filter_by_loader ' ] = gr . Dropdown ( label = " Filter by loader " , choices = [ " All " ] + list ( loaders . loaders_and_params . keys ( ) ) , value = " All " , elem_classes = ' slim-dropdown ' )
with gr . Row ( ) :
with gr . Column ( ) :
with gr . Box ( ) :
with gr . Row ( ) :
with gr . Column ( ) :
shared . gradio [ ' max_new_tokens ' ] = gr . Slider ( minimum = shared . settings [ ' max_new_tokens_min ' ] , maximum = shared . settings [ ' max_new_tokens_max ' ] , step = 1 , label = ' max_new_tokens ' , value = shared . settings [ ' max_new_tokens ' ] )
shared . gradio [ ' temperature ' ] = gr . Slider ( 0.01 , 1.99 , value = generate_params [ ' temperature ' ] , step = 0.01 , label = ' temperature ' )
shared . gradio [ ' top_p ' ] = gr . Slider ( 0.0 , 1.0 , value = generate_params [ ' top_p ' ] , step = 0.01 , label = ' top_p ' )
shared . gradio [ ' top_k ' ] = gr . Slider ( 0 , 200 , value = generate_params [ ' top_k ' ] , step = 1 , label = ' top_k ' )
shared . gradio [ ' typical_p ' ] = gr . Slider ( 0.0 , 1.0 , value = generate_params [ ' typical_p ' ] , step = 0.01 , label = ' typical_p ' )
shared . gradio [ ' epsilon_cutoff ' ] = gr . Slider ( 0 , 9 , value = generate_params [ ' epsilon_cutoff ' ] , step = 0.01 , label = ' epsilon_cutoff ' )
shared . gradio [ ' eta_cutoff ' ] = gr . Slider ( 0 , 20 , value = generate_params [ ' eta_cutoff ' ] , step = 0.01 , label = ' eta_cutoff ' )
shared . gradio [ ' tfs ' ] = gr . Slider ( 0.0 , 1.0 , value = generate_params [ ' tfs ' ] , step = 0.01 , label = ' tfs ' )
shared . gradio [ ' top_a ' ] = gr . Slider ( 0.0 , 1.0 , value = generate_params [ ' top_a ' ] , step = 0.01 , label = ' top_a ' )
with gr . Column ( ) :
shared . gradio [ ' repetition_penalty ' ] = gr . Slider ( 1.0 , 1.5 , value = generate_params [ ' repetition_penalty ' ] , step = 0.01 , label = ' repetition_penalty ' )
shared . gradio [ ' repetition_penalty_range ' ] = gr . Slider ( 0 , 4096 , step = 64 , value = generate_params [ ' repetition_penalty_range ' ] , label = ' repetition_penalty_range ' )
shared . gradio [ ' encoder_repetition_penalty ' ] = gr . Slider ( 0.8 , 1.5 , value = generate_params [ ' encoder_repetition_penalty ' ] , step = 0.01 , label = ' encoder_repetition_penalty ' )
shared . gradio [ ' no_repeat_ngram_size ' ] = gr . Slider ( 0 , 20 , step = 1 , value = generate_params [ ' no_repeat_ngram_size ' ] , label = ' no_repeat_ngram_size ' )
shared . gradio [ ' min_length ' ] = gr . Slider ( 0 , 2000 , step = 1 , value = generate_params [ ' min_length ' ] , label = ' min_length ' )
shared . gradio [ ' seed ' ] = gr . Number ( value = shared . settings [ ' seed ' ] , label = ' Seed (-1 for random) ' )
shared . gradio [ ' do_sample ' ] = gr . Checkbox ( value = generate_params [ ' do_sample ' ] , label = ' do_sample ' )
with gr . Accordion ( " Learn more " , open = False ) :
gr . Markdown ( """
For a technical description of the parameters , the [ transformers documentation ] ( https : / / huggingface . co / docs / transformers / main_classes / text_generation #transformers.GenerationConfig) is a good reference.
The best presets , according to the [ Preset Arena ] ( https : / / github . com / oobabooga / oobabooga . github . io / blob / main / arena / results . md ) experiment , are :
* Instruction following :
1 ) Divine Intellect
2 ) Big O
3 ) simple - 1
4 ) Space Alien
5 ) StarChat
6 ) Titanic
7 ) tfs - with - top - a
8 ) Asterism
9 ) Contrastive Search
* Chat :
1 ) Midnight Enigma
2 ) Yara
3 ) Shortwave
### Temperature
Primary factor to control randomness of outputs . 0 = deterministic ( only the most likely token is used ) . Higher value = more randomness .
### top_p
If not set to 1 , select tokens with probabilities adding up to less than this number . Higher value = higher range of possible random results .
### top_k
Similar to top_p , but select instead only the top_k most likely tokens . Higher value = higher range of possible random results .
### typical_p
If not set to 1 , select only tokens that are at least this much more likely to appear than random tokens , given the prior text .
### epsilon_cutoff
In units of 1e-4 ; a reasonable value is 3. This sets a probability floor below which tokens are excluded from being sampled . Should be used with top_p , top_k , and eta_cutoff set to 0.
### eta_cutoff
In units of 1e-4 ; a reasonable value is 3. Should be used with top_p , top_k , and epsilon_cutoff set to 0.
### repetition_penalty
Exponential penalty factor for repeating prior tokens . 1 means no penalty , higher value = less repetition , lower value = more repetition .
### repetition_penalty_range
The number of most recent tokens to consider for repetition penalty . 0 makes all tokens be used .
### encoder_repetition_penalty
Also known as the " Hallucinations filter " . Used to penalize tokens that are * not * in the prior text . Higher value = more likely to stay in context , lower value = more likely to diverge .
### no_repeat_ngram_size
If not set to 0 , specifies the length of token sets that are completely blocked from repeating at all . Higher values = blocks larger phrases , lower values = blocks words or letters from repeating . Only 0 or high values are a good idea in most cases .
### min_length
Minimum generation length in tokens .
### penalty_alpha
Contrastive Search is enabled by setting this to greater than zero and unchecking " do_sample " . It should be used with a low value of top_k , for instance , top_k = 4.
""" , elem_classes= " markdown " )
with gr . Column ( ) :
with gr . Box ( ) :
with gr . Row ( ) :
with gr . Column ( ) :
shared . gradio [ ' guidance_scale ' ] = gr . Slider ( - 0.5 , 2.5 , step = 0.05 , value = generate_params [ ' guidance_scale ' ] , label = ' guidance_scale ' , info = ' For CFG. 1.5 is a good value. ' )
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shared . gradio [ ' negative_prompt ' ] = gr . Textbox ( value = shared . settings [ ' negative_prompt ' ] , label = ' Negative prompt ' , lines = 3 , elem_classes = [ ' add_scrollbar ' ] )
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shared . gradio [ ' mirostat_mode ' ] = gr . Slider ( 0 , 2 , step = 1 , value = generate_params [ ' mirostat_mode ' ] , label = ' mirostat_mode ' , info = ' mode=1 is for llama.cpp only. ' )
shared . gradio [ ' mirostat_tau ' ] = gr . Slider ( 0 , 10 , step = 0.01 , value = generate_params [ ' mirostat_tau ' ] , label = ' mirostat_tau ' )
shared . gradio [ ' mirostat_eta ' ] = gr . Slider ( 0 , 1 , step = 0.01 , value = generate_params [ ' mirostat_eta ' ] , label = ' mirostat_eta ' )
with gr . Column ( ) :
shared . gradio [ ' penalty_alpha ' ] = gr . Slider ( 0 , 5 , value = generate_params [ ' penalty_alpha ' ] , label = ' penalty_alpha ' , info = ' For Contrastive Search. do_sample must be unchecked. ' )
shared . gradio [ ' num_beams ' ] = gr . Slider ( 1 , 20 , step = 1 , value = generate_params [ ' num_beams ' ] , label = ' num_beams ' , info = ' For Beam Search, along with length_penalty and early_stopping. ' )
shared . gradio [ ' length_penalty ' ] = gr . Slider ( - 5 , 5 , value = generate_params [ ' length_penalty ' ] , label = ' length_penalty ' )
shared . gradio [ ' early_stopping ' ] = gr . Checkbox ( value = generate_params [ ' early_stopping ' ] , label = ' early_stopping ' )
with gr . Box ( ) :
with gr . Row ( ) :
with gr . Column ( ) :
shared . gradio [ ' truncation_length ' ] = gr . Slider ( value = shared . settings [ ' truncation_length ' ] , minimum = shared . settings [ ' truncation_length_min ' ] , maximum = shared . settings [ ' truncation_length_max ' ] , step = 256 , label = ' Truncate the prompt up to this length ' , info = ' The leftmost tokens are removed if the prompt exceeds this length. Most models require this to be at most 2048. ' )
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shared . gradio [ ' custom_stopping_strings ' ] = gr . Textbox ( lines = 1 , value = shared . settings [ " custom_stopping_strings " ] or None , label = ' Custom stopping strings ' , info = ' In addition to the defaults. Written between " " and separated by commas. ' , placeholder = ' " \\ n " , " \\ nYou: " ' )
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with gr . Column ( ) :
shared . gradio [ ' auto_max_new_tokens ' ] = gr . Checkbox ( value = shared . settings [ ' auto_max_new_tokens ' ] , label = ' auto_max_new_tokens ' , info = ' Expand max_new_tokens to the available context length. ' )
shared . gradio [ ' ban_eos_token ' ] = gr . Checkbox ( value = shared . settings [ ' ban_eos_token ' ] , label = ' Ban the eos_token ' , info = ' Forces the model to never end the generation prematurely. ' )
shared . gradio [ ' add_bos_token ' ] = gr . Checkbox ( value = shared . settings [ ' add_bos_token ' ] , label = ' Add the bos_token to the beginning of prompts ' , info = ' Disabling this can make the replies more creative. ' )
shared . gradio [ ' skip_special_tokens ' ] = gr . Checkbox ( value = shared . settings [ ' skip_special_tokens ' ] , label = ' Skip special tokens ' , info = ' Some specific models need this unset. ' )
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shared . gradio [ ' stream ' ] = gr . Checkbox ( value = shared . settings [ ' stream ' ] , label = ' Activate text streaming ' )
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ui_chat . create_chat_settings_ui ( )
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def create_event_handlers ( ) :
shared . gradio [ ' filter_by_loader ' ] . change ( loaders . blacklist_samplers , gradio ( ' filter_by_loader ' ) , gradio ( loaders . list_all_samplers ( ) ) , show_progress = False )
shared . gradio [ ' preset_menu ' ] . change ( presets . load_preset_for_ui , gradio ( ' preset_menu ' , ' interface_state ' ) , gradio ( ' interface_state ' ) + gradio ( presets . presets_params ( ) ) )