Added 'Only Load Models Locally' setting

This commit is contained in:
mrq 2023-02-09 22:06:55 +00:00
parent 460f5d6e32
commit 504db0d1ac
3 changed files with 14 additions and 3 deletions

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@ -190,6 +190,7 @@ Below are settings that override the default launch arguments. Some of these req
- For example, `10.0.0.1:8008/gradio` will have the web UI only accept connections through `10.0.0.1`, at the path `/gradio` - For example, `10.0.0.1:8008/gradio` will have the web UI only accept connections through `10.0.0.1`, at the path `/gradio`
* `Public Share Gradio`: Tells Gradio to generate a public URL for the web UI. Ignored if specifying a path through the `Listen` setting. * `Public Share Gradio`: Tells Gradio to generate a public URL for the web UI. Ignored if specifying a path through the `Listen` setting.
* `Check for Updates`: checks for updates on page load and notifies in console. Only works if you pulled this repo from a gitea instance. * `Check for Updates`: checks for updates on page load and notifies in console. Only works if you pulled this repo from a gitea instance.
* `Only Load Models Locally`: enforces offline mode for loading models. This is the equivalent of setting the env var: `TRANSFORMERS_OFFLINE`
* `Low VRAM`: disables optimizations in TorToiSe that increases VRAM consumption. Suggested if your GPU has under 6GiB. * `Low VRAM`: disables optimizations in TorToiSe that increases VRAM consumption. Suggested if your GPU has under 6GiB.
* `Embed Output Metadata`: enables embedding the settings and latents used to generate that audio clip inside that audio clip. Metadata is stored as a JSON string in the `lyrics` tag. * `Embed Output Metadata`: enables embedding the settings and latents used to generate that audio clip inside that audio clip. Metadata is stored as a JSON string in the `lyrics` tag.
* `Slimmer Computed Latents`: falls back to the original, 12.9KiB way of storing latents (without the extra bits required for using the CVVP model). * `Slimmer Computed Latents`: falls back to the original, 12.9KiB way of storing latents (without the extra bits required for using the CVVP model).

14
app.py
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@ -322,11 +322,12 @@ def check_for_updates():
def update_voices(): def update_voices():
return gr.Dropdown.update(choices=sorted(os.listdir("./tortoise/voices")) + ["microphone"]) return gr.Dropdown.update(choices=sorted(os.listdir("./tortoise/voices")) + ["microphone"])
def export_exec_settings( share, listen, check_for_updates, low_vram, embed_output_metadata, latents_lean_and_mean, cond_latent_max_chunk_size, sample_batch_size, concurrency_count ): def export_exec_settings( share, listen, check_for_updates, models_from_local_only, low_vram, embed_output_metadata, latents_lean_and_mean, cond_latent_max_chunk_size, sample_batch_size, concurrency_count ):
args.share = share args.share = share
args.listen = listen args.listen = listen
args.low_vram = low_vram args.low_vram = low_vram
args.check_for_updates = check_for_updates args.check_for_updates = check_for_updates
args.models_from_local_only = models_from_local_only
args.cond_latent_max_chunk_size = cond_latent_max_chunk_size args.cond_latent_max_chunk_size = cond_latent_max_chunk_size
args.sample_batch_size = sample_batch_size args.sample_batch_size = sample_batch_size
args.embed_output_metadata = embed_output_metadata args.embed_output_metadata = embed_output_metadata
@ -338,6 +339,7 @@ def export_exec_settings( share, listen, check_for_updates, low_vram, embed_outp
'listen': args.listen, 'listen': args.listen,
'low-vram':args.low_vram, 'low-vram':args.low_vram,
'check-for-updates':args.check_for_updates, 'check-for-updates':args.check_for_updates,
'models-from-local-only':args.models_from_local_only,
'cond-latent-max-chunk-size': args.cond_latent_max_chunk_size, 'cond-latent-max-chunk-size': args.cond_latent_max_chunk_size,
'sample-batch-size': args.sample_batch_size, 'sample-batch-size': args.sample_batch_size,
'embed-output-metadata': args.embed_output_metadata, 'embed-output-metadata': args.embed_output_metadata,
@ -353,6 +355,7 @@ def setup_args():
'share': False, 'share': False,
'listen': None, 'listen': None,
'check-for-updates': False, 'check-for-updates': False,
'models-from-local-only': False,
'low-vram': False, 'low-vram': False,
'sample-batch-size': None, 'sample-batch-size': None,
'embed-output-metadata': True, 'embed-output-metadata': True,
@ -371,6 +374,7 @@ def setup_args():
parser.add_argument("--share", action='store_true', default=default_arguments['share'], help="Lets Gradio return a public URL to use anywhere") parser.add_argument("--share", action='store_true', default=default_arguments['share'], help="Lets Gradio return a public URL to use anywhere")
parser.add_argument("--listen", default=default_arguments['listen'], help="Path for Gradio to listen on") parser.add_argument("--listen", default=default_arguments['listen'], help="Path for Gradio to listen on")
parser.add_argument("--check-for-updates", action='store_true', default=default_arguments['check-for-updates'], help="Checks for update on startup") parser.add_argument("--check-for-updates", action='store_true', default=default_arguments['check-for-updates'], help="Checks for update on startup")
parser.add_argument("--models-from-local-only", action='store_true', default=default_arguments['models-from-local-only'], help="Only loads models from disk, does not check for updates for models")
parser.add_argument("--low-vram", action='store_true', default=default_arguments['low-vram'], help="Disables some optimizations that increases VRAM usage") parser.add_argument("--low-vram", action='store_true', default=default_arguments['low-vram'], help="Disables some optimizations that increases VRAM usage")
parser.add_argument("--no-embed-output-metadata", action='store_false', default=not default_arguments['embed-output-metadata'], help="Disables embedding output metadata into resulting WAV files for easily fetching its settings used with the web UI (data is stored in the lyrics metadata tag)") parser.add_argument("--no-embed-output-metadata", action='store_false', default=not default_arguments['embed-output-metadata'], help="Disables embedding output metadata into resulting WAV files for easily fetching its settings used with the web UI (data is stored in the lyrics metadata tag)")
parser.add_argument("--latents-lean-and-mean", action='store_true', default=default_arguments['latents-lean-and-mean'], help="Exports the bare essentials for latents.") parser.add_argument("--latents-lean-and-mean", action='store_true', default=default_arguments['latents-lean-and-mean'], help="Exports the bare essentials for latents.")
@ -416,6 +420,9 @@ def setup_gradio():
gradio.utils.log_feature_analytics = noop(gradio.utils.log_feature_analytics) gradio.utils.log_feature_analytics = noop(gradio.utils.log_feature_analytics)
#gradio.utils.get_local_ip_address = noop(gradio.utils.get_local_ip_address, 'localhost') #gradio.utils.get_local_ip_address = noop(gradio.utils.get_local_ip_address, 'localhost')
if args.models_from_local_only:
os.environ['TRANSFORMERS_OFFLINE']='1'
with gr.Blocks() as webui: with gr.Blocks() as webui:
with gr.Tab("Generate"): with gr.Tab("Generate"):
with gr.Row(): with gr.Row():
@ -513,7 +520,8 @@ def setup_gradio():
with gr.Box(): with gr.Box():
exec_arg_listen = gr.Textbox(label="Listen", value=args.listen, placeholder="127.0.0.1:7860/") exec_arg_listen = gr.Textbox(label="Listen", value=args.listen, placeholder="127.0.0.1:7860/")
exec_arg_share = gr.Checkbox(label="Public Share Gradio", value=args.share) exec_arg_share = gr.Checkbox(label="Public Share Gradio", value=args.share)
exec_check_for_updates = gr.Checkbox(label="Check For Updates", value=args.check_for_updates) exec_arg_check_for_updates = gr.Checkbox(label="Check For Updates", value=args.check_for_updates)
exec_arg_models_from_local_only = gr.Checkbox(label="Only Load Models Locally", value=args.models_from_local_only)
exec_arg_low_vram = gr.Checkbox(label="Low VRAM", value=args.low_vram) exec_arg_low_vram = gr.Checkbox(label="Low VRAM", value=args.low_vram)
exec_arg_embed_output_metadata = gr.Checkbox(label="Embed Output Metadata", value=args.embed_output_metadata) exec_arg_embed_output_metadata = gr.Checkbox(label="Embed Output Metadata", value=args.embed_output_metadata)
exec_arg_latents_lean_and_mean = gr.Checkbox(label="Slimmer Computed Latents", value=args.latents_lean_and_mean) exec_arg_latents_lean_and_mean = gr.Checkbox(label="Slimmer Computed Latents", value=args.latents_lean_and_mean)
@ -527,7 +535,7 @@ def setup_gradio():
check_updates_now = gr.Button(value="Check for Updates") check_updates_now = gr.Button(value="Check for Updates")
exec_inputs = [exec_arg_share, exec_arg_listen, exec_check_for_updates, exec_arg_low_vram, exec_arg_embed_output_metadata, exec_arg_latents_lean_and_mean, exec_arg_cond_latent_max_chunk_size, exec_arg_sample_batch_size, exec_arg_concurrency_count] exec_inputs = [exec_arg_share, exec_arg_listen, exec_arg_check_for_updates, exec_arg_models_from_local_only, exec_arg_low_vram, exec_arg_embed_output_metadata, exec_arg_latents_lean_and_mean, exec_arg_cond_latent_max_chunk_size, exec_arg_sample_batch_size, exec_arg_concurrency_count]
for i in exec_inputs: for i in exec_inputs:
i.change( i.change(

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@ -626,6 +626,8 @@ class TextToSpeech:
else: else:
res = wav_candidates[0] res = wav_candidates[0]
gc.collect()
if return_deterministic_state: if return_deterministic_state:
return res, (deterministic_seed, text, voice_samples, conditioning_latents) return res, (deterministic_seed, text, voice_samples, conditioning_latents)
else: else: