forked from camenduru/ai-voice-cloning
Merge pull request 'keep_training' (#118) from zim33/ai-voice-cloning:keep_training into master
Reviewed-on: mrq/ai-voice-cloning#118
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commit
1ac278e885
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@ -752,8 +752,8 @@ class TrainingState():
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models = sorted([ int(d[:-8]) for d in os.listdir(f'{self.dataset_dir}/models/') if d[-8:] == "_gpt.pth" ])
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models = sorted([ int(d[:-8]) for d in os.listdir(f'{self.dataset_dir}/models/') if d[-8:] == "_gpt.pth" ])
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states = sorted([ int(d[:-6]) for d in os.listdir(f'{self.dataset_dir}/training_state/') if d[-6:] == ".state" ])
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states = sorted([ int(d[:-6]) for d in os.listdir(f'{self.dataset_dir}/training_state/') if d[-6:] == ".state" ])
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remove_models = models[:-2]
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remove_models = models[:-keep]
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remove_states = states[:-2]
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remove_states = states[:-keep]
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for d in remove_models:
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for d in remove_models:
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path = f'{self.dataset_dir}/models/{d}_gpt.pth'
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path = f'{self.dataset_dir}/models/{d}_gpt.pth'
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@ -898,6 +898,9 @@ class TrainingState():
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if should_return:
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if should_return:
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result = "".join(self.buffer) if not self.training_started else message
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result = "".join(self.buffer) if not self.training_started else message
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if keep_x_past_checkpoints > 0:
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self.cleanup_old(keep=keep_x_past_checkpoints)
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return (
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return (
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result,
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result,
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percent,
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percent,
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@ -497,7 +497,7 @@ def setup_gradio():
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training_output = gr.TextArea(label="Console Output", interactive=False, max_lines=8)
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training_output = gr.TextArea(label="Console Output", interactive=False, max_lines=8)
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verbose_training = gr.Checkbox(label="Verbose Console Output", value=True)
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verbose_training = gr.Checkbox(label="Verbose Console Output", value=True)
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training_keep_x_past_datasets = gr.Slider(label="Keep X Previous States", minimum=0, maximum=8, value=0, step=1)
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keep_x_past_checkpoints = gr.Slider(label="Keep X Previous States", minimum=0, maximum=8, value=0, step=1)
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with gr.Row():
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with gr.Row():
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start_training_button = gr.Button(value="Train")
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start_training_button = gr.Button(value="Train")
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stop_training_button = gr.Button(value="Stop")
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stop_training_button = gr.Button(value="Stop")
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@ -708,7 +708,7 @@ def setup_gradio():
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inputs=[
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inputs=[
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training_configs,
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training_configs,
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verbose_training,
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verbose_training,
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training_keep_x_past_datasets,
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keep_x_past_checkpoints,
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],
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],
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outputs=[
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outputs=[
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training_output,
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training_output,
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