Spaces:
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feat: Add optimized model
Browse files- app.py +17 -6
- weights/kokoro-quant.onnx +3 -0
app.py
CHANGED
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@@ -5,10 +5,18 @@ import soundfile as sf
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from models import Tokenizer, Kokoro
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# Function to fetch available style vectors dynamically
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def get_style_vector_choices(directory="voices"):
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return [file for file in os.listdir(directory) if file.endswith(".pt")]
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# Function to perform TTS using your local model
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def local_tts(
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text: str,
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model_path: str,
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@@ -20,6 +28,8 @@ def local_tts(
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try:
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tokenizer = Tokenizer()
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style_vector_path = os.path.join("voices", style_vector)
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inference = Kokoro(model_path, style_vector_path, tokenizer=tokenizer, lang='en-us')
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audio, sample_rate = inference.generate_audio(text, speed=speed)
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@@ -35,10 +45,12 @@ def local_tts(
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else:
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raise gr.Error("Input text cannot be empty.")
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# Get the list of available style vectors
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style_vector_choices = get_style_vector_choices()
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# sample texts and their corresponding audio
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sample_outputs = [
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("Educational Note", "Machine learning models rely on large datasets and complex algorithms to identify patterns and make predictions.", "assets/edu_note.wav"),
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("Fun Fact", "Did you know that honey never spoils? Archaeologists have found pots of honey in ancient Egyptian tombs that are over 3,000 years old and still edible!", "assets/fun_fact.wav"),
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@@ -54,10 +66,10 @@ example_texts = [
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# Gradio Interface
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with gr.Blocks() as demo:
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gr.Markdown("# <center> Kokoro-82m Text-to-Speech with Gradio </center>")
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# Model-specific inputs
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with gr.Row(variant="panel"):
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model_path = gr.
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style_vector = gr.Dropdown(choices=style_vector_choices, label="Style Vector", value=style_vector_choices[0])
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output_file_format = gr.Dropdown(choices=["wav", "mp3"], label="Output Format", value="wav")
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speed = gr.Slider(minimum=0.5, maximum=2.0, value=1.0, step=0.1, label="Speed")
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@@ -76,20 +88,19 @@ with gr.Blocks() as demo:
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inputs=[text, model_path, style_vector, output_file_format, speed],
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outputs=output_audio
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)
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-
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# Add example texts
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gr.Examples(
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examples=example_texts,
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inputs=[text],
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label="Click an example to populate the input text"
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)
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# Add example texts and audios
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gr.Markdown("### Sample Texts and Audio")
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for topic, sample_text, sample_audio in sample_outputs:
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with gr.Row():
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gr.Textbox(value=sample_text, label=topic, interactive=False)
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gr.Audio(value=sample_audio, label="Example Audio", type="filepath", interactive=False)
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demo.launch(server_name="0.0.0.0")
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from models import Tokenizer, Kokoro
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# Function to fetch available style vectors dynamically
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def get_style_vector_choices(directory="voices"):
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return [file for file in os.listdir(directory) if file.endswith(".pt")]
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def get_onnx_models(directory="weights"):
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return [file for file in os.listdir(directory) if file.endswith(".onnx")]
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# Function to perform TTS using your local model
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def local_tts(
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text: str,
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model_path: str,
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try:
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tokenizer = Tokenizer()
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style_vector_path = os.path.join("voices", style_vector)
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model_path = os.path.join("weights", model_path)
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inference = Kokoro(model_path, style_vector_path, tokenizer=tokenizer, lang='en-us')
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audio, sample_rate = inference.generate_audio(text, speed=speed)
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else:
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raise gr.Error("Input text cannot be empty.")
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# Get the list of available style vectors
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style_vector_choices = get_style_vector_choices()
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onnx_models_choices = get_onnx_models()
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# sample texts and their corresponding audio
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sample_outputs = [
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("Educational Note", "Machine learning models rely on large datasets and complex algorithms to identify patterns and make predictions.", "assets/edu_note.wav"),
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("Fun Fact", "Did you know that honey never spoils? Archaeologists have found pots of honey in ancient Egyptian tombs that are over 3,000 years old and still edible!", "assets/fun_fact.wav"),
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# Gradio Interface
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with gr.Blocks() as demo:
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gr.Markdown("# <center> Kokoro-82m Text-to-Speech with Gradio </center>")
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# Model-specific inputs
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with gr.Row(variant="panel"):
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model_path = gr.Dropdown(choices=onnx_models_choices, label="ONNX Model Path", value=onnx_models_choices[0])
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style_vector = gr.Dropdown(choices=style_vector_choices, label="Style Vector", value=style_vector_choices[0])
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output_file_format = gr.Dropdown(choices=["wav", "mp3"], label="Output Format", value="wav")
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speed = gr.Slider(minimum=0.5, maximum=2.0, value=1.0, step=0.1, label="Speed")
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inputs=[text, model_path, style_vector, output_file_format, speed],
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outputs=output_audio
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)
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# Add example texts
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gr.Examples(
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examples=example_texts,
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inputs=[text],
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label="Click an example to populate the input text"
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)
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# Add example texts and audios
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gr.Markdown("### Sample Texts and Audio")
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for topic, sample_text, sample_audio in sample_outputs:
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with gr.Row():
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gr.Textbox(value=sample_text, label=topic, interactive=False)
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gr.Audio(value=sample_audio, label="Example Audio", type="filepath", interactive=False)
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demo.launch(server_name="0.0.0.0")
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weights/kokoro-quant.onnx
ADDED
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@@ -0,0 +1,3 @@
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version https://git-lfs.github.com/spec/v1
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oid sha256:1d7fe30313cc305d3290aafc748ac02a28f93cabd76702bdb1c5ebea496d4cad
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size 177465355
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