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Runtime error
Runtime error
Update app.py
Browse files
app.py
CHANGED
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@@ -94,95 +94,106 @@ def get_caption(image_in):
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def get_magnet(prompt):
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amended_prompt = f"{prompt}"
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print(amended_prompt)
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def get_audioldm(prompt):
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def get_audiogen(prompt):
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def get_tango(prompt):
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try:
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except:
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raise gr.Error("Tango space API is not ready, please try again in few minutes ")
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result = client.predict(
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prompt, # str representing string value in 'Prompt' Textbox component
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100, # int | float representing numeric value between 100 and 200 in 'Steps' Slider component
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4, # int | float representing numeric value between 1 and 10 in 'Guidance Scale' Slider component
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api_name="/predict"
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def get_tango2(prompt):
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try:
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client = Client("declare-lab/tango2")
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raise gr.Error("Tango2 space API is not ready, please try again in few minutes ")
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result = client.predict(
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prompt,
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100,
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4,
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api_name="/predict"
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def get_stable_audio_open(prompt):
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try:
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client = Client("fffiloni/Stable-Audio-Open-A10", hf_token=hf_token)
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except:
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raise gr.Error("Stable Audio Open space API is not ready, please try again in few minutes ")
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prompt=prompt,
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seconds_total=30,
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steps=100,
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cfg_scale=7,
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api_name="/predict"
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)
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print(result)
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return result
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def blend_vsfx(video_in, audio_result):
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audioClip = AudioFileClip(audio_result)
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@@ -203,46 +214,44 @@ def blend_vsfx(video_in, audio_result):
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def infer(video_in, chosen_model):
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image_in = extract_firstframe(video_in)
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caption = get_caption(image_in)
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raise gr.Error(f"an error occured with {chosen_model}")
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def retry(edited_prompt, video_in, chosen_model):
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image_in = extract_firstframe(video_in)
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caption = edited_prompt
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raise gr.Error(f"an error occured with {chosen_model}")
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def refresh():
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def get_magnet(prompt):
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amended_prompt = f"{prompt}"
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print(amended_prompt)
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try:
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client = Client("https://fffiloni-magnet.hf.space/")
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result = client.predict(
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"facebook/audio-magnet-medium", # Literal['facebook/magnet-small-10secs', 'facebook/magnet-medium-10secs', 'facebook/magnet-small-30secs', 'facebook/magnet-medium-30secs', 'facebook/audio-magnet-small', 'facebook/audio-magnet-medium'] in 'Model' Radio component
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"", # str in 'Model Path (custom models)' Textbox component
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amended_prompt, # str in 'Input Text' Textbox component
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3, # float in 'Temperature' Number component
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0.9, # float in 'Top-p' Number component
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10, # float in 'Max CFG coefficient' Number component
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1, # float in 'Min CFG coefficient' Number component
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20, # float in 'Decoding Steps (stage 1)' Number component
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10, # float in 'Decoding Steps (stage 2)' Number component
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10, # float in 'Decoding Steps (stage 3)' Number component
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10, # float in 'Decoding Steps (stage 4)' Number component
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"prod-stride1 (new!)", # Literal['max-nonoverlap', 'prod-stride1 (new!)'] in 'Span Scoring' Radio component
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api_name="/predict_full"
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)
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print(result)
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return result[1]
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except:
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raise gr.Error("MAGNet space API is not ready, please try again in few minutes ")
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def get_audioldm(prompt):
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try:
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client = Client("https://haoheliu-audioldm2-text2audio-text2music.hf.space/")
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result = client.predict(
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prompt, # str in 'Input text' Textbox component
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"Low quality. Music.", # str in 'Negative prompt' Textbox component
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10, # int | float (numeric value between 5 and 15) in 'Duration (seconds)' Slider component
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3.5, # int | float (numeric value between 0 and 7) in 'Guidance scale' Slider component
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45, # int | float in 'Seed' Number component
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3, # int | float (numeric value between 1 and 5) in 'Number waveforms to generate' Slider component
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fn_index=1
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)
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print(result)
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audio_result = extract_audio(result)
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return audio_result
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except:
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raise gr.Error("AudioLDM space API is not ready, please try again in few minutes ")
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def get_audiogen(prompt):
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try:
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client = Client("https://fffiloni-audiogen.hf.space/")
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result = client.predict(
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prompt,
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10,
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api_name="/infer"
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)
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return result
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except:
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raise gr.Error("AudioGen space API is not ready, please try again in few minutes ")
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def get_tango(prompt):
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try:
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client = Client("fffiloni/tango", hf_token=hf_token)
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result = client.predict(
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prompt, # str representing string value in 'Prompt' Textbox component
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100, # int | float representing numeric value between 100 and 200 in 'Steps' Slider component
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4, # int | float representing numeric value between 1 and 10 in 'Guidance Scale' Slider component
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api_name="/predict"
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)
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print(result)
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return result
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except:
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raise gr.Error("Tango space API is not ready, please try again in few minutes ")
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def get_tango2(prompt):
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try:
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client = Client("declare-lab/tango2")
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result = client.predict(
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prompt,
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100,
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4,
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api_name="/predict"
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)
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print(result)
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return result
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except:
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raise gr.Error("Tango2 space API is not ready, please try again in few minutes ")
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def get_stable_audio_open(prompt):
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try:
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client = Client("fffiloni/Stable-Audio-Open-A10", hf_token=hf_token)
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result = client.predict(
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prompt=prompt,
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seconds_total=30,
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steps=100,
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cfg_scale=7,
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api_name="/predict"
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)
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print(result)
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return result
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except:
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raise gr.Error("Stable Audio Open space API is not ready, please try again in few minutes ")
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def blend_vsfx(video_in, audio_result):
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audioClip = AudioFileClip(audio_result)
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def infer(video_in, chosen_model):
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image_in = extract_firstframe(video_in)
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caption = get_caption(image_in)
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if chosen_model == "MAGNet" :
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audio_result = get_magnet(caption)
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elif chosen_model == "AudioLDM-2" :
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audio_result = get_audioldm(caption)
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elif chosen_model == "AudioGen" :
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audio_result = get_audiogen(caption)
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elif chosen_model == "Tango" :
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audio_result = get_tango(caption)
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elif chosen_model == "Tango 2" :
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audio_result = get_tango2(caption)
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elif chosen_model == "Stable Audio Open" :
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audio_result = get_stable_audio_open(caption)
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final_res = blend_vsfx(video_in, audio_result)
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return gr.update(value=caption, interactive=True), gr.update(interactive=True), audio_result, final_res
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def retry(edited_prompt, video_in, chosen_model):
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image_in = extract_firstframe(video_in)
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caption = edited_prompt
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if chosen_model == "MAGNet" :
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audio_result = get_magnet(caption)
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elif chosen_model == "AudioLDM-2" :
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audio_result = get_audioldm(caption)
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elif chosen_model == "AudioGen" :
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audio_result = get_audiogen(caption)
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elif chosen_model == "Tango" :
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audio_result = get_tango(caption)
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elif chosen_model == "Tango 2" :
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audio_result = get_tango2(caption)
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elif chosen_model == "Stable Audio Open" :
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audio_result = get_stable_audio_open(caption)
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final_res = blend_vsfx(video_in, audio_result)
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return audio_result, final_res
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def refresh():
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