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| import torch | |
| import gradio as gr | |
| import pytube as pt | |
| from transformers import pipeline | |
| from huggingface_hub import model_info | |
| MODEL_NAME = "openai/whisper-small" #this always needs to stay in line 8 :D sorry for the hackiness | |
| lang = "en" | |
| device = 0 if torch.cuda.is_available() else "cpu" | |
| pipe = pipeline( | |
| task="automatic-speech-recognition", | |
| model=MODEL_NAME, | |
| chunk_length_s=30, | |
| device=device, | |
| ) | |
| pipe.model.config.forced_decoder_ids = pipe.tokenizer.get_decoder_prompt_ids(language=lang, task="transcribe") | |
| def transcribe(microphone, file_upload): | |
| warn_output = "" | |
| if (microphone is not None) and (file_upload is not None): | |
| warn_output = ( | |
| "WARNING: You've uploaded an audio file and used the microphone. " | |
| "The recorded file from the microphone will be used and the uploaded audio will be discarded.\n" | |
| ) | |
| elif (microphone is None) and (file_upload is None): | |
| return "ERROR: You have to either use the microphone or upload an audio file" | |
| file = microphone if microphone is not None else file_upload | |
| text = pipe(file)["text"] | |
| return warn_output + text | |
| demo = gr.Blocks() | |
| css = """ | |
| footer {display:none !important} | |
| .output-markdown{display:none !important} | |
| button.primary { | |
| z-index: 14; | |
| width: 113px !important; | |
| height: 30px !important; | |
| left: 0px; | |
| top: 0px; | |
| cursor: pointer !important; | |
| background: none rgb(17, 20, 45) !important; | |
| border: none !important; | |
| color: rgb(255, 255, 255) !important; | |
| line-height: 1 !important; | |
| border-radius: 12px !important; | |
| transition: box-shadow 200ms ease 0s, background 200ms ease 0s !important; | |
| box-shadow: none !important; | |
| } | |
| button.primary:hover{ | |
| z-index: 14; | |
| width: 113px !important; | |
| height: 30px !important; | |
| left: 0px; | |
| top: 0px; | |
| cursor: pointer !important; | |
| background: none rgb(37, 56, 133) !important; | |
| border: none !important; | |
| color: rgb(255, 255, 255) !important; | |
| line-height: 1 !important; | |
| border-radius: 12px !important; | |
| transition: box-shadow 200ms ease 0s, background 200ms ease 0s !important; | |
| box-shadow: rgb(0 0 0 / 23%) 0px 1px 7px 0px !important; | |
| } | |
| button.gallery-item:hover { | |
| border-color: rgb(37 56 133) !important; | |
| background-color: rgb(229,225,255) !important; | |
| } | |
| button.secondary{ | |
| width: 113px !important; | |
| height: 30px !important; | |
| } | |
| button.secondary:hover{ | |
| width: 113px !important; | |
| height: 30px !important; | |
| } | |
| """ | |
| examples = [ | |
| ['Martin Luther king - FREE AT LAST.mp3'], ['Winston Churchul - ARCH OF VICTOR.mp3'], ['Voice of Neil Armstrong.mp3'], ['Speeh by George Washington.mp3'], ['Speech by John Kennedy.mp3'], ['Al Gore on Inventing the Internet.mp3'], ['Alan Greenspan.mp3'], ['Neil Armstrong - ONE SMALL STEP.mp3'], ['General Eisenhower announcing D-Day landing.mp3'], ['Hey Siri.wav'] | |
| ] | |
| mf_transcribe = gr.Interface( | |
| fn=transcribe, | |
| inputs=[ | |
| gr.inputs.Audio(source="microphone", type="filepath", optional=True), | |
| gr.inputs.Audio(source="upload", type="filepath", optional=True) | |
| ], | |
| outputs="text", | |
| layout="horizontal", | |
| theme="huggingface", | |
| allow_flagging="never", | |
| examples = examples, | |
| css = css | |
| ).launch(enable_queue=True) | |
| #used openai/whisper model |