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Update README
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- docs/options.md +20 -12
README.md
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python app.py --input_audio_max_duration -1 --auto_parallel True
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```
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# Docker
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To run it in Docker, first install Docker and optionally the NVIDIA Container Toolkit in order to use the GPU.
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sudo docker run -d --gpus all -p 7860:7860 \
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--mount type=bind,source=/home/administrator/.cache/whisper,target=/root/.cache/whisper \
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--restart=on-failure:15 registry.gitlab.com/aadnk/whisper-webui:latest \
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app.py --input_audio_max_duration -1 --server_name 0.0.0.0 --
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--default_vad silero-vad --default_model_name large
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```
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--mount type=bind,source=/home/administrator/.cache/whisper,target=/root/.cache/whisper \
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--mount type=bind,source=${PWD},target=/app/data \
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registry.gitlab.com/aadnk/whisper-webui:latest \
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cli.py --model large --
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--output_dir /app/data /app/data/YOUR-FILE-HERE.mp4
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```
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python app.py --input_audio_max_duration -1 --auto_parallel True
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```
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### Multiple Files
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You can upload multiple files either through the "Upload files" option, or as a playlist on YouTube.
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Each audio file will then be processed in turn, and the resulting SRT/VTT/Transcript will be made available in the "Download" section.
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When more than one file is processed, the UI will also generate a "All_Output" zip file containing all the text output files.
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# Docker
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To run it in Docker, first install Docker and optionally the NVIDIA Container Toolkit in order to use the GPU.
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sudo docker run -d --gpus all -p 7860:7860 \
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--mount type=bind,source=/home/administrator/.cache/whisper,target=/root/.cache/whisper \
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--restart=on-failure:15 registry.gitlab.com/aadnk/whisper-webui:latest \
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app.py --input_audio_max_duration -1 --server_name 0.0.0.0 --auto_parallel True \
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--default_vad silero-vad --default_model_name large
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```
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--mount type=bind,source=/home/administrator/.cache/whisper,target=/root/.cache/whisper \
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--mount type=bind,source=${PWD},target=/app/data \
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registry.gitlab.com/aadnk/whisper-webui:latest \
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cli.py --model large --auto_parallel True --vad silero-vad \
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--output_dir /app/data /app/data/YOUR-FILE-HERE.mp4
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```
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docs/options.md
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@@ -3,18 +3,19 @@ To transcribe or translate an audio file, you can either copy an URL from a webs
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supported by YT-DLP will work, including YouTube). Otherwise, upload an audio file (choose "All Files (*.*)"
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in the file selector to select any file type, including video files) or use the microphone.
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For longer audio files (>10 minutes), it is recommended that you select Silero VAD (Voice Activity Detector) in the VAD option.
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## Model
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Select the model that Whisper will use to transcribe the audio:
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| Size
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| tiny
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| base
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| small
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| medium
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| large
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## Language
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language. For instance, if the audio is in English but you select Japaneese, the model may translate the audio to Japanese.
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## Inputs
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The options "URL (YouTube, etc.)", "Upload
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the URL.
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## Task
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Select the task - either "transcribe" to transcribe the audio to text, or "translate" to translate it to English.
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10:04, the line's text will be included if the prompt window is 4 seconds or more (10:04 - 10:00 = 4 seconds).
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Note that detected lines in gaps between speech sections will not be included in the prompt
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(if silero-vad or silero-vad-expand-into-gaps) is used.
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supported by YT-DLP will work, including YouTube). Otherwise, upload an audio file (choose "All Files (*.*)"
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in the file selector to select any file type, including video files) or use the microphone.
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For longer audio files (>10 minutes), it is recommended that you select Silero VAD (Voice Activity Detector) in the VAD option, especially if you are using the `large-v1` model. Note that `large-v2` is a lot more forgiving, but you may still want to use a VAD with a slightly higher "VAD - Max Merge Size (s)" (60 seconds or more).
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## Model
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Select the model that Whisper will use to transcribe the audio:
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| Size | Parameters | English-only model | Multilingual model | Required VRAM | Relative speed |
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|-----------|------------|--------------------|--------------------|---------------|----------------|
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| tiny | 39 M | tiny.en | tiny | ~1 GB | ~32x |
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| base | 74 M | base.en | base | ~1 GB | ~16x |
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| small | 244 M | small.en | small | ~2 GB | ~6x |
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| medium | 769 M | medium.en | medium | ~5 GB | ~2x |
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| large | 1550 M | N/A | large | ~10 GB | 1x |
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| large-v2 | 1550 M | N/A | large | ~10 GB | 1x |
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## Language
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language. For instance, if the audio is in English but you select Japaneese, the model may translate the audio to Japanese.
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## Inputs
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The options "URL (YouTube, etc.)", "Upload Files" or "Micriphone Input" allows you to send an audio input to the model.
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### Multiple Files
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Note that the UI will only process either the given URL or the upload files (including microphone) - not both.
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But you can upload multiple files either through the "Upload files" option, or as a playlist on YouTube. Each audio file will then be processed in turn, and the resulting SRT/VTT/Transcript will be made available in the "Download" section. When more than one file is processed, the UI will also generate a "All_Output" zip file containing all the text output files.
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## Task
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Select the task - either "transcribe" to transcribe the audio to text, or "translate" to translate it to English.
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10:04, the line's text will be included if the prompt window is 4 seconds or more (10:04 - 10:00 = 4 seconds).
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Note that detected lines in gaps between speech sections will not be included in the prompt
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(if silero-vad or silero-vad-expand-into-gaps) is used.
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# Command Line Options
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Both `app.py` and `cli.py` also accept command line options, such as the ability to enable parallel execution on multiple
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CPU/GPU cores, the default model name/VAD and so on. Consult the README in the root folder for more information.
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