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In this video I cover Whisper, an ASR system from OpenAI's "Robust Speech Recognition via Large-Scale Weak Supervision" paper.
Trained on a huge multi-lingual, multi-task weakly supervised dataset it achieves a very high effective robustness and accuracy closing the gap with the human baseline using only an off-the-shelf transformer.
I walk you through both the paper as well as the actual code. Let me know whether the code part helped!
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✅ Paper: [ Ссылка ]
✅ Code: [ Ссылка ]
✅ Nice explanation of mel spectrograms: [ Ссылка ]
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⌚️ Timetable:
00:00:00 Intro
00:02:05 Paper overview
00:07:30 Collecting a large scale weakly supervised dataset
00:13:55 Evaluation metric issues (WER)
00:16:05 Effective robustness
00:18:40 Scaling laws in progress
00:26:30 Decoding is hacky
00:28:30 Code walk-through
00:30:25 Model architecture (diagram vs code)
00:33:30 Transcription task
00:34:10 Loading the audio, mel spectrograms
00:37:50 Language detection
00:45:00 Transcription task continued
00:47:35 Suppressing token logits
00:52:00 Voice activity detection
00:53:35 Decoding and heuristics
01:01:56 Outro
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Huge thank you to these AI Epiphany patreons:
Eli Mahler
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#whisper #openai #asr
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