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#8246: Port functional_whisper to n300 card
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# Whisper Demo | ||
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Demo showcasing Whisper running on Grayskull - e150 and Wormhole - n150, n300 using ttnn. | ||
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## Introduction | ||
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Whisper is a general-purpose speech recognition model. It is trained on a large dataset of diverse audio and is also a multitasking model that can perform multilingual speech recognition, speech translation, and language identification. These tasks are jointly represented as a sequence of tokens to be predicted by the decoder, allowing a single model to replace many stages of a traditional speech-processing pipeline. The multitask training format uses a set of special tokens that serve as task specifiers or classification targets. | ||
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## Details | ||
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The entry point to whisper model is `whisper` in `models/demos/whisper/tt/ttnn_optimized_functional_whisper.py` for optimized version.. The model picks up certain configs and weights from huggingface pretrained model. We have used openai/whisper-base version from huggingface as our reference. | ||
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### Max Tokens: 32 | ||
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Max Tokens determines the maximum number of input tokens processed by the model in a single pass durig transcription, optimizing performance and compatibility. It's recommended to set the max_tokens to 32 | ||
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### Batch size: 8 | ||
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Batch Size determines the number of input sequences processed simultaneously during training or inference, impacting computational efficiency and memory usage. It's recommended to set the batch_size to 8 | ||
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## How to Run | ||
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### Whisper For Audio Classification | ||
Use `pytest --disable-warnings models/demos/whisper/demo/demo.py::test_demo_for_audio_classification[models.demos.whisper.tt.ttnn_optimized_functional_whisper-1-8-WHISPER_MEMORY_CONFIG0-sanchit-gandhi/whisper-medium-fleurs-lang-id-models/demos/whisper/demo/dataset/audio_classification]` to run the ttnn optimized functional whisper demo for audio classification. | ||
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#### Our another demo is designed to run with `google/fleurs` for Audio classification | ||
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Use `pytest --disable-warnings models/demos/whisper/demo/demo.py::test_demo_for_audio_classification_dataset` to run audio classification demo with dataset inputs. | ||
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### Whisper For Conditional Generation | ||
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Use `pytest --disable-warnings models/demos/whisper/demo/demo.py::test_demo_for_conditional_generation[models.demos.whisper.tt.ttnn_optimized_functional_whisper-8-32-WHISPER_MEMORY_CONFIG0-openai/whisper-tiny.en-models/demos/whisper/demo/dataset/conditional_generation-device_params0]` to run the ttnn optimized functional whisper demo for conditional generation. | ||
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#### Our another demo is designed to run with `hf-internal-testing/librispeech_asr_dummy` for Conditional generation | ||
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Use `pytest --disable-warnings models/demos/whisper/demo/demo.py::test_demo_for_conditional_generation_dataset` to run conditional generation demo with dataset inputs. | ||
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## Inputs | ||
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Inputs by default are provided from `dataset/audio_classification` and `dataset/conditional_generation` folder. If you wish to change the inputs, provide a different path to demo. | ||
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For demo with dataset, Inputs for Audio classification is taken from `google/fleurs` dataset and Inputs for Conditional generation is taken from `hf-internal-testing/librispeech_asr_dummy` dataset. | ||
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### Owner: [kkeerthana0573](https://github.com/kkeerthana0573) |
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