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README.md
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@@ -26,7 +26,7 @@ The provided OpenVINO™ IR model is compatible with:
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* OpenVINO version 2024.4.0 and higher
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* Optimum Intel 1.20.0 and higher
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## Running Model Inference
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1. Install packages required for using [Optimum Intel](https://huggingface.co/docs/optimum/intel/index) integration with the OpenVINO backend:
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2. Run model inference:
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```
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from transformers import
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from optimum.intel.openvino import
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model_id = "OpenVINO/distil-large-v3-int8-ov"
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tokenizer =
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model =
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print(text)
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```
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## Limitations
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* OpenVINO version 2024.4.0 and higher
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* Optimum Intel 1.20.0 and higher
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## Running Model Inference with [Optimum Intel](https://huggingface.co/docs/optimum/intel/index)
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1. Install packages required for using [Optimum Intel](https://huggingface.co/docs/optimum/intel/index) integration with the OpenVINO backend:
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2. Run model inference:
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```
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from transformers import AutoProcessor
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from optimum.intel.openvino import OVModelForSpeechSeq2Seq
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model_id = "OpenVINO/distil-large-v3-int8-ov"
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tokenizer = AutoProcessor.from_pretrained(model_id)
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model = OVModelForSpeechSeq2Seq.from_pretrained(model_id)
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dataset = load_dataset("hf-internal-testing/librispeech_asr_dummy", "clean", split="validation", trust_remote_code=True)
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sample = dataset[0]
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input_features = processor(
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sample["audio"]["array"],
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sampling_rate=sample["audio"]["sampling_rate"],
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return_tensors="pt",
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).input_features
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outputs = model.generate(input_features)
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text = processor.batch_decode(outputs)[0]
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print(text)
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```
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## Running Model Inference with [OpenVINO GenAI](https://github.com/openvinotoolkit/openvino.genai)
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1. Install packages required for using OpenVINO GenAI.
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```
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pip install huggingface_hub
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pip install -U --pre --extra-index-url https://storage.openvinotoolkit.org/simple/wheels/nightly openvino openvino-tokenizers openvino-genai
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```
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2. Download model from HuggingFace Hub
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```
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import huggingface_hub as hf_hub
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model_id = "OpenVINO/distil-large-v3-int8-ov"
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model_path = "distil-large-v3-int8-ov"
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hf_hub.snapshot_download(model_id, local_dir=model_path)
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```
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3. Run model inference:
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```
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import openvino_genai as ov_genai
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import datasets
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device = "CPU"
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pipe = ov_genai.WhisperPipeline(model_path, device)
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dataset = load_dataset("hf-internal-testing/librispeech_asr_dummy", "clean", split="validation", trust_remote_code=True)
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sample = dataset[0]["audio]["array"]
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print(pipe.generate(sample))
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```
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More GenAI usage examples can be found in OpenVINO GenAI library [docs](https://github.com/openvinotoolkit/openvino.genai/blob/master/src/README.md) and [samples](https://github.com/openvinotoolkit/openvino.genai?tab=readme-ov-file#openvino-genai-samples)
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## Limitations
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