notus-7b-v1-int8-ov / README.md
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license: mit

notus-7b-v1-int8-ov

Description

This is notus-7b-v1 model converted to the OpenVINO™ IR (Intermediate Representation) format with weights compressed to int8 by NNCF.

Quantization Parameters

Weight compression was performed using nncf.compress_weights with the following parameters:

  • mode: INT8_ASYM
  • sensitivity_metric: weight_quantization_error

For more information on quantization, check the OpenVINO model optimization guide.

Compatibility

The provided OpenVINO™ IR model is compatible with:

  • OpenVINO version 2024.1.0 and higher
  • Optimum Intel 1.16.0 and higher

Running Model Inference with Optimum Intel

  1. Install packages required for using Optimum Intel integration with the OpenVINO backend:

    pip install optimum[openvino]
    
  2. Run model inference:

    from transformers import AutoTokenizer
    from optimum.intel.openvino import OVModelForCausalLM
    
    model_id = "OpenVINO/notus-7b-v1-int8-ov"
    tokenizer = AutoTokenizer.from_pretrained(model_id)
    model = OVModelForCausalLM.from_pretrained(model_id)
    
    inputs = tokenizer("What is OpenVINO?", return_tensors="pt")
    
    outputs = model.generate(**inputs, max_length=200)
    text = tokenizer.batch_decode(outputs)[0]
    print(text)
    

For more examples and possible optimizations, refer to the OpenVINO Large Language Model Inference Guide.

Running Model Inference with OpenVINO GenAI

  1. Install packages required for using OpenVINO GenAI.
pip install openvino-genai huggingface_hub
  1. Download model from HuggingFace Hub
import huggingface_hub as hf_hub

model_id = "OpenVINO/notus-7b-v1-int8-ov"
model_path = "notus-7b-v1-int8-ov"

hf_hub.snapshot_download(model_id, local_dir=model_path)
  1. Run model inference:
import openvino_genai as ov_genai

device = "CPU"
pipe = ov_genai.LLMPipeline(model_path, device)
print(pipe.generate("What is OpenVINO?"))

More GenAI usage examples can be found in OpenVINO GenAI library docs and samples

Legal information

The original model is distributed under MIT license. More details can be found in original model card.

Disclaimer

Intel is committed to respecting human rights and avoiding causing or contributing to adverse impacts on human rights. See Intel’s Global Human Rights Principles. Intel’s products and software are intended only to be used in applications that do not cause or contribute to adverse impacts on human rights.