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| # Language-Visual Saliency with CLIP and OpenVINO™ | |
| [](https://colab.research.google.com/github/openvinotoolkit/openvino_notebooks/blob/latest/notebooks/clip-language-saliency-map/clip-language-saliency-map.ipynb) | |
| The notebook will cover the following topics: | |
| * Explanation of a _saliency map_ and how it can be used. | |
| * Overview of the CLIP neural network and its usage in generating saliency maps. | |
| * How to split a neural network into parts for separate inference. | |
| * How to speed up inference with OpenVINO™ and asynchronous execution. | |
| ## Saliency Map | |
| A saliency map is a visualization technique that highlights regions of interest in an image. For example, it can be used to [explain image classification predictions](https://arxiv.org/abs/2110.08288) for a particular label. Here is an example of a saliency map that we will get in this notebook: | |
| <p align="center"> | |
| <img width="80%" src="https://user-images.githubusercontent.com/29454499/218967961-9858efd5-fff2-4eb0-bde9-60852f4b31cb.JPG"/> | |
| </p> | |
| ## Installation Instructions | |
| This is a self-contained example that relies solely on its own code.</br> | |
| We recommend running the notebook in a virtual environment. You only need a Jupyter server to start. | |
| For details, please refer to [Installation Guide](../../README.md). | |