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QWW/EditCLIP
EditCLIP is a machine learning model from QWW. Use it for the machine learning task on the model card, and read the license before you ship it in a product. The card lists the license as mit.
[](https://arxiv.org/abs/2503.20318) [](https://qianwangx.github.io/EditCLIP/) [](https://github.com/QianWangX/EditCLIP)
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From the Hugging Face model README
We introduce EditCLIP, a novel representation-learning approach for image editing. Our method learns a unified representation of edits by jointly encoding an input image and its edited counterpart, effectively capturing their transformation. To evaluate its effectiveness, we employ EditCLIP to solve two tasks: exemplar-based image editing and automated edit evaluation. In exemplar-based image editing, we replace text-based instructions in InstructPix2Pix with EditCLIP embeddings computed from a reference exemplar image pair. Experiments demonstrate that our approach outperforms state-of-the-art methods while being more efficient and versatile. For automated evaluation, EditCLIP assesses image edits by measuring the similarity between the EditCLIP embedding of a given image pair and either a textual editing instruction or the EditCLIP embedding of another reference image pair. Experiments show that EditCLIP aligns more closely with human judgments than existing CLIP-based metrics, providing a reliable measure of edit quality and structural preservation.
We evaluate EditCLIP using Top-Bench-X, a benchmark for image editing evaluation:
@inproceedings{wang2025editclip,
title={EditCLIP: Representation Learning for Image Editing},
author={Wang, Qian and Cveji{\'c}, Aleksandar and Eldesokey, Abdelrahman and Wonka, Peter},
booktitle={Proceedings of the IEEE/CVF International Conference on Computer Vision},
pages={15960--15970},
year={2025}
}