Papers › VISTA: Visualized Text Embedding For Universal Multi-Modal Retrieval

VISTA: Visualized Text Embedding For Universal Multi-Modal Retrieval

6 Jun 2024arXiv:2406.04292archive 2025-07-28

Junjie Zhou, Zheng Liu, Shitao Xiao, Bo Zhao, Yongping Xiong

Multi-modal retrieval becomes increasingly popular in practice. However, the existing retrievers are mostly text-oriented, which lack the capability to process visual information. Despite the presence of vision-language models like CLIP, the current methods are severely limited in representing the text-only and image-only data. In this work, we present a new embedding model VISTA for universal multi-modal retrieval. Our work brings forth threefold technical contributions. Firstly, we introduce a flexible architecture which extends a powerful text encoder with the image understanding capability by introducing visual token embeddings. Secondly, we develop two data generation strategies, which bring high-quality composed image-text to facilitate the training of the embedding model. Thirdly, we introduce a multi-stage training algorithm, which first aligns the visual token embedding with the text encoder using massive weakly labeled data, and then develops multi-modal representation capability using the generated composed image-text data. In our experiments, VISTA achieves superior performances across a variety of multi-modal retrieval tasks in both zero-shot and supervised settings. Our model, data, and source code are available at https://github.com/FlagOpen/FlagEmbedding.

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BGEM3Model FlagOpen/FlagEmbedding/research/BGE_M3/modeling.py official repository unverified MIT (permissive) · f28b605454debf69 · report
EncoderOutput FlagOpen/FlagEmbedding/research/BGE_M3/modeling.py official repository unverified MIT (permissive) · 34b44d6cb35d6dec · report

Tasks

Image RetrievalRetrieval

Results from the paper archive 2025-07-28

TaskDatasetModelMetricValueRank at snapshotLeaderboardReport
Image Retrieval CIRR VISTA (base) (Recall@5+Recall_subset@1)/2 75.9 #9 of 17 Archive leaderboard report

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Methods

CLIP

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