Demonstration of MaskSearch: Efficiently Querying Image Masks for Machine Learning Workflows

April 09, 2024 Β· Declared Dead Β· πŸ› Proceedings of the VLDB Endowment

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Authors Lindsey Linxi Wei, Chung Yik Edward Yeung, Hongjian Yu, Jingchuan Zhou, Dong He, Magdalena Balazinska arXiv ID 2404.06563 Category cs.DB: Databases Cross-listed cs.LG, cs.MM Citations 0 Venue Proceedings of the VLDB Endowment Last Checked 5 months ago
Abstract
We demonstrate MaskSearch, a system designed to accelerate queries over databases of image masks generated by machine learning models. MaskSearch formalizes and accelerates a new category of queries for retrieving images and their corresponding masks based on mask properties, which support various applications, from identifying spurious correlations learned by models to exploring discrepancies between model saliency and human attention. This demonstration makes the following contributions:(1) the introduction of MaskSearch's graphical user interface (GUI), which enables interactive exploration of image databases through mask properties, (2) hands-on opportunities for users to explore MaskSearch's capabilities and constraints within machine learning workflows, and (3) an opportunity for conference attendees to understand how MaskSearch accelerates queries over image masks.
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