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Déjà Cue: Localizing States in Object Histories via Vocabulary-Relative Coordinates

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Do you know Haofan Cao?You can claim authorship or link another user.Do you know Zhichao You?You can claim authorship or link another user.Do you know Yunkai Yang?You can claim authorship or link another user.Do you know Liang Guo?You can claim authorship or link another user.Do you know Jie Wang?You can claim authorship or link another user.Do you know Chongshou Li?You can claim authorship or link another user.

Abstract

Tracking links observations of the same object through visual change, yet cannot by itself determine when the object is empty or filled, intact or cut. We formulate identity-conditioned state-moment retrieval: given a tracked-object history and alternative state descriptions, localize an interval in which each described state holds. Absolute image-text similarity scores descriptions independently; because every visible frame depicts the same target, shared object compatibility can obscure the state evidence needed to identify the target interval. The alternatives provide the missing reference: evidence for one state should be measured against the others. We introduce Déjà Cue, a training-free framework that turns these alternatives into a vocabulary-relative coordinate system. It subtracts their state-balanced centroid from each description, calibrates frame scores, and scans multiple durations within contiguous visible runs using a frozen encoder. On 78 VOST histories, holding the temporal scan fixed and changing only the query reference nearly doubles R@1 at tIoU 0.5 from 10.3\% to 20.5\% and raises Top-1 tIoU from 16.0\% to 21.5\%. Candidate-rank analyses show that vocabulary-relative queries rank useful intervals higher within the same candidate set. Related state descriptions can therefore serve as an object-specific, query-time coordinate system for reading frozen visual representations.

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Author note
Code available at https://github.com/HaofanCao/DejaCue