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Most Influential ICCV 2007 Paper · 2026-03 edition

Objects In Context

A. Rabinovich; A. Vedaldi; C. Galleguillos; E. Wiewiora and S. Belongie

Venue
International Conference on Computer Vision (ICCV) 2007
Recognition
Most Influential ICCV 2007 Paper (Rank No. 8)
Edition
2026-03
Impact factor
8
Certificate ID
f280505538ffa878

Abstract

In the task of visual object categorization, semantic context can play the very important role of reducing ambiguity in objects' visual appearance. In this work we propose to incorporate semantic object context as a post-processing step into any off-the-shelf object categorization model. Using a conditional random field (CRF) framework, our approach maximizes object label agreement according to contextual relevance. We compare two sources of context: one learned from training data and another queried from Google Sets. The overall performance of the proposed framework is evaluated on the PASCAL and MSRC datasets. Our findings conclude that incorporating context into object categorization greatly improves categorization accuracy.

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