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Most Influential ICCV 2011 Paper · 2026-03 edition

ORB: An Efficient Alternative To SIFT Or SURF

E. Rublee; V. Rabaud; K. Konolige and G. Bradski

Venue
International Conference on Computer Vision (ICCV) 2011
Recognition
Most Influential ICCV 2011 Paper (Rank No. 1)
Edition
2026-03
Impact factor
10
Certificate ID
41bb28da8c3b7a83

Abstract

Feature matching is at the base of many computer vision problems, such as object recognition or structure from motion. Current methods rely on costly descriptors for detection and matching. In this paper, we propose a very fast binary descriptor based on BRIEF, called ORB, which is rotation invariant and resistant to noise. We demonstrate through experiments how ORB is at two orders of magnitude faster than SIFT, while performing as well in many situations. The efficiency is tested on several real-world applications, including object detection and patch-tracking on a smart phone.

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