Descriptor-Free Smooth Feature-Point Matching for Images Separated by Small/Mid Baselines

Ping Li, D.S. Farin, R. Klein Gunnewiek, P.H.N. With, de

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Abstract

Most existing feature-point matching algorithms rely on photometric region descriptors to distinct and match feature points in two images. In this paper, we propose an efficient feature-point matching algorithm for finding point correspondences between two uncalibrated images separated by small or mid camera baselines. The proposed algorithm does not rely on photometric descriptors for matching. Instead, only the motion smoothness constraint is used, which states that the correspondence vectors within a small neighborhood usually have similar directions and magnitudes. The correspondences of feature points in a neighborhood are collectively determined in such a way that the smoothness of the local correspondence field is maximized. The smoothness constraint is self-contained in the correspondence field and is robust to the camera motion, scene structure, illumination, etc. This makes the entire point-matching process texture-independent, descriptor-free and robust. The experimental results show that the proposed method performs much better than the intensity-based block-matching technique, even when the image contrast varies clearly across images.
Original languageEnglish
Title of host publicationProceedings of the 9th international conference on Advanced Concepts for Intelligent Vision Systems (ACIVS 2007) 28-31 August 2007, Delft, The Netherlands
EditorsJ. Blanc-Talon, W. Philips
Place of PublicationBerlin, Germany
PublisherSpringer
Pages427-438
ISBN (Print)978-3-540-74606-5
DOIs
Publication statusPublished - 2007
Eventconference; ACIVS 9, Delft, The Netherlands; 2007-08-28; 2007-08-31 -
Duration: 28 Aug 200731 Aug 2007

Publication series

NameLecture Notes in Computer Science
Volume4678
ISSN (Print)0302-9743

Conference

Conferenceconference; ACIVS 9, Delft, The Netherlands; 2007-08-28; 2007-08-31
Period28/08/0731/08/07
OtherACIVS 9, Delft, The Netherlands

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