Three dimensional target object extraction based on binocular stereo vision

Cong Han, Hongbin Ma*, Jie Yang, Ying Jin

*Corresponding author for this work

Research output: Chapter in Book/Report/Conference proceedingConference contributionpeer-review

1 Citation (Scopus)

Abstract

This paper proposes a scheme for target object extraction in a point cloud with noise and measurement errors. We divide the scheme into two parts: rough extraction and surface filtering of the target object. The first part consists of plane segment and clustering algorithm. The plane segment is implemented by random sample consensus (RANSAC) algorithm to fit the plane model. The clustering problem is solved by Euclidean cluster extracting algorithm. And we choose the object which is the closest to the center point of the point cloud as the target object. The rough extraction part contains normals estimation, clustering algorithm and surface filtering. The problem of normals estimation is solved by principal component analysis (PCA). After estimating normal for each point, we adopt Kmeans clustering method to solve the plane segment problem. Then we project the points which are influenced by noise to the plane. After all of these, a target object can be extracted. The whole scheme is implemented based on point cloud library (PCL) which is a standalone, large scale, open project for 2D/3D image and point cloud processing. The result shows that the method can be used to effectively reduce the influence of noise and measurement error, and obtain a target object with a smooth surface. That is helpful to provide more accurate point cloud information for other point cloud processing.

Original languageEnglish
Title of host publicationProceedings of the 38th Chinese Control Conference, CCC 2019
EditorsMinyue Fu, Jian Sun
PublisherIEEE Computer Society
Pages7895-7900
Number of pages6
ISBN (Electronic)9789881563972
DOIs
Publication statusPublished - Jul 2019
Event38th Chinese Control Conference, CCC 2019 - Guangzhou, China
Duration: 27 Jul 201930 Jul 2019

Publication series

NameChinese Control Conference, CCC
Volume2019-July
ISSN (Print)1934-1768
ISSN (Electronic)2161-2927

Conference

Conference38th Chinese Control Conference, CCC 2019
Country/TerritoryChina
CityGuangzhou
Period27/07/1930/07/19

Keywords

  • Kmeans
  • PCA
  • Plane Segmentation
  • Point Cloud Library
  • RANSAC

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