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로봇 조립 특징 형상 분류를 위한 3D CNN 개발Development of a 3D Convolution Neural Network for Classifying Robot Assembly form Features

Other Titles
Development of a 3D Convolution Neural Network for Classifying Robot Assembly form Features
Authors
도남철한효녕조준면
Issue Date
Dec-2024
Publisher
대한산업공학회
Keywords
Form Features; Robot Assembly Planning; Convolution Neural Network; 3D CNN; Voxel
Citation
대한산업공학회지, v.50, no.6, pp 437 - 447
Pages
11
Indexed
KCI
Journal Title
대한산업공학회지
Volume
50
Number
6
Start Page
437
End Page
447
URI
https://scholarworks.gnu.ac.kr/handle/sw.gnu/78518
ISSN
1225-0988
2234-6457
Abstract
The voxel-based 3D convolution neural network (3D CNN) proposed in this paper classifies form features to decide candidate assembly directions for automated robot assembly planning. It can classify not only form features of a part but also its candidate assembly directions that are needed for the following assembly planning procedures. In the implemented automated robot assembly planning system, it will take the place of the current rule-based form feature classification module. The 3D CNN uses classification classes that integrate both form features and their directions to assist candidate assembly directions to the following component ordering and robot assembly planning procedures in the automated robot assembly system. This study generated 3D CAD models for each form feature class and converted them into voxel models for the training of the 3D CNN. This study also contrasted rule-based classification methods with voxel-based CNN and evaluated the advantages and disadvantages of each method.
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공과대학 > Department of Industrial and Systems Engineering > Journal Articles

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Do, Nam Chul
공과대학 (산업시스템공학부)
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