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Progressive Multi-View Instance Matching: Occlusion-Robust Approach with Initial Segmentation Enhancement

Authors
고현석
Issue Date
Feb-2025
Publisher
IEEE-INST ELECTRICAL ELECTRONICS ENGINEERS INC
Keywords
Instance segmentation; multi-view image dataset; multi-view instance matching; occlusion; segmentation refinement
Citation
IEEE SENSORS JOURNAL, v.25, no.3, pp 1 - 13
Pages
13
Indexed
SCIE
SCOPUS
Journal Title
IEEE SENSORS JOURNAL
Volume
25
Number
3
Start Page
1
End Page
13
URI
https://scholarworks.bwise.kr/erica/handle/2021.sw.erica/121998
DOI
10.1109/JSEN.2024.3515115
ISSN
1530-437X
1558-1748
Abstract
The growing demand for immersive media has led to active research on multi-view images. However, challenges such as occlusion and the lack of publicly available multi-view datasets hinder progress in this field. To address these issues, we introduce a novel dataset, SMIIM (Synthetic Multi-view Images for Instance Matching), designed for multi-view instance matching. We also propose a progressive matching algorithm, a three-stage process that effectively handles occlusion. Finally, we improve the image segmentation results by refining the masks generated by existing networks with our matching results. Compared to existing instance matching algorithms, our method not only provides faster processing time but also significantly enhances performance, achieving an average ID matching accuracy of 97.5% and a mean Intersection over Union (mIoU) improvement of 19.8% not only on our dataset but also on standardized datasets and real-world datasets. Multi-object matching in multi-view environments is rare, making our research a valuable contribution to this field. The SMIIM dataset will be released to facilitate further research and development in the field of multi-view image processing.
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ERICA 공학대학 (SCHOOL OF ELECTRICAL ENGINEERING)
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