A Cascaded Semantic Enhancement Network Based on Attention Mechanism for Blurred Small Polyp Segmentation

Mianduan Lin, Kaoru Hirota, Yaping Dai, Ye Ji, Shuai Shao*

*Corresponding author for this work

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

Abstract

In some polyp feature extraction algorithms based on deep learning, there is a problem of polyp semantic information degradation caused by frequent operations of feature down-sampling, which reduces the accuracy of polyp segmentation. To solve the problem of polyp semantic information degradation, a Cascaded Semantic Enhancement Network (CSENet) based on attention mechanism is proposed. There are two main parts in CSENet, Cascaded Partial Decoder (CPD) and Polyp Semantic Enhancement (PSE) module. The CPD is used to aggregate multiscale features of polyps. The PSE module is constructed based on channel attention and spatial attention to enhance the degraded semantic information of polyps. The PSE module improves CSENet's ability to segment polyps in both cases of small polyp targets and blurred polyp edges, thus improving CSENet's polyp segmentation accuracy. Experiment results show that the CSENet has best performance compare with five methods (U-Net, UNet++, SFA, PraNet and SANet), under four benchmark polyp segmentation datasets (the Kvasir dataset, the CVC-ClinicDpB dataset, the CVC-ColonDB dataset and the CVC-T dataset). In particular, compared with the SANet, CSENet improves mIoU and Fβw by 2.3% and 1.6% on the CVC-ClinicDB dataset.

Original languageEnglish
Title of host publication2023 42nd Chinese Control Conference, CCC 2023
PublisherIEEE Computer Society
Pages8240-8245
Number of pages6
ISBN (Electronic)9789887581543
DOIs
Publication statusPublished - 2023
Event42nd Chinese Control Conference, CCC 2023 - Tianjin, China
Duration: 24 Jul 202326 Jul 2023

Publication series

NameChinese Control Conference, CCC
Volume2023-July
ISSN (Print)1934-1768
ISSN (Electronic)2161-2927

Conference

Conference42nd Chinese Control Conference, CCC 2023
Country/TerritoryChina
CityTianjin
Period24/07/2326/07/23

Keywords

  • Attention mechanism
  • Deep learning
  • Polyp image segmentation
  • Semantic enhancement

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