Recognition of Plastic Bottles Region Using Improved DeepLab v3+

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Bibliographic Details
Title: Recognition of Plastic Bottles Region Using Improved DeepLab v3+
Authors: Murata, Yusuke, Kamiya, Tohru, 402, 神谷, 亨, 80295005, 55739611300, 25
Publisher Information: ALife Robotics
Publication Year: 2025
Collection: Kyushu Institute of Technology Academic Repository (Kyutacar) / 九州工業大学学術機関リポジトリ
Subject Terms: Deep Learning, Semantic Segmentation, Convolutional Neural Network (CNN), DeepLab v3+, Efficient Channel Attention Block (ECA Block), Mish function
Description: Factory automation is one solution to the labor shortage. We focus on the sorting of plastic bottles in waste disposal plants and try to automate the process using robotic arms. In this paper, we propose an image analysis method for the recognition of plastic bottles limited to 500ml capacity. The method is semantic segmentation, and the deep learning model is DeepLab v3+. Modifications using ECA Block and Mish function show improvements at the points of misrecognition with the base model. ; conference paper
Document Type: other/unknown material
File Description: application/pdf
Language: English
Relation: Proceedings of International Conference on Artificial Life & Robotics (ICAROB2025); 825; 828; https://kyutech.repo.nii.ac.jp/record/2001637/files/10450823.pdf; https://hdl.handle.net/10228/0002001637; https://kyutech.repo.nii.ac.jp/records/2001637
Availability: https://kyutech.repo.nii.ac.jp/record/2001637/files/10450823.pdf
https://hdl.handle.net/10228/0002001637
https://kyutech.repo.nii.ac.jp/records/2001637
Rights: Copyright (c) The 2025 International Conference on Artificial Life and Robotics (ICAROB2025), Feb.13-16, J:COM HorutoHall, Oita, Japan
Accession Number: edsbas.6C4A44C6
Database: BASE
Description
Abstract:Factory automation is one solution to the labor shortage. We focus on the sorting of plastic bottles in waste disposal plants and try to automate the process using robotic arms. In this paper, we propose an image analysis method for the recognition of plastic bottles limited to 500ml capacity. The method is semantic segmentation, and the deep learning model is DeepLab v3+. Modifications using ECA Block and Mish function show improvements at the points of misrecognition with the base model. ; conference paper