Sinergi
Vol 27, No 2 (2023)

Multilabel image analysis on Polyethylene Terephthalate bottle images using PETNet Convolution Architecture

Khoirul Aziz (Department of Electrical Engineering, Faculty of Engineering, Universitas Mercu Buana)
Inggis Kurnia Trisiawan (Department of Electrical Engineering, Faculty of Engineering, Universitas Mercu Buana)
Kadek Dwi Suyasmini (Department of Electrical Engineering, Faculty of Engineering, Universitas Mercu Buana)
Zendi Iklima (Department of Electrical Engineering, Faculty of Engineering, Universitas Mercu Buana)
Mirna Yunita (Department of Computer Science, School of Computer Science and Technology, Beijing Institute of Technology)



Article Info

Publish Date
15 Apr 2023

Abstract

Packaging is one of the important aspects of the product. Good packaging can increase the competitiveness of a product. Therefore, to maintain the quality of the packaging of a product, it is necessary to have a visual inspection. Furthermore, an automatic visual inspection can reduce the occurrence of human errors in the manual inspection process. This research will use the convolution network to detect and classify PET (Polyethylene Terephthalate) bottles. The Convolutional Neural Network (CNN) method is one approach that can be used to detect and classify PET bottle packaging. This research was conducted by comparing seven network architecture models, namely VGG-16, Inception V3, MobileNet V2, Xception, Inception ResNet V2, Depthwise Separable Convolution (DSC), and PETNet, which is the architectural model proposed in this study. The results of this study indicate that the PETNet model gives the best results compared to other models, with a test score of 96.04%, by detecting and classifying 461 of 480 images with an average test time of 0.0016 seconds.

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Journal Info

Abbrev

sinergi

Publisher

Subject

Civil Engineering, Building, Construction & Architecture Control & Systems Engineering Electrical & Electronics Engineering Engineering Industrial & Manufacturing Engineering

Description

SINERGI is a peer-reviewed international journal published three times a year in February, June, and October. The journal is published by Faculty of Engineering, Universitas Mercu Buana. Each publication contains articles comprising high quality theoretical and empirical original research papers, ...