Precision Measurement for Industry 4.0 Standards towards Solid Waste Classification through Enhanced Imaging Sensors and Deep Learning Model

Achievement of precision measurement is highly desired in a current industrial revolution where a significant increase in living standards increased municipal solid waste. The current industry 4.0 standards require accurate and efficient edge computing sensors towards solid waste classification. Thu...

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Main Authors: Leow Wei Qin, Muneer Ahmad, Ihsan Ali, Rafia Mumtaz, Syed Mohammad Hassan Zaidi, Sultan S. Alshamrani, Muhammad Ahsan Raza, Muhammad Tahir
Format: Article
Language:English
Published: Hindawi-Wiley 2021-01-01
Series:Wireless Communications and Mobile Computing
Online Access:http://dx.doi.org/10.1155/2021/9963999
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spelling doaj-a670c92364c94b25921def5d31a636312021-05-31T00:33:23ZengHindawi-WileyWireless Communications and Mobile Computing1530-86772021-01-01202110.1155/2021/9963999Precision Measurement for Industry 4.0 Standards towards Solid Waste Classification through Enhanced Imaging Sensors and Deep Learning ModelLeow Wei Qin0Muneer Ahmad1Ihsan Ali2Rafia Mumtaz3Syed Mohammad Hassan Zaidi4Sultan S. Alshamrani5Muhammad Ahsan Raza6Muhammad Tahir7Department of Information SystemsDepartment of Information SystemsDepartment of Computer System and TechnologyNational University of Sciences and Technology (NUST)National University of Sciences and Technology (NUST)Department of Information TechnologyDepartment of Information TechnologyDepartment of Computer ScienceAchievement of precision measurement is highly desired in a current industrial revolution where a significant increase in living standards increased municipal solid waste. The current industry 4.0 standards require accurate and efficient edge computing sensors towards solid waste classification. Thus, if waste is not managed properly, it would bring about an adverse impact on health, the economy, and the global environment. All stakeholders need to realize their roles and responsibilities for solid waste generation and recycling. To ensure recycling can be successful, the waste should be correctly and efficiently separated. The performance of edge computing devices is directly proportional to computational complexity in the context of nonorganic waste classification. Existing research on waste classification was done using CNN architecture, e.g., AlexNet, which contains about 62,378,344 parameters, and over 729 million floating operations (FLOPs) are required to classify a single image. As a result, it is too heavy and not suitable for computing applications that require inexpensive computational complexities. This research proposes an enhanced lightweight deep learning model for solid waste classification developed using MobileNetV2, efficient for lightweight applications including edge computing devices and other mobile applications. The proposed model outperforms the existing similar models achieving an accuracy of 82.48% and 83.46% with Softmax and support vector machine (SVM) classifiers, respectively. Although MobileNetV2 may provide a lower accuracy if compared to CNN architecture which is larger and heavier, the accuracy is still comparable, and it is more practical for edge computing devices and mobile applications.http://dx.doi.org/10.1155/2021/9963999
collection DOAJ
language English
format Article
sources DOAJ
author Leow Wei Qin
Muneer Ahmad
Ihsan Ali
Rafia Mumtaz
Syed Mohammad Hassan Zaidi
Sultan S. Alshamrani
Muhammad Ahsan Raza
Muhammad Tahir
spellingShingle Leow Wei Qin
Muneer Ahmad
Ihsan Ali
Rafia Mumtaz
Syed Mohammad Hassan Zaidi
Sultan S. Alshamrani
Muhammad Ahsan Raza
Muhammad Tahir
Precision Measurement for Industry 4.0 Standards towards Solid Waste Classification through Enhanced Imaging Sensors and Deep Learning Model
Wireless Communications and Mobile Computing
author_facet Leow Wei Qin
Muneer Ahmad
Ihsan Ali
Rafia Mumtaz
Syed Mohammad Hassan Zaidi
Sultan S. Alshamrani
Muhammad Ahsan Raza
Muhammad Tahir
author_sort Leow Wei Qin
title Precision Measurement for Industry 4.0 Standards towards Solid Waste Classification through Enhanced Imaging Sensors and Deep Learning Model
title_short Precision Measurement for Industry 4.0 Standards towards Solid Waste Classification through Enhanced Imaging Sensors and Deep Learning Model
title_full Precision Measurement for Industry 4.0 Standards towards Solid Waste Classification through Enhanced Imaging Sensors and Deep Learning Model
title_fullStr Precision Measurement for Industry 4.0 Standards towards Solid Waste Classification through Enhanced Imaging Sensors and Deep Learning Model
title_full_unstemmed Precision Measurement for Industry 4.0 Standards towards Solid Waste Classification through Enhanced Imaging Sensors and Deep Learning Model
title_sort precision measurement for industry 4.0 standards towards solid waste classification through enhanced imaging sensors and deep learning model
publisher Hindawi-Wiley
series Wireless Communications and Mobile Computing
issn 1530-8677
publishDate 2021-01-01
description Achievement of precision measurement is highly desired in a current industrial revolution where a significant increase in living standards increased municipal solid waste. The current industry 4.0 standards require accurate and efficient edge computing sensors towards solid waste classification. Thus, if waste is not managed properly, it would bring about an adverse impact on health, the economy, and the global environment. All stakeholders need to realize their roles and responsibilities for solid waste generation and recycling. To ensure recycling can be successful, the waste should be correctly and efficiently separated. The performance of edge computing devices is directly proportional to computational complexity in the context of nonorganic waste classification. Existing research on waste classification was done using CNN architecture, e.g., AlexNet, which contains about 62,378,344 parameters, and over 729 million floating operations (FLOPs) are required to classify a single image. As a result, it is too heavy and not suitable for computing applications that require inexpensive computational complexities. This research proposes an enhanced lightweight deep learning model for solid waste classification developed using MobileNetV2, efficient for lightweight applications including edge computing devices and other mobile applications. The proposed model outperforms the existing similar models achieving an accuracy of 82.48% and 83.46% with Softmax and support vector machine (SVM) classifiers, respectively. Although MobileNetV2 may provide a lower accuracy if compared to CNN architecture which is larger and heavier, the accuracy is still comparable, and it is more practical for edge computing devices and mobile applications.
url http://dx.doi.org/10.1155/2021/9963999
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