A robust automated system for detecting and recognising the digit of electrical energy consumption number of the postpaid kWh-meter
Most of the processes of kilowatt-hour meter (kWh-meter) reading in Indonesia are still in manual process which may lead to some problems, such as time consumption and high possibility of data entry errors. Therefore, this study proposes an automated system to minimise these problems. This system...
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Komunitas Ilmuwan dan Profesional Muslim Indonesia
2017-12-01
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doaj-d9380ce8b7a04866b5f080034297d3fa2020-11-24T22:38:18ZengKomunitas Ilmuwan dan Profesional Muslim IndonesiaCommunications in Science and Technology2502-92582502-92662017-12-0122646910.21924/cst.2.2.2017.61A robust automated system for detecting and recognising the digit of electrical energy consumption number of the postpaid kWh-meterHerryawan Pujiharsono0Hanung Adi Nugroho1Oyas Wahyunggoro2Faculty of Telecommunication and Electrical Engineering, Institut Teknologi Telkom PurwokertoDepartment of Electrical Engineering and Information Technology, Faculty of Engineering, Universitas Gadjah MadaDepartment of Electrical Engineering and Information Technology, Faculty of Engineering, Universitas Gadjah MadaMost of the processes of kilowatt-hour meter (kWh-meter) reading in Indonesia are still in manual process which may lead to some problems, such as time consumption and high possibility of data entry errors. Therefore, this study proposes an automated system to minimise these problems. This system is developed for the image with uneven illumination condition and tilted position of stand kWh-meter due to the unavoidable situation while capturing the kWh-meter image. In this study, the illumination problem is solved by local thresholding and the tilted position of stand kWh-meter is solved by combination of morphology operations and vertical edge detection on the location detection process and vertical-horizontal projections on the segmentation process. Finally, the numeral recognition is performed by support vector machine (SVM) classifier with zonal density feature as a selected input. The results show that the accuracy of proposed system is 93.55% on detection location process, 89.38% on segmentation process, and 78.10% on numeral recognition process.https://cst.kipmi.or.id/index.php/cst/article/view/61/24Uneven illuminationmeter readingsegmentationnumeral recognitionSVM |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Herryawan Pujiharsono Hanung Adi Nugroho Oyas Wahyunggoro |
spellingShingle |
Herryawan Pujiharsono Hanung Adi Nugroho Oyas Wahyunggoro A robust automated system for detecting and recognising the digit of electrical energy consumption number of the postpaid kWh-meter Communications in Science and Technology Uneven illumination meter reading segmentation numeral recognition SVM |
author_facet |
Herryawan Pujiharsono Hanung Adi Nugroho Oyas Wahyunggoro |
author_sort |
Herryawan Pujiharsono |
title |
A robust automated system for detecting and recognising the digit of electrical energy consumption number of the postpaid kWh-meter |
title_short |
A robust automated system for detecting and recognising the digit of electrical energy consumption number of the postpaid kWh-meter |
title_full |
A robust automated system for detecting and recognising the digit of electrical energy consumption number of the postpaid kWh-meter |
title_fullStr |
A robust automated system for detecting and recognising the digit of electrical energy consumption number of the postpaid kWh-meter |
title_full_unstemmed |
A robust automated system for detecting and recognising the digit of electrical energy consumption number of the postpaid kWh-meter |
title_sort |
robust automated system for detecting and recognising the digit of electrical energy consumption number of the postpaid kwh-meter |
publisher |
Komunitas Ilmuwan dan Profesional Muslim Indonesia |
series |
Communications in Science and Technology |
issn |
2502-9258 2502-9266 |
publishDate |
2017-12-01 |
description |
Most of the processes of kilowatt-hour meter (kWh-meter) reading in Indonesia are still in manual process which may lead to some problems, such as time consumption and high possibility of data entry errors. Therefore, this study proposes an automated system to minimise these problems. This system is developed for the image with uneven illumination condition and tilted position of stand kWh-meter due to the unavoidable situation while capturing the kWh-meter image. In this study, the illumination problem is solved by local thresholding and the tilted position of stand kWh-meter is solved by combination of morphology operations and vertical edge detection on the location detection process and vertical-horizontal projections on the segmentation process. Finally, the numeral recognition is performed by support vector machine (SVM) classifier with zonal density feature as a selected input. The results show that the accuracy of proposed system is 93.55% on detection location process, 89.38% on segmentation process, and 78.10% on numeral recognition process. |
topic |
Uneven illumination meter reading segmentation numeral recognition SVM |
url |
https://cst.kipmi.or.id/index.php/cst/article/view/61/24 |
work_keys_str_mv |
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