Jurnal Sisfokom (Sistem Informasi dan Komputer)
Vol 12, No 2 (2023): JULI

Object Recognition with SSD MobileNet Pre-Trained Model in the Cashier Application

Nazil Ilham Burhanudin (Universitas Amikom Yogyakarta)
Arif Dwi Laksito (Universitas Amikom Yogyakarta)
Acihmah Sidauruk (Universitas Amikom Yogyakarta)
Muhammad Resa Arif Yudianto (Universitas Muhammadiyah Magelang)
Alfie Nur Rahmi (Universitas Amikom Yogyakarta)



Article Info

Publish Date
01 Jul 2023

Abstract

Object recognition is a type of image processing technique that is frequently employed in current applications such as facial identification, vehicle detection, and automated cashiers. One issue with barcode and RFID cashier apps is that they cannot scan several products at the same time. The cashier application employing object identification using picture images is believed to be able to distinguish more than one object in order to speed up the transaction process. The usage of SSD pre-trained models with MobileNet architecture to detect items in automatic cashier applications is discussed in this paper. This study put the model to the test on three types of soft drink objects: coca-cola, floridina, and good day. A smartphone camera was used to collect the data, which totaled 203 images. The findings indicated that the product object identification method was 82.9% accurate, 97.5% precise, and 84.7% recall. The object recognition process takes between 365 and 827 milliseconds, with an average time of 695 milliseconds (0.69 seconds).

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Journal Info

Abbrev

sisfokom

Publisher

Subject

Computer Science & IT Control & Systems Engineering Decision Sciences, Operations Research & Management

Description

Jurnal Sisfokom merupakan singkatan dari Jurnal Sistem Informasi dan Komputer. Jurnal ini merupakan kolaborasi antara sivitas akademika STMIK Atma Luhur dengan perguruan tinggi maupun universitas di Indonesia. Jurnal ini berisi artikel ilmiah dari peneliti, akademisi, serta para pemerhati TI. Jurnal ...