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Journal : Journal of Information Systems Engineering and Business Intelligence

Comparison of Backpropagation and Kohonen Self Organising Map (KSOM) Methods in Face Image Recognition Lady Silk Moonlight; Fiqqih Faizah; Yuyun Suprapto; Nyaris Pambudiyatno
Journal of Information Systems Engineering and Business Intelligence Vol. 7 No. 2 (2021): October
Publisher : Universitas Airlangga

Show Abstract | Download Original | Original Source | Check in Google Scholar | DOI: 10.20473/jisebi.7.2.149-161

Abstract

Background: Human face is a biometric feature. Artificial Intelligence (AI) called Artificial Neural Network (ANN) can be used in recognising such a biometric feature. In ANN, the learning process is divided into two: supervised and unsupervised learning. In supervised learning, a common method used is Backpropagation, while in the unsupervised learning, a common one is Kohonen Self Organizing Map (KSOM). However, the application of Backpropagation and KSOM need to be adjusted to improve the performance.Objective: In this study, Backpropagation and KSOM algorithms are rewritten to suit face image recognition, applied and compared to determine the effectiveness of each algorithm in solving face image recognition.Methods: In this study, the methods used and compared in the case of face image recognition are Backpropagation dan Kohonen Self Organizing Map (KSOM) Artificial Neural Network (ANN).Results: The smallest False Acceptance Rate (FAR) value of Backpropagation is 28%, and KSOM is 36%, out of 50 unregistered face images tested. While the smallest False Rejection Rate (FRR) value of Backpropagation is 22%, and KSOM is 30%, out of 50 registered face images. The fastest time for the training process using the backpropagation method is 7.14 seconds, and the fastest time for recognition is 0.71 seconds. While the fastest time for the training process using the KSOM method is 5.35 seconds, and the fastest time for recognition is 0.50 seconds.Conclusion: Backpropagation method is better in recognising face images than KSOM method, but the training process and the recognition process by KSOM method are faster than Backpropagation method due to the hidden layers. Keywords: Artificial Neural Network (ANN), Backpropagation, Kohonen Self Organizing Map (KSOM), Supervised learning, Unsupervised learning 
Co-Authors Achmad Setiyo Prabowo Ade Akbar Mukhlisin Ahmad Musadek Aizatul Mufidah Aldy Wahyu Saputra Annisarahma Parameswari Anwar Kholil Ariyono Setiawan Arnaz Olieve Arnaz Olieve Aura Putri Ahmadiyah Bambang Bagus Harianto Bambang Riyanto Trilaksono Bambang Wasito Bambang Wasito Bayu Dwi Cahyo Cindy Berliana Damar Istri Pratiwi Deny Pratama Dewi Ratna Sari Didi Hariyanto Dido Dirgantara Dewangga Diky Chandra Hermawan Dimas Bagus Christian Dinda Sri Wahyuni Dio Fadli Arwan Dwiko Nugroho Sadewo Dwiky Rizqi Firmansyah Fariz Ahmad Nurudin Fatmawati Fiqqih Faizah Fiqqih Faizah Haris Ihsanul Fadhlurrohman Haryo Penang Setyo Boma Henslok Mateus Arcanjo Nalvamaris Ilham Rizky Aries Djianto Irfansyah, Ade iswahyudi, Prasetyo Ivan Zulkifly Laurenta Pradana Kusno Kusno Kusno Kustori Lusiana Dewi Kusumayati Matius Wahyu Susanta Maulana Anifa Silvia Mimbar Maulana Ishaq Moch Muharrom Ricky Maulana1 Moch. Noval Ardiansyah Mubarak Mubarak Mubarak Muh. Firsya Ali Akbar Najwa Artania Istiqomah Sutikno Naufal Yusuf Prasaja Nyaris Pambudiyatno Panji Dwi Saputro Pawitra Enhar Sahisnu Ramining Puspitaningsih Retno Purwanig Tiyas Revayanto Eka Primadi Rinda Festyana Putri Riyanta, Wawan Rochmawati, Laila Shandy Bayu Erlangga Shendy Artileriawan Sintya Safitri Slamet Hariyadi Sugiarto, Sugiarto Suhanto Suhanto Sunardi Sunardi Sunaryo Suwito Teguh Arifianto Teguh Imam Suharto Tiziano Jose Paulo Dos Santos Pinto Vicky Rendra Purwanto Widyarini, Resty Wiwid Suryono Yessica Kristina Damayanti Yesy Diah Rosita Yuyun Suprapto