Sinergi
Vol 27, No 3 (2023)

Image Segmentation in Aerial Imagery: A Review

Ade Purwanto (National Research and Innovation Agency (BRIN))
Dewi Habsari Budiarti (National Research and Innovation Agency (BRIN))
Fithri Nur Purnamastuti (National Research and Innovation Agency (BRIN))
Irfansyah Yudhi Tanasa (National Research and Innovation Agency (BRIN))
Yomi Guno (National Research and Innovation Agency (BRIN))
Aris Surya Yunata (National Research and Innovation Agency (BRIN))
Mukti Wibowo (National Research and Innovation Agency (BRIN))
Asyaraf Hidayat (National Research and Innovation Agency (BRIN))
Dede Dirgahayu (National Research and Innovation Agency (BRIN))



Article Info

Publish Date
11 Sep 2023

Abstract

The problem of distinguishing objects has plagued researchers for many years because of low accuracy compared to human eyes’ capability. In the last decade, the use of Machine Learning in aerial imagery data processing has multiplied, with the technology behind it has also developed exponentially. One of those technologies is image-based object identification, which relies heavily upon data computation. To reduce the computational load, various data segmentation algorithm was developed. This study is focused on reviewing the various image segmentation technology in aerial imagery for image recognition. Literature from as far as 1981 from various journals and conferences worldwide was reviewed. This review examines specific research questions to analyze image segmentation research over time and the challenges researchers face with each method. Machine Learning has gained popularity among segmentation methods. However, Deep Learning has been aggressively put an essential role in it by overcoming many of its weaknesses. The advanced algorithm used in Deep Learning to process the segmentation may drive more efficient and accurate data processing. 

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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, ...