Utilization of Google Earth Engine (GEE) for land use and land cover monitoring in Perlis / Mujahidah Mohamed

Perlis faces challenges in land cover monitoring, hindering sustainable development. This study uses RS and GIS technologies to track changes in land use and land cover between 2018 and 2022, aiming to identify changes in development. To achieve its aim, the objective of this study is to identify th...

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Bibliographic Details
Main Author: Mohamed, Mujahidah
Format: Student Project
Language:English
Published: 2023
Subjects:
Online Access:https://ir.uitm.edu.my/id/eprint/87759/1/87759.pdf
https://ir.uitm.edu.my/id/eprint/87759/
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Institution: Universiti Teknologi Mara
Language: English
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Summary:Perlis faces challenges in land cover monitoring, hindering sustainable development. This study uses RS and GIS technologies to track changes in land use and land cover between 2018 and 2022, aiming to identify changes in development. To achieve its aim, the objective of this study is to identify the changes in the development of Perlis between years 2018 and 2022. This study uses the Google Earth Engine (GEE) programme to achieve its goal. In order to compare the changes in land use and land cover between years 2018 and 2022, a map will be created using a variety supervised classification which is Classification and Regression Tree (CART), Random Forest (RF) and Maximum Likelihood Classification (MLC) method. Despite the great accuracy of the classification findings, CART outperforms RF and MLC in the terms of accuracy which is 83.33% for both year in 2018 and 2022. The Sentinel-2 satellite image classifies land cover types and detects changes. GEE tools integrate and analyze spatial data, enabling targeted interventions to mitigate negative impacts, conserve natural resources, and promote sustainable development. The findings of the land use and land cover monitoring in Perlis reveal several significant trends and challenges.