Percent of building density (PBD) of urban environment: a multi-index approach based study in DKI Jakarta Province

Author:

Ardiansyah Ardiansyah,Hernina Revi,Suseno Weling,Zulkarnain Faris,Yanidar Ramadhani,Rokhmatuloh Rokhmatuloh

Abstract

This study developed a model to identify the percent of building density (PBD) of DKI Jakarta Province in each pixel of Landsat 8 imageries through a multi-index approach. DKI Jakarta province was selected as the location of the study because of its urban environment characteristics.  The model was constructed using several predictor variables i.e.  Normalized Difference Built-up Index (NDBI), Soil-adjusted Vegetation Index (SAVI), Normalized Difference Water Index (NDWI), and surface temperature from thermal infrared sensor (TIRS). The calculation of training sample data was generated from high-resolution imagery and was correlated to the predictor variables using multiple linear regression (MLR) analysis. The R values of predictor variables are significantly correlated. The result of MLR analysis shows that the predictor variables simultaneously have correlation and similar pattern to the PBD based on high-resolution imageries. The Adjusted R Square value is 0,734, indicates that all four variables influences predicting the PBD by 73%.

Publisher

Universitas Gadjah Mada

Subject

Geography, Planning and Development

Cited by 7 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Quantitative study of water impact on land value in Jakarta;Urban Water Journal;2023-07-11

2. Comparison of built-up land indices for building density mapping in urban environments;THE 6TH INTERNATIONAL CONFERENCE ON ENERGY, ENVIRONMENT, EPIDEMIOLOGY AND INFORMATION SYSTEM (ICENIS) 2021: Topic of Energy, Environment, Epidemiology, and Information System;2023

3. Effect of Urban Sprawl on Temperature Distribution in Semarang;Proceedings of the International Conference of Geography and Disaster Management (ICGDM 2022);2023

4. Building density and its implications to COVID-19 health risk management: An example from Yogyakarta, Indonesia;IOP Conference Series: Earth and Environmental Science;2022-09-01

5. Exploring Built-Up Indices and Machine Learning Regressions for Multi-Temporal Building Density Monitoring Based on Landsat Series;Sensors;2022-06-22

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