Sudaryatno, Sudaryatno and Widayani, Prima and Wibowo, Totok Wahyu and Pramono, Bayu Aji Sidiq and Afifah, Zulfa Nur'Aini and Meikasari, Awit Dini and Firdaus, Muhammad Rizki (2020) Multiple linear regression analysis of remote sensing data for determining vulnerability factors of landslide in PURWOREJO. In: 5th International Conferences of Indonesian Society for Remote Sensing, ICOIRS 2019 and and Indonesian Society for Remote Sensing Congress, 17 September 2019, Bandung.
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Sudaryatno_2020_IOP_Conf._Ser.__Earth_Environ._Sci._500_012046.pdf
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Abstract
Purworejo is one of the potential area that could be experiencing landslides, because the geomorphological conditions which are included in Menoreh Hills are geographically sloping to very steep. Based on the Indonesian Disaster Information Data (DIBI) and the National Disaster Management Agency (BNPB) in the last five years from 2014 to April 2019 there have been 64 landslides in Purworejo. The research on landslide vulnerability mapping has been done with various spatial modeling methods, one of them is using Information Value Model (IVM). There are four landslide factors arranging the model, such as elevation, slope, slope direction and vegetation index (NDVI). The purpose of this research is to determine the most influence factors towards landslide vulnerability levels thorugh remote sensing data. Multiple regression analysis is used to determine the most influential factors. In this research, dependent variable represented by eight landslide factors, and the independent variable is vurnerability level of landslide in Purworejo. The results of this study explain that the predictor variables that most influence the occurrence of landslides in Purworejo are elevations with regression values that are quite dominant among other variables.
Item Type: | Conference or Workshop Item (Paper) |
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Additional Information: | Cited by: 2; All Open Access, Gold Open Access |
Uncontrolled Keywords: | Disaster prevention; Disasters; Factor analysis; Landslides; Linear regression; Disaster Information; Independent variables; Multiple linear regression analysis; Multiple regression analysis; Predictor variables; Remote sensing data; Vulnerability factors; Vulnerability mappings; Remote sensing |
Subjects: | G Geography. Anthropology. Recreation > G Geography (General) |
Divisions: | Faculty of Geography > Departemen Sains Informasi Geografi |
Depositing User: | Sri JUNANDI |
Date Deposited: | 13 Feb 2025 06:42 |
Last Modified: | 13 Feb 2025 06:42 |
URI: | https://ir.lib.ugm.ac.id/id/eprint/14295 |