• DocumentCode
    19387
  • Title

    Manifestation of LiDAR-Derived Parameters in the Spatial Prediction of Landslides Using Novel Ensemble Evidential Belief Functions and Support Vector Machine Models in GIS

  • Author

    Jebur, Mustafa Neamah ; Pradhan, Biswajeet ; Tehrany, Mahyat Shafapour

  • Author_Institution
    Dept. of Civil Eng., Univ. Putra Malaysia, Serdang, Malaysia
  • Volume
    8
  • Issue
    2
  • fYear
    2015
  • fDate
    Feb. 2015
  • Firstpage
    674
  • Lastpage
    690
  • Abstract
    Landslide susceptibility mapping is indispensable for disaster management and planning development operations in mountainous regions. The potential use of light detection and ranging (LiDAR) data was explored in this study for deriving landslide-conditioning factors for the spatial prediction of landslide-susceptible areas in a landslide-prone area in Ulu Klang, Malaysia. Nine landslide-conditioning factors, such as altitude, slope, aspect, curvature, stream power index (SPI), topographic wetness index (TWI), terrain roughness index (TRI), sediment transport index (STI), and slope length (SL), were directly derived from LiDAR for landslide-susceptibility mapping. The main objective of this research was to propose a novel ensemble landslide susceptibility mapping method to enhance the performance of individual methods of support vector machine (SVM) and evidential belief function (EBF). SVM is time-consuming when various data types, such as nominal, scale, and ordinal, are used. This characteristic of the individual SVM method is not optimal for hazard modeling. This drawback can be resolved by assessing the effects of the classes of each conditioning factor on landslide occurrence through a data-driven EBF method. Hence, EBF was applied in this study, and weights were acquired for the classes of each conditioning factor. The conditioning factors were reclassified based on the attained weights and entered into SVM as a scale to evaluate the correlation between landslide occurrence and each conditioning factor. Four SVM kernel types [radial basis function kernel (RBF), sigmoid kernel (SIG), linear kernel (LN), and polynomial kernel (PL)] were tested to explore the efficiency of each kernel in SVM modeling. The efficiencies of the ensemble EBF and SVM methods were examined through area under curve (AUC). The RBF kernel obtained better results than the other kernel types. The success and prediction rates obtained from the validation results of ensemble EBF and RBF-SVM - ethod were 83.04% and 80.04%, respectively. The proposed novel ensemble method reasonably accelerated the processing and enhanced the results by combining the advantages of both methods.
  • Keywords
    geographic information systems; geomorphology; remote sensing by laser beam; support vector machines; EBF method; LiDAR data; LiDAR-derived parameters; Malaysia; RBF-SVM method; Ulu Klang; area under curve; disaster management operations; evidential belief function; landslide spatial prediction; landslide susceptibility mapping; landslide-conditioning factors; landslide-prone area; landslide-susceptible areas; linear kernel; novel ensemble evidential belief functions; planning development operations; polynomial kernel; prediction rates; radial basis function kernel; sediment transport index; sigmoid kernel; slope length; stream power index; support vector machine; support vector machine models; terrain roughness index; topographic wetness index; Geology; Indexes; Kernel; Laser radar; Statistical analysis; Support vector machines; Terrain factors; Evidential belief function (EBF); Malaysia; geographical information system (GIS); landslide; light detection and ranging (LiDAR); remote sensing; support vector machine (SVM);
  • fLanguage
    English
  • Journal_Title
    Selected Topics in Applied Earth Observations and Remote Sensing, IEEE Journal of
  • Publisher
    ieee
  • ISSN
    1939-1404
  • Type

    jour

  • DOI
    10.1109/JSTARS.2014.2341276
  • Filename
    6874490