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  • A comparative study on the ... A comparative study on the predictive ability of the decision tree, support vector machine and neuro-fuzzy models in landslide susceptibility mapping using GIS
    Pradhan, Biswajeet Computers & geosciences, 02/2013, Volume: 51
    Journal Article
    Peer reviewed
    Open access

    The purpose of the present study is to compare the prediction performances of three different approaches such as decision tree (DT), support vector machine (SVM) and adaptive neuro-fuzzy inference ...
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  • Use of GIS-based fuzzy logi... Use of GIS-based fuzzy logic relations and its cross application to produce landslide susceptibility maps in three test areas in Malaysia
    Pradhan, Biswajeet Environmental earth sciences, 05/2011, Volume: 63, Issue: 2
    Journal Article
    Peer reviewed

    Landslides are one of the most frequent and common natural hazards in Malaysia. Preparation of landslide susceptibility maps is one of the first and most important steps in the landslide hazard ...
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  • Remote sensing and GIS-base... Remote sensing and GIS-based landslide hazard analysis and cross-validation using multivariate logistic regression model on three test areas in Malaysia
    Pradhan, Biswajeet Advances in space research, 05/2010, Volume: 45, Issue: 10
    Journal Article
    Peer reviewed

    This paper presents the results of the cross-validation of a multivariate logistic regression model using remote sensing data and GIS for landslide hazard analysis on the Penang, Cameron, and ...
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  • Application of convolutiona... Application of convolutional neural networks featuring Bayesian optimization for landslide susceptibility assessment
    Sameen, Maher Ibrahim; Pradhan, Biswajeet; Lee, Saro Catena (Giessen), March 2020, 2020-03-00, Volume: 186
    Journal Article
    Peer reviewed
    Open access

    This study developed a deep learning based technique for the assessment of landslide susceptibility through a one-dimensional convolutional network (1D-CNN) and Bayesian optimisation in Southern ...
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  • Urban Vegetation Mapping fr... Urban Vegetation Mapping from Aerial Imagery Using Explainable AI (XAI)
    Abdollahi, Abolfazl; Pradhan, Biswajeet Sensors, 07/2021, Volume: 21, Issue: 14
    Journal Article
    Peer reviewed
    Open access

    Urban vegetation mapping is critical in many applications, i.e., preserving biodiversity, maintaining ecological balance, and minimizing the urban heat island effect. It is still challenging to ...
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  • Spatial prediction of flood... Spatial prediction of flood susceptible areas using rule based decision tree (DT) and a novel ensemble bivariate and multivariate statistical models in GIS
    Tehrany, Mahyat Shafapour; Pradhan, Biswajeet; Jebur, Mustafa Neamah Journal of hydrology (Amsterdam), 11/2013, Volume: 504
    Journal Article
    Peer reviewed

    •Decision tree (DT) machine learning algorithm was used to map the flood susceptible areas in Kelantan, Malaysia.•We used an ensemble frequency ratio (FR) and logistic regression (LR) model in order ...
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  • Energy: Preface Energy: Preface
    Pradhan, Biswajeet Di xue qian yuan., November 2021, 2021-11-00, 20211101, 2021-11-01, Volume: 12, Issue: 6
    Journal Article
    Peer reviewed
    Open access
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  • Landslide Detection Using R... Landslide Detection Using Residual Networks and the Fusion of Spectral and Topographic Information
    Sameen, Maher Ibrahim; Pradhan, Biswajeet IEEE access, 2019, Volume: 7
    Journal Article
    Peer reviewed
    Open access

    Landslide inventories are in high demand for risk assessment of this natural hazard, particularly in tropical mountainous regions. This research designed residual networks for landslide detection ...
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  • Delineation of landslide ha... Delineation of landslide hazard areas on Penang Island, Malaysia, by using frequency ratio, logistic regression, and artificial neural network models
    Pradhan, Biswajeet; Lee, Saro Environmental earth sciences, 05/2010, Volume: 60, Issue: 5
    Journal Article
    Peer reviewed

    This paper summarizes findings of landslide hazard analysis on Penang Island, Malaysia, using frequency ratio, logistic regression, and artificial neural network models with the aid of GIS tools and ...
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  • Deep Learning Approaches Ap... Deep Learning Approaches Applied to Remote Sensing Datasets for Road Extraction: A State-Of-The-Art Review
    Abdollahi, Abolfazl; Pradhan, Biswajeet; Shukla, Nagesh ... Remote sensing, 05/2020, Volume: 12, Issue: 9
    Journal Article
    Peer reviewed
    Open access

    One of the most challenging research subjects in remote sensing is feature extraction, such as road features, from remote sensing images. Such an extraction influences multiple scenes, including map ...
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