Search Results - "Khosravi, Khabat"
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Corrigendum: Hydrology Research 50 (6), 1645–1664: Difference in the bed load transport of graded and uniform sediments during floods: An experimental investigation, Khabat Khosravi, Amir H. N. Chegini, Andrew D. Binns, Prasad Daggupati and Luca Mao, https://doi.org/10.2166/nh.2019.078
Published in Hydrology Research (01-12-2021)“…The authors regret that the affiliation details for Khabat Khosravi were presented incorrectly in their original paper and apologise for any inconvenience…”
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A comparative assessment of decision trees algorithms for flash flood susceptibility modeling at Haraz watershed, northern Iran
Published in The Science of the total environment (15-06-2018)“…Floods are one of the most damaging natural hazards causing huge loss of property, infrastructure and lives. Prediction of occurrence of flash flood locations…”
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Using Optimized Deep Learning to Predict Daily Streamflow: A Comparison to Common Machine Learning Algorithms
Published in Water resources management (2022)“…From a watershed management perspective, streamflow need to be predicted accurately using simple, reliable, and cost-effective tools. Present study…”
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Flash flood susceptibility analysis and its mapping using different bivariate models in Iran: a comparison between Shannon’s entropy, statistical index, and weighting factor models
Published in Environmental monitoring and assessment (01-12-2016)“…Flooding is a very common worldwide natural hazard causing large-scale casualties every year; Iran is not immune to this thread as well. Comprehensive flood…”
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A comparison between advanced hybrid machine learning algorithms and empirical equations applied to abutment scour depth prediction
Published in Journal of hydrology (Amsterdam) (01-05-2021)“…•5 new hybrid machine learning models applied to abutment scour depth prediction.•A standalone machine learning model and 2 empirical methods served as…”
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A comparative assessment of flood susceptibility modeling using Multi-Criteria Decision-Making Analysis and Machine Learning Methods
Published in Journal of hydrology (Amsterdam) (01-06-2019)“…[Display omitted] •MCDM and machine learning models were compared for flood modelling.•Results show that machine learning is more potential for flood…”
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Assessment of advanced random forest and decision tree algorithms for modeling rainfall-induced landslide susceptibility in the Izu-Oshima Volcanic Island, Japan
Published in The Science of the total environment (20-04-2019)“…Landslides represent a part of the cascade of geological hazards in a wide range of geo-environments. In this study, we aim to investigate and compare the…”
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Convolutional neural network approach for spatial prediction of flood hazard at national scale of Iran
Published in Journal of hydrology (Amsterdam) (01-12-2020)“…•Flood susceptibility map at a scale of Iran derived based on deep learning convolutional neural networks.•15% of the entire country is highly to very highly…”
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Iterative classifier optimizer-based pace regression and random forest hybrid models for suspended sediment load prediction
Published in Environmental science and pollution research international (01-03-2021)“…Suspended sediment load is a substantial portion of the total sediment load in rivers and plays a vital role in determination of the service life of the…”
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Novel GIS Based Machine Learning Algorithms for Shallow Landslide Susceptibility Mapping
Published in Sensors (Basel, Switzerland) (05-11-2018)“…The main objective of this research was to introduce a novel machine learning algorithm of alternating decision tree (ADTree) based on the multiboost (MB),…”
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Novel Hybrid Evolutionary Algorithms for Spatial Prediction of Floods
Published in Scientific reports (18-10-2018)“…Adaptive neuro-fuzzy inference system (ANFIS) includes two novel GIS-based ensemble artificial intelligence approaches called imperialistic competitive…”
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Application and Comparison of Decision Tree-Based Machine Learning Methods in Landside Susceptibility Assessment at Pauri Garhwal Area, Uttarakhand, India
Published in Environmental processes (01-09-2017)“…Landslide susceptibility assessment has been conducted at the Pauri Garhwal area of Uttarakhand state, India, an area affected by numerous landslides causing…”
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Land Subsidence Susceptibility Mapping in South Korea Using Machine Learning Algorithms
Published in Sensors (Basel, Switzerland) (31-07-2018)“…In this study, land subsidence susceptibility was assessed for a study area in South Korea by using four machine learning models including Bayesian Logistic…”
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Flood Detection and Susceptibility Mapping Using Sentinel-1 Remote Sensing Data and a Machine Learning Approach: Hybrid Intelligence of Bagging Ensemble Based on K-Nearest Neighbor Classifier
Published in Remote sensing (Basel, Switzerland) (01-01-2020)“…Mapping flood-prone areas is a key activity in flood disaster management. In this paper, we propose a new flood susceptibility mapping technique. We employ new…”
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A GIS-based groundwater pollution potential using DRASTIC, modified DRASTIC, and bivariate statistical models
Published in Environmental science and pollution research international (01-09-2021)“…The objective of the current study is groundwater vulnerability assessment using DRASTIC, modified DRASTIC, and three statistical bivariate models (frequency…”
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Flood Spatial Modeling in Northern Iran Using Remote Sensing and GIS: A Comparison between Evidential Belief Functions and Its Ensemble with a Multivariate Logistic Regression Model
Published in Remote sensing (Basel, Switzerland) (01-07-2019)“…Floods are some of the most dangerous and most frequent natural disasters occurring in the northern region of Iran. Flooding in this area frequently leads to…”
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Landslide Susceptibility Mapping Using Different GIS-Based Bivariate Models
Published in Water (Basel) (08-07-2019)“…Landslides are the most frequent phenomenon in the northern part of Iran, which cause considerable financial and life damages every year. One of the most…”
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New Hybrids of ANFIS with Several Optimization Algorithms for Flood Susceptibility Modeling
Published in Water (Basel) (01-09-2018)“…This study presents three new hybrid artificial intelligence optimization models—namely, adaptive neuro-fuzzy inference system (ANFIS) with cultural…”
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Optimization of an adaptive neuro-fuzzy inference system for groundwater potential mapping
Published in Hydrogeology journal (01-11-2019)“…The main goal of this study was to optimize an adaptive neuro-fuzzy inference system (ANFIS) using three meta-heuristic optimization algorithms—genetic…”
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River Water Salinity Prediction Using Hybrid Machine Learning Models
Published in Water (Basel) (01-10-2020)“…Electrical conductivity (EC), one of the most widely used indices for water quality assessment, has been applied to predict the salinity of the Babol-Rood…”
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