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Your search keyword '"Seyed Amir Naghibi"' showing total 39 results

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39 results on '"Seyed Amir Naghibi"'

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1. Development of novel hybridized models for urban flood susceptibility mapping

2. Optimal Landfill Site Selection for Solid Waste of Three Municipalities Based on Boolean and Fuzzy Methods: A Case Study in Kermanshah Province, Iran

3. Assessment of the effects of training data selection on the landslide susceptibility mapping: a comparison between support vector machine (SVM), logistic regression (LR) and artificial neural networks (ANN)

4. GIS-based Groundwater Spring Potential Mapping Using Data Mining Boosted Regression Tree and Probabilistic Frequency Ratio Models in Iran

5. Application of Advanced Machine Learning Algorithms to Assess Groundwater Potential Using Remote Sensing-Derived Data

6. A Comparative Assessment of Random Forest and k-Nearest Neighbor Classifiers for Gully Erosion Susceptibility Mapping

7. Optimized Conditioning Factors Using Machine Learning Techniques for Groundwater Potential Mapping

8. Groundwater Augmentation through the Site Selection of Floodwater Spreading Using a Data Mining Approach (Case study: Mashhad Plain, Iran)

9. Development of novel hybridized models for urban flood susceptibility mapping

10. APG: A novel python-based ArcGIS toolbox to generate absence-datasets for geospatial studies

11. Water Resources Management Through Flood Spreading Project Suitability Mapping Using Frequency Ratio, k-nearest Neighbours, and Random Forest Algorithms

12. Inverse method using boosted regression tree and k-nearest neighbor to quantify effects of point and non-point source nitrate pollution in groundwater

13. Development of a novel hybrid multi-boosting neural network model for spatial prediction of urban flood

15. Human-induced arsenic pollution modeling in surface waters - An integrated approach using machine learning algorithms and environmental factors

16. Application of Advanced Machine Learning Algorithms to Assess Groundwater Potential Using Remote Sensing-Derived Data

17. Groundwater spring potential modelling: Comprising the capability and robustness of three different modeling approaches

18. Groundwater potential mapping using a novel data-mining ensemble model

19. Assessment of the effects of training data selection on the landslide susceptibility mapping: a comparison between support vector machine (SVM), logistic regression (LR) and artificial neural networks (ANN)

20. A comparative assessment of GIS-based data mining models and a novel ensemble model in groundwater well potential mapping

21. Application of Support Vector Machine, Random Forest, and Genetic Algorithm Optimized Random Forest Models in Groundwater Potential Mapping

22. A comparative study of landslide susceptibility maps produced using support vector machine with different kernel functions and entropy data mining models in China

23. Prioritization of landslide conditioning factors and its spatial modeling in Shangnan County, China using GIS-based data mining algorithms

24. A comparison between ten advanced and soft computing models for groundwater qanat potential assessment in Iran using R and GIS

25. Machine learning approaches for spatial modeling of agricultural droughts in the south-east region of Queensland Australia

26. Application of rotation forest with decision trees as base classifier and a novel ensemble model in spatial modeling of groundwater potential

27. Land subsidence modelling using tree-based machine learning algorithms

28. Evaluation of four supervised learning methods for groundwater spring potential mapping in Khalkhal region (Iran) using GIS-based features

29. Application of extreme gradient boosting and parallel random forest algorithms for assessing groundwater spring potential using DEM-derived factors

30. Groundwater augmentation through the site selection of floodwater spreading using a data mining approach (case study: Mashhad Plain, Iran)

31. Assessment of a spatial multi-criteria evaluation to site selection underground dams in the Alborz Province, Iran

32. A Comparative Assessment Between Three Machine Learning Models and Their Performance Comparison by Bivariate and Multivariate Statistical Methods in Groundwater Potential Mapping

33. A comparative assessment between linear and quadratic discriminant analyses (LDA-QDA) with frequency ratio and weights-of-evidence models for forest fire susceptibility mapping in China

34. Groundwater potential mapping using C5.0, random forest, and multivariate adaptive regression spline models in GIS

35. Groundwater qanat potential mapping using frequency ratio and Shannon’s entropy models in the Moghan watershed, Iran

36. Assessment and comparison of combined bivariate and AHP models with logistic regression for landslide susceptibility mapping in the Chaharmahal-e-Bakhtiari Province, Iran

37. GIS-based landslide spatial modeling in Ganzhou City, China

38. Evaluation of some probability distribution functions for derivation of unit hydrograph in the Bar Watershed, Iran

39. GIS-based groundwater potential mapping using boosted regression tree, classification and regression tree, and random forest machine learning models in Iran

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