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Institution

University of Gour Banga

EducationIngrāj Bāzār, India
About: University of Gour Banga is a education organization based out in Ingrāj Bāzār, India. It is known for research contribution in the topics: Wetland & Landslide. The organization has 230 authors who have published 628 publications receiving 7390 citations. The organization is also known as: UGB & University of Gour Banga.


Papers
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Journal ArticleDOI
TL;DR: The study is thought to be a useful supplement to the regulatory bodies since it showed the pollution source control can attenuate the air quality.

814 citations

Journal ArticleDOI
TL;DR: This study suggests targeted interventions to create a positive space for study among students from the vulnerable section of society and strategies are urgently needed to build a resilient education system in the state.

455 citations

Journal ArticleDOI
TL;DR: The RF algorithm is the best machine-learning LULC classifier, among the six examined algorithms although it is necessary to further test the RF algorithm in different morphoclimatic conditions in the future.
Abstract: Rapid and uncontrolled population growth along with economic and industrial development, especially in developing countries during the late twentieth and early twenty-first centuries, have increased the rate of land-use/land-cover (LULC) change many times. Since quantitative assessment of changes in LULC is one of the most efficient means to understand and manage the land transformation, there is a need to examine the accuracy of different algorithms for LULC mapping in order to identify the best classifier for further applications of earth observations. In this article, six machine-learning algorithms, namely random forest (RF), support vector machine (SVM), artificial neural network (ANN), fuzzy adaptive resonance theory-supervised predictive mapping (Fuzzy ARTMAP), spectral angle mapper (SAM) and Mahalanobis distance (MD) were examined. Accuracy assessment was performed by using Kappa coefficient, receiver operational curve (RoC), index-based validation and root mean square error (RMSE). Results of Kappa coefficient show that all the classifiers have a similar accuracy level with minor variation, but the RF algorithm has the highest accuracy of 0.89 and the MD algorithm (parametric classifier) has the least accuracy of 0.82. In addition, the index-based LULC and visual cross-validation show that the RF algorithm (correlations between RF and normalised differentiation water index, normalised differentiation vegetation index and normalised differentiation built-up index are 0.96, 0.99 and 1, respectively, at 0.05 level of significance) has the highest accuracy level in comparison to the other classifiers adopted. Findings from the literature also proved that ANN and RF algorithms are the best LULC classifiers, although a non-parametric classifier like SAM (Kappa coefficient 0.84; area under curve (AUC) 0.85) has a better and consistent accuracy level than the other machine-learning algorithms. Finally, this review concludes that the RF algorithm is the best machine-learning LULC classifier, among the six examined algorithms although it is necessary to further test the RF algorithm in different morphoclimatic conditions in the future.

383 citations

Journal ArticleDOI
TL;DR: In this article, the impact of land use land cover (LULC) on land surface temperature (LST) in English Bazar Municipality of Malda District using multi spectral and multi temporal satellite data.

339 citations

Journal ArticleDOI
TL;DR: Biosolids can be a promising soil ameliorating supplement to increase plant productivity, reduce bioavailability of heavy metals and also lead to effective waste management.

262 citations


Authors

Showing all 237 results

NameH-indexPapersCitations
Narendra Nath Ghosh281483957
Swades Pal251112315
Abhijit Bandyopadhyay241061786
Paramartha Dutta221892100
Sandeep Kumar Dash22411260
Sovan Samanta20701641
Sougata Pal20601033
Shyamapada Mandal20772223
Sunil Saha1859904
Sanatan Das18971207
Biplab Giri1640884
Abhijit Sarkar16471022
Swapan Talukdar1656814
Shubhamoy Chowdhury1558628
Arijit Das1451502
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Performance
Metrics
No. of papers from the Institution in previous years
YearPapers
20234
202216
2021187
2020133
201987
201880