Please use this identifier to cite or link to this item: http://10.9.150.37:8080/dspace//handle/atmiyauni/929
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dc.contributor.authorDesai, Nirav-
dc.contributor.authorShukla, Parag-
dc.date.accessioned2023-05-11T11:09:24Z-
dc.date.available2023-05-11T11:09:24Z-
dc.date.issued2022-07-07-
dc.identifier.citationDesai, N., & Shukla, P. (2022). Accurate Identification of complex Land use and Land Cover Features using IRS (LISS III) Multispectral Image. Journal of Optoelectronics Laser, 41(7), 660–668. http://gdzjg.org/index.php/JOL/article/view/769en_US
dc.identifier.urihttp://10.9.150.37:8080/dspace//handle/atmiyauni/929-
dc.description.abstractLand Use and Land Cover (LULC) is an assortment of activities executed by humans on to the land. The present study was carried out to evaluate supervised classification mechanisms for classification complex Land use and Land cover features using India Remote Sensing System-IRS (Linear Imaging Self-Scanning Sensor 3- LISS III) multispectral data. It showed that Artificial neural networks (ANN) fared better across all the land use and land cover classes with an overall accuracy of 88%. It also revealed that Maximum Likelihood (ML) and Support Vector Machine (SVM) classifier is prone to miss classification of pixels in one or more classes. Outcomes of the present study are comforting the competence of IRS (LISS III) multispectral data for the accurate mapping of complex land use and land cover features. Additionally, the ability of an ANN classifier in the classification of complex features using multispectral data was re-established in the present study.en_US
dc.language.isoenen_US
dc.publisherJournal of Optoelectronics Laseren_US
dc.subjectLand use and land coveren_US
dc.subjectMultispectral satellite imageryen_US
dc.subjectArtificial neural networks (ANN)en_US
dc.subjectSupport vector machine (SVM)en_US
dc.subjectMaximum likelihood (ML)en_US
dc.titleAccurate Identification of complex Land use and Land Cover Features using IRS (LISS III) Multispectral Imageen_US
dc.typeArticleen_US
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