خرید و دانلود نسخه کامل کتاب Multi-Sensor and Multi-Temporal Remote Sensing: Specific Single Class Mapping
875,000 تومان قیمت اصلی 875,000 تومان بود.570,000 تومانقیمت فعلی 570,000 تومان است.
تعداد فروش: 68
Anil Kumar, Priyadarshi Upadhyay, Uttara Singh, 1032428325, 978-1-032-42832-1, 9781032428321, 978-1032428321, 978-1-032-44652-3, 978-1032446523, 9781032446523, 978-1-003-37321-6, 9781003373216, 978-1003373216, B0C1NZYC76
English | 2023 | PDF | 9 MB | 178 Pages
آنتونی رابینز میگه : من در 40 سالگی به جایی رسیدم که برای رسیدن بهش 82 سال زمان لازمه و این رو مدیون کتاب خواندن زیاد هستم.
This book elaborates fuzzy machine and deep learning models for single class mapping from multi-sensor, multi-temporal remote sensing images while handling mixed pixels and noise. It also covers the ways of pre-processing and spectral dimensionality reduction of temporal data. Further, it discusses the ‘individual sample as mean’ training approach to handle heterogeneity within a class. The appendix section of the book includes case studies such as mapping crop type, forest species, and stubble burnt paddy fields.
Key features:
- Focuses on use of multi-sensor, multi-temporal data while handling spectral overlap between classes
- Discusses range of fuzzy/deep learning models capable to extract specific single class and separates noise
- Describes pre-processing while using spectral, textural, CBSI indices, and back scatter coefficient/Radar Vegetation Index (RVI)
- Discusses the role of training data to handle the heterogeneity within a class
- Supports multi-sensor and multi-temporal data processing through in-house SMIC software
- Includes case studies and practical applications for single class mapping
This book is intended for graduate/postgraduate students, research scholars, and professionals working in environmental, geography, computer sciences, remote sensing, geoinformatics, forestry, agriculture, post-disaster, urban transition studies, and other related areas.

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