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A Review On Recent Deep Learning-Based Semantic Segmentation For Urban Greenness Measurement, Doo Hong Lee, Hye Yeon Park, Joonwhoan Lee
A Review On Recent Deep Learning-Based Semantic Segmentation For Urban Greenness Measurement, Doo Hong Lee, Hye Yeon Park, Joonwhoan Lee
Landscape Architecture and Environmental Planning Student Research
Accurate urban green space (UGS) measurement has become crucial for landscape analysis. This paper reviews the recent technological breakthroughs in deep learning (DL)-based semantic segmentation, emphasizing efficient landscape analysis, and integrating greenness measurements. It explores quantitative greenness measures applied through semantic segmentation, categorized into the plan view- and the perspective view-based methods, like the Land Class Classification (LCC) with green objects and the Green View Index (GVI) based on street photographs. This review navigates from traditional to modern DL-based semantic segmentation models, illuminating the evolution of the urban greenness measures and segmentation tasks for advanced landscape analysis. It also presents …