Urban Built-Up Area Extraction From Log- Transformed NPP-VIIRS Nighttime Light Composite Data

可见红外成像辐射计套件 环境科学 遥感 阈值 计算机科学 卫星 地理 人工智能 图像(数学) 工程类 航空航天工程
作者
Bo Yu,Mincong Tang,Qiusheng Wu,Chui‐Ping Yang,Shunqiang Deng,Kaifang Shi,Peng Chen,Jianping Wu,Zuoqi Chen
出处
期刊:IEEE Geoscience and Remote Sensing Letters [Institute of Electrical and Electronics Engineers]
卷期号:15 (8): 1279-1283 被引量:102
标识
DOI:10.1109/lgrs.2018.2830797
摘要

Accurate information on urban areas at regional and global scales is required for various socioeconomic and environmental applications. The nighttime light (NTL) composite data have proven to be an effective data source for extracting urban areas. Various urban mapping methods have been proposed in the literature to extract urban built-up areas from the Defense Meteorological Satellite Program's Operational Linescan System NTL data with a variable accuracy. However, most of the previous methods cannot be directly applied to the NTL data derived from the Suomi National Polar-orbiting Partnership Satellite with the Visible Infrared Imaging Radiometer Suite (NPP-VIIRS) sensor onboard. In this letter, we introduced a logarithmic transformation to preprocess the NPP-VIIRS NTL composite data. Then, four popular methods for urban built-up area extraction were tested using the original and log-transformed NTL data, respectively. The selected methods included the thresholding technique, Sobel-based edge detection, neighborhood statistics analysis, and watershed segmentation. The accuracy of the results was evaluated through validating the urban areas derived using each method against the referenced urban areas obtained from the National Land Cover Database for the U.S.. The results indicated that logarithmic transformation is an effective procedure for enhancing the difference between urban built-up areas and nonurban areas. The selected methods for urban built-up area extraction were found to perform better on the log-transformed NTL data than the original NTL data.
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