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Citation

Ouyang, Linke; Wu, Caiyan; Li, Junxiang; Liu, Yuhan; Wang, Meng; Han, Ji; Song, Conghe; Yu, Qian; & Haase, Dagmar (2022). Mapping Impervious Surface Using Phenology-Integrated and Fisher Transformed Linear Spectral Mixture Analysis. Remote Sensing, 14(7), 1673.

Abstract

The impervious surface area (ISA) is a key indicator of urbanization, which brings out serious adverse environmental and ecological consequences. The ISA is often estimated from remotely sensed data via spectral mixture analysis (SMA). However, accurate extraction of ISA using SMA is compromised by two major factors, endmember spectral variability and plant phenology. This study developed a novel approach that incorporates phenology with Fisher transformation into a conventional linear spectral mixture analysis (PF-LSMA) to address these challenges. Four endmembers, high albedo, low albedo, evergreen vegetation, and seasonally exposed soil (H-L-EV-SS) were identified for PF-LSMA, considering the phenological characteristic of Shanghai. Our study demonstrated that the PF-LSMA effectively reduced the within-endmember spectral signature variation and accounted for the endmember phenology effects, and thus well-discriminated impervious surface from seasonally exposed soil, enhancing the accuracy of ISA extraction. The ISA fraction map produced by PF-LSMA (RMSE = 0.1112) outperforms the single-date image Fisher transformed unmixing method (F-LSMA) (RMSE = 0.1327) and the other existing major global ISA products. The PF-LSMA was implemented on the Google Earth Engine platform and thus can be easily adapted to extract ISA in other places with similar climate conditions.

URL

http://dx.doi.org/10.3390/rs14071673

Reference Type

Journal Article

Year Published

2022

Journal Title

Remote Sensing

Author(s)

Ouyang, Linke
Wu, Caiyan
Li, Junxiang
Liu, Yuhan
Wang, Meng
Han, Ji
Song, Conghe
Yu, Qian
Haase, Dagmar

Article Type

Regular

Data Set/Study

Google Earth

Continent/Country

China

ORCiD

Song, C - 0000-0002-4099-4906