Mapping and quantifying land cover dynamics using dense remote sensing time series with the user-friendly pyNITA software
The study of land change within social-ecological systems (SES) is of great interest and increasingly makes use of remote sensing (RS) imagery to scale inferences up through space and time. However, spatial analysis using dense time series of RS data poses technical hurdles for non-expert users. To...
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Veröffentlicht in: | Environmental modelling & software : with environment data news 2021-11, Vol.145, p.105179, Article 105179 |
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Zusammenfassung: | The study of land change within social-ecological systems (SES) is of great interest and increasingly makes use of remote sensing (RS) imagery to scale inferences up through space and time. However, spatial analysis using dense time series of RS data poses technical hurdles for non-expert users. To broaden the community of SES researchers using RS, we present a simple tool for mapping land change at local to regional scales. The Python implementation of the Noise Insensitive Trajectory Algorithm (pyNITA) is accessed through a streamlined graphical user interface and requires minimal user parameterization to generate long-term trends and identify key dates of significant change (i.e., disturbance events) based on time series of Landsat or Sentinel-2 data. In this paper, we introduce the pyNITA software, explain the underlying algorithm, analyze key parameter sensitivities, and summarize methods and results from three SES case studies of land change.
•pyNITA software simplifies remote sensing time series analysis for non-experts.•Graphical user interface (GUI) streamlines process of fitting time series to data.•pyNITA outputs a variety of image products e.g., disturbance date and total change.•Users may click on any pixel of an output image to study underlying pixel history.•pyNITA software currently designed for Landsat and Sentinel-2 data. |
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ISSN: | 1364-8152 1873-6726 |
DOI: | 10.1016/j.envsoft.2021.105179 |