4.7 Article

Information theoretic evaluation of satellite soil moisture retrievals

期刊

REMOTE SENSING OF ENVIRONMENT
卷 204, 期 -, 页码 392-400

出版社

ELSEVIER SCIENCE INC
DOI: 10.1016/j.rse.2017.10.016

关键词

Soil moisture; Remote sensing; Information theory

资金

  1. NASA Applied Sciences Grant entitled Enhancing the Information Content and Utilization of SMAP products for Agricultural Applications [NNH15ZDA001N-SUSMAP]
  2. NASA [NNX13AQ21G]
  3. NASA [467098, NNX13AQ21G] Funding Source: Federal RePORTER

向作者/读者索取更多资源

Microwave radiometry has a long legacy of providing estimates of remotely sensed near surface soil moisture measurements over continental and global scales. A consistent assessment of the errors and uncertainties associated with these retrievals is important for their effective utilization in modeling, data assimilation and end use application environments. This article presents an evaluation of soil moisture retrieval products from AMSR-E, ASCAT, SMOS, AMSR2 and SMAP instruments using information theory-based metrics. These metrics rely on time series analysis of soil moisture retrievals for estimating the measurement error, level of randomness (entropy) and regularity (complexity) of the data. The results of the study indicate that the measurement errors in the remote sensing retrievals are significantly larger than that of the ground soil moisture measurements. The SMAP retrievals, on the other hand, were found to have reduced errors (comparable to those of in-situ datasets), particularly over areas with moderate vegetation. The SMAP retrievals also demonstrate high information content relative to other retrieval products, with higher levels of complexity and reduced entropy. Finally, a joint evaluation of the entropy and complexity of remotely sensed soil moisture products indicates that the information content of the AMSR-E, ASCAT, SMOS and AMSR2 retrievals is low, whereas SMAP retrievals show better performance. The use of information theoretic assessments is effective in quantifying the required levels of improvements needed in the remote sensing soil moisture retrievals to enhance their utility and information content.

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