4.7 Article

Landslide mapping from multi-sensor data through improved change detection-based Markov random field

期刊

REMOTE SENSING OF ENVIRONMENT
卷 231, 期 -, 页码 -

出版社

ELSEVIER SCIENCE INC
DOI: 10.1016/j.rse.2019.111235

关键词

Landslide inventory mapping; Change detection; NDVI; Principal component analysis; Independent component analysis; Markov random field (MRF); Multi-sensor

资金

  1. National Key R&D Program of China [2017YFA0603100]
  2. National Natural Science Foundation of China [41671413]
  3. IPL project of the International Consortium on Landslides (ICL)
  4. Fundamental Research Funds for the Central Universities (Tongji University)
  5. Italian Civil Protection Department

向作者/读者索取更多资源

Accurate landslide inventory mapping is essential for quantitative hazard and risk assessment. Although multi temporal change detection techniques have contributed greatly to landslide inventory preparation, it is still challenging to generate quality change detection images (CDIs) for accurate landslide mapping. The recently proposed change detection-based Markov random field (CDMRF) provides an effective approach for rapid mapping of landslides with minimum user interventions. However, when CDI is generated by change vector analysis (CVA) alone, the CDMRF method may suffer from noise especially when the pre- and post-event remote sensing images are acquired under different atmospheric, illumination, and phenological conditions. This paper improved such CDMRF approach by integrating normalized difference vegetation index (NDVI), principal component analysis (PCA), and independent component analysis (ICA) generated CDIs with MRF for landslide inventory mapping from multi-sensor data. To justify the effectiveness and applicability, the improved methods were applied to map rainfall-, typhoon-, and earthquake-triggered landslides from the pre- and post-event satellite images acquired by very high resolution QuickBird, high resolution FORMOSAT-2, and moderate resolution Sentinel-2. Moreover, they were tested on pre-event Landsat-8 and post-event Sentinel-2 datasets, indicating that they are operational for landslide inventory mapping from combined multi-temporal and multi sensor data. The results demonstrate that the improved delta NDVI-, PCA-, and ICA-based approaches perform much better than CVA-based CDMRF in terms of completeness, correctness, Kappa coefficient, and F-measures. To the best of our knowledge, it is the first time that NDVI, PCA, and ICA are integrated with MRF for landslide inventory mapping from multi-sensor data. It is anticipated that this research can be a starting point for developing new change detection techniques that can readily generate quality CDI and for applying advanced machine learning algorithms (e.g., deep learning) to automatic detection of natural hazards from multi-sensor time series data.

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