Multi-Sensor and Multi-Scale Remote Sensing Approach for Assessing Slope Instability along Transportation Corridors Using Satellites and Uncrewed Aircraft Systems

Author:

Zocchi Marta1ORCID,Kasaragod Anush Kumar2,Jenkins Abby3,Cook Chris3,Dobson Richard3,Oommen Thomas2ORCID,Van Huis Dana3,Taylor Beau4,Brooks Colin3ORCID,Marini Roberta1,Troiani Francesco1ORCID,Mazzanti Paolo15ORCID

Affiliation:

1. Department of Earth Sciences, Sapienza University of Rome, P.le Aldo Moro 5, 00185 Rome, Italy

2. Department of Geological and Mining Engineering and Sciences, Michigan Technological University, Houghton, MI 49931, USA

3. Michigan Tech Research Institute, Michigan Technological University, 3600 Green Ct, STE 100, Ann Arbor, MI 48105, USA

4. Colorado Department of Transportation, Denver, CO 80216, USA

5. NHAZCA S.r.l., Via Vittorio Bachelet, 12, 00185 Rome, Italy

Abstract

Rapid slope instabilities (i.e., rockfalls) involving highway networks in mountainous areas pose a threat to facilities, settlements and life, thus representing a challenge for asset management plans. To identify different morphological expressions of degradation processes that lead to rock mass destabilization, we combined satellite and uncrewed aircraft system (UAS)-based products over two study sites along the State Highway 133 sector near Paonia Reservoir, Colorado (USA). Along with a PS-InSAR analysis covering the 2017–2021 interval, a high-resolution dataset composed of optical, thermal and multi-spectral imagery was systematically acquired during two UAS surveys in September 2021 and June 2022. After a pre-processing step including georeferencing and orthorectification, the final products were processed through object-based multispectral classification and change detection analysis for highlighting moisture or lithological variations and for identifying areas more susceptible to deterioration and detachments at the small and micro-scale. The PS-InSAR analysis, on the other hand, provided multi-temporal information at the catchment scale and assisted in understanding the large-scale morpho-evolution of the displacements. This synergic combination offered a multiscale perspective of the superimposed imprints of denudation and mass-wasting processes occurring on the study site, leading to the detection of evidence and/or early precursors of rock collapses, and effectively supporting asset management maintenance practices.

Funder

Colorado Department of Transportation

Publisher

MDPI AG

Subject

General Earth and Planetary Sciences

Reference78 articles.

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3. (2023, March 20). Landslides 101|U.S. Geological Survey, Available online: https://www.usgs.gov/programs/landslide-hazards/landslides-101.

4. Rock Slopes Asset Management: Selecting the Optimal Three-Dimensional Remote Sensing Technology;Lato;Transp. Res. Rec.,2015

5. Arpin, B., and Arndt, B. (2016, January 11–14). Comparison of 2D and 3D rockfall modeling for rockfall mitigation design. Proceedings of the 67th Highway Geology Symposium, Highway Geology Symposium, Colorado Springs, CO, USA.

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