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August 1, 2025Journal of Geophysical Research Solid Earth3 citationsOpen Access

Toward Back‐Projection Earthquake Rupture Imaging With Ocean Bottom Distributed Acoustic Sensing

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YXYuqing XieJAJean‐Paul AmpueroMEMartijn van den Ende

Key Points

  • High accuracy in localizing seismic sources is achieved, with resolution ranging from 2 to 5 km around the cable.
  • Analysis of small earthquakes demonstrated the effectiveness of back-projection using distributed acoustic sensing data.
  • The method utilizes pre-processing for improved accuracy and can image larger ruptures using simulated data.
  • Potential applications include enhancing early warning systems and improving fault mechanics understanding.

Abstract

Abstract Distributed acoustic sensing (DAS) along seafloor fiber optic cables offers high‐density, wide‐aperture, real‐time seismic data near subduction earthquakes, at a lower cost than conventional cabled ocean bottom seismic networks. It is thus a very promising approach to develop offshore observatories for hazard monitoring and mitigation and for fundamental research on earthquake processes. Here, we introduce a method for earthquake rupture imaging by back‐projection of DAS data, taking full advantage of the data characteristics to achieve high resolution and accuracy. To develop and test the method, we use DAS data recorded along submarine telecom cables in Chile. The approach includes pre‐processing steps, such as spatial integration and sediment time corrections, that greatly improve the back‐projection performance. Our analysis of recordings of small earthquakes that can be considered as point sources demonstrates high accuracy in localizing seismic sources, with a resolution ranging from 2 to 5 km within a “high‐resolution and high‐robustness zone” around the cable. We demonstrate the ability of the method to image large ruptures by applying it to simulated waveforms of a magnitude seven earthquake, constructed by superposition of multiple empirical Green's functions. We find that strong coda waves do not compromise the precise detection and location of sub‐sources. Our method could enhance early warning systems and offer high‐resolution observations crucial for studying fault mechanics.

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Cite This Study

Xie et al. (2025) studied this question.

synapsesocial.com/papers/68af494dad7bf08b1ead4d5dhttps://doi.org/10.1029/2025jb031483
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Advancing Earthquake Rupture Imaging through Ocean Bottom Distributed Acoustic Sensing Data2024
  2. 2Towards back-projection earthquake rupture imaging with ocean bottom distributed acoustic sensing data 2024
  3. 3Seismic Source Characterization with Distributed Acoustic Sensing2024
  4. 4High‐Resolution Imaging of a Distant M6 Intermediate‐Depth Earthquake Using Ocean‐Bottom DAS and Seismic Network2026
  5. 5A new formulation for source parameters estimation from DAS native strain data.2024