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Buried Fiber-Optic Geolocalization with Distributed Acoustic Sensing

Khen Cohen, Natanel Nissan, Ofir Nissan, Ariel Lellouch

arXiv:2604.10331Published April 11, 20260 citations
  • physics.geo-ph
  • eess.IV
  • eess.SP
  • physics.app-ph
  • physics.optics
  • trajectory

Abstract

We present a scalable method for geolocalizing buried fiber-optic cables using Distributed Acoustic Sensing (DAS) and traffic-induced quasi-static seismic signals. Assuming access to one end of the fiber, the method fuses DAS measurements with vehicle trajectories obtained from either video tracking or vehicle-mounted GPS. The fiber geometry is estimated by minimizing the mismatch between the measured and physics-based synthetic strain-rate maps. The framework combines a matched-filter initialization with neural-network-based trajectory optimization, enabling robust convergence under realistic noise and trajectory-uncertainty conditions. Simulation and field experiments demonstrate sub-meter localization accuracy, often on the order of tens of centimeters, and strong agreement with manual calibration by tap-testing. This approach provides a practical tool for mapping poorly documented underground fiber infrastructure and for supporting urban sensing applications.

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