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Earth Planets and Space· 2026Q1

Fine-scale strain-rate mapping of Japan from integrated public–private GNSS stations

Miku Ohtate, Yusaku Ohta, Mako Ohzono, Hiroaki Takahashi

Short summary

Integrating public GEONET and private SoftBank GNSS data (Nov 2019-Dec 2023) reveals fine-scale interseismic strain-rate patterns in Japan, with a mean locality scale of ~21 km.

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Key points

  • Integrated public GEONET and private SoftBank GNSS data (3,606 stations) for nationwide strain-rate estimation.
  • Achieved a mean locality scale of ~21 km, refining deformation patterns compared to individual networks.
  • Identified clustered maximum shear strain rate patches within the Niigata–Kobe Tectonic Zone.
  • Revealed spatial correspondence between short-wavelength strain rates and seismicity/volcanic activity in specific regions of Japan.

AI-generated from the title and abstract; the full text is not read.

Abstract

We integrated observational data from the Global Navigation Satellite System (GNSS) Earth Observation NETwork System (GEONET) in Japan, operated by the Geospatial Information Authority of Japan, with over 3,300 proprietary reference stations operated by SoftBank Corp., and, using observations from November 2019 to December 2023, estimated a nationwide interseismic strain-rate field (with postseismic contributions in some regions). We adopted an established framework that fits locally linear horizontal-velocity models with roughness-controlled spatial regularization. The degree of spatial locality (i.e., the roughness control parameter) was optimized using an L-curve. After quality control, 3,606 stations remained. In the analysis that jointly used GEONET and SoftBank data, the mean (grid-averaged) locality scale, expressed by the distance-decay constant $$D$$ , was approximately 21 km (GEONET only: ~ 39 km; SoftBank only: ~ 25 km). We extracted the short-wavelength component as the residual of the original field after applying a 2D top-hat low-pass filter with a 50-km radius (the long-wavelength component). The maximum shear strain rate formed clustered patches within the Niigata–Kobe Tectonic Zone, while the short-wavelength maximum shear strain rate revealed a spatial correspondence between seismicity and the strain-rate field in northern Hokkaido and in the San-in Shear Zone, as well as a correspondence with the distribution of Quaternary and Active volcanoes along the Ou Backbone Range. Repeated random decimation tests (10% removal; n=100) indicated stable recovery of the principal features and quantified epistemic uncertainty. Rather than proposing a new estimator, our contribution lies in integrating public and private GNSS networks and validating their robustness, thereby refining Japan’s interseismic deformation patterns and strengthening the quantitative foundation for inland earthquake modeling.

The authors' abstract, as published at the source. Earth Planets and Space, 2026 · DOI ↗

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Field: Aerospace Engineering

Aerospace EngineeringEngineering