Lunar and Planetary Exploration Data Analysis Grp.
基本情報
- 所属
- 国立研究開発法人宇宙航空研究開発機構 宇宙科学研究所 研究開発員
- ORCID ID
https://orcid.org/0000-0002-9638-6926- J-GLOBAL ID
- 201701019513699984
- Researcher ID
- AAU-1566-2020
- researchmap会員ID
- B000274755
研究分野
1経歴
1-
2024年4月 - 現在
論文
24-
The Planetary Science Journal 2025年11月14日<jats:title>Abstract</jats:title> <jats:p> High-quality digital terrain models (DTMs) are essential for lunar polar missions, aiding mission planning and surface operations. The horizontal resolution and vertical accuracy of DTMs are generally limited by factors such as source image resolution, image noise, the precision of ground control points (GCPs), and data processing techniques. In this study, we produced advanced DTMs for the lunar south pole region by integrating seamless mosaics generated from multiple Lunar Reconnaissance Orbiter Camera Narrow Angle Camera image pairs captured under various illumination azimuths. To enhance accuracy and reduce artifacts, we employed bundle adjustment with hundreds of meticulously selected image-to-image tie points and precise GCPs, combined with an advanced multiview shape-from-shading technique. This technique, which utilizes multiple viewpoints to resolve topographic details with higher precision, significantly improves vertical accuracy and resolution. Our methodology achieves a spatial resolution of 1 m pixel <jats:sup>−1</jats:sup> and vertical precision of ±1.0 m, enabling clearer delineation of meter-scale lunar topographic features compared to previous models. These DTMs are expected to significantly support the Lunar Polar Exploration project and other forthcoming lunar exploration missions. </jats:p>
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Remote Sensing 2025年9月21日<jats:p>We present an automated and fully reproducible pipeline for restoring motion-smeared Mars Express SRC images of Phobos. A one-dimensional motion point spread function (PSF) is derived directly from SPICE geometry and microsecond-precision exposure timing, and Wiener deconvolution (SNR = 16 dB) is applied to recover image sharpness. Tested on 14 images from 4 orbits spanning slant distances of 52–292 km, exposures of 14–20 milliseconds, sampling of 0.47–2.7 m/pixel, and PSF lengths of 11–119 pixels, the method achieves up to 31.7 dB PSNR, 0.78 SSIM, and positive sharpness gains across all cases. The restored images reveal sub-meter surface features previously obscured by motion blur, with residual energy reduced relative to the acquisition model. The workflow relies solely on open data and open-source tools (ISIS, ALE/SpiceyPy, OpenCV), requires no star-field calibration, and generalizes to other motion-degraded planetary datasets, providing a fully transparent and reproducible solution for high-resolution planetary imaging.</jats:p>
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Journal of Evolving Space Activities 2023年
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Earth, Planets and Space 73(1) 2021年12月
MISC
5共同研究・競争的資金等の研究課題
2-
日本学術振興会 科学研究費助成事業 2023年4月 - 2026年3月
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日本学術振興会 科学研究費助成事業 2016年4月 - 2018年3月