Zhang, Delong; Wei, Guanjun; Ma, Xueke; Wang, Yongxin (2025) A novel InSAR-based method for retrieving active layer thickness: Emphasizing soil pore ratio and unfrozen water content. Advances in Space Research, 75 (11). doi:10.1016/j.asr.2025.03.032
| Reference Type | Journal (article/letter/editorial) | ||
|---|---|---|---|
| Title | A novel InSAR-based method for retrieving active layer thickness: Emphasizing soil pore ratio and unfrozen water content | ||
| Journal | Advances in Space Research | ||
| Authors | Zhang, Delong | Author | |
| Wei, Guanjun | Author | ||
| Ma, Xueke | Author | ||
| Wang, Yongxin | Author | ||
| Year | 2025 (June) | Volume | 75 |
| Issue | 11 | ||
| Publisher | Elsevier BV | ||
| DOI | doi:10.1016/j.asr.2025.03.032Search in ResearchGate | ||
| Generate Citation Formats | |||
| Mindat Ref. ID | 18490254 | Long-form Identifier | mindat:1:5:18490254:5 |
| GUID | 0 | ||
| Full Reference | Zhang, Delong; Wei, Guanjun; Ma, Xueke; Wang, Yongxin (2025) A novel InSAR-based method for retrieving active layer thickness: Emphasizing soil pore ratio and unfrozen water content. Advances in Space Research, 75 (11). doi:10.1016/j.asr.2025.03.032 | ||
| Plain Text | Zhang, Delong; Wei, Guanjun; Ma, Xueke; Wang, Yongxin (2025) A novel InSAR-based method for retrieving active layer thickness: Emphasizing soil pore ratio and unfrozen water content. Advances in Space Research, 75 (11). doi:10.1016/j.asr.2025.03.032 | ||
| In | (2025, June) Advances in Space Research Vol. 75 (11). Elsevier BV | ||
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