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◆ Sensors (Basel, Switzerland)2026-08-25

PCA-Guided Weakly Supervised Mapping of Hydroxyl- and Iron-Oxide-Related Spectral Anomalies Using Landsat 8 OLI.

Kaikai Pang, Yaxiaer Yalikun, Bowen Zhang, Fei Ling, Yilihamujiang Tuniyazi

原始摘要(英文原文)· Original abstract
Interpreting multispectral remote sensing data for hydrothermal alteration mapping remains challenging in complex mountainous metallogenic belts because dense pixel-level field labels are difficult to obtain and weak spectral responses are affected by lithological background, vegetation, snow/ice cover, and topographic shadow. This study proposes a principal component analysis (PCA)-guided weakly supervised workflow for mapping hydroxyl- and iron-oxide-related spectral anomalies in the Bulong-Maidan-Tuoyun gold-copper metallogenic belt, southwestern Tianshan, China, using Landsat 8 Operational Land Imager (OLI) imagery. PCA was used as a spectral prior to generate PCA-derived positive spectral anomaly samples for model training. A Residual-ECA Alteration Information Extraction (REA-AIE) model was developed to refine PCA-derived anomalies by learning local spectral-spatial features from multispectral image patches. Under the PCA-constrained random sample-level evaluation, REA-AIE achieved F1 scores of 95.90% and 97.09% for hydroxyl- and iron-oxide-related spectral anomalies, respectively; these values indicate agreement with PCA-derived pseudo-labels rather than spatially independent estimates of mapping performance. Petrography-constrained site-level assessment showed that REA-AIE-predicted spectral anomalies occurred within 90 m of 43 of the 53 altered sites, corresponding to a site-level recall of 81.13% and supporting their consistency with field-based geological evidence.
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PCA-Guided Weakly Supervised Mapping of Hydroxyl- and Iron-Oxide-Related Spectral Anomalies Using Landsat 8 OLI. — 科研速览 Science Skim