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May 6, 2026Remote Sensing0 citationsOpen Access

A Multi-Dimensional Feature-Driven Method for Remote Sensing-Based Identification of Cereal and Oil Crops in the Tibetan Plateau

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ALAoxue LiHSHaijing ShiYLYangyang Liu

Key Points

  • This study aims to improve the identification of cereal and oil crops using advanced remote sensing techniques in the Tibetan Plateau.
  • Utilized Google Earth Engine to integrate Sentinel-2 data and field survey samples.
  • Evaluated three machine-learning classifiers: Random Forest, Support Vector Machine, and Gradient Boosted Trees.
  • Analyzed various feature sets to assess their impact on mapping accuracy.
  • Random Forest classifier achieved an overall accuracy of 84.77% and a kappa coefficient of 0.64.
  • Utilizing all feature bands significantly enhanced classification performance over SVM and GBT models.
  • Estimated cultivated areas: 581.52 km2 for highland barley, 295.39 km2 for wheat, and 386.81 km2 for rapeseed.

Abstract

Fragmented farmland and persistent cloud–snow interference in the high-altitude cold regions of the Qinghai–Tibet Plateau, coupled with unstable crop phenology, pose significant challenges for accurate cereal and oil crop identification using single-date imagery or low-dimensional features. This study focused on the agricultural areas of the Shigatse River Valley in the Qinghai–Tibet Plateau. Leveraging the Google Earth Engine (GEE) cloud computing platform, we integrated Sentinel-2 remote sensing data with field survey sampling data to extract the planting structures, distribution patterns, and cultivated areas of cereal and oil crops. Three machine-learning classifiers—Random Forest (RF), Support Vector Machine (SVM), and Gradient Boosted Trees (GBT)—were evaluated to investigate the influence of different feature sets and classifier combinations on mapping accuracy. The results indicated that when all feature bands were utilized, the RF classifier achieved the highest performance, with an overall accuracy of 84.77% and a kappa coefficient of 0.64, outperforming both the SVM and GBT models. The incorporation of phenological and topographic features further enhanced classification accuracy, providing a robust framework for identifying cereal and oil crops in high-altitude environments. Based on the optimal model estimation, the cultivated areas in 2021 were 581.52 km2 for highland barley, 295.39 km2 for wheat, and 386.81 km2 for rapeseed. Their spatial patterns closely aligned with the valley-terrace topography and local irrigation conditions. These findings offer novel insights and a reliable methodology for the rapid extraction of crop spatial information in regions with complex planting structures.

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Cite This Study

Li et al. (2026) studied this question.

synapsesocial.com/papers/69fadb0b03f892aec9b1e957https://doi.org/10.3390/rs18091391
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