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Improved Maize Mapping Through Optimizing Spatio-Temporal Feature Selection

delete2026-02-13
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OA
AI
S
Shuangxi Miao
Y
Yuhan Jiang
J
Jing Yao
F
Fuqiang Shen
Z
Zhewei Zhang
Z
Zhongxiang Xie
X
Xuecao Li
H
Huiying Li
J
Jianxi Huang
DOI:10.1109/JSTARS.2026.3664709delete
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Abstract

Abstract

En 中文
Accurate and timely mapping of maize distribution is crucial for national food security and sustainable agricultural development. However, maize classification in diverse agricultural landscapes is often hindered by subjective thresholds and limited feature representativeness in time-series remote sensing data. To overcome these limitations, we introduce an optimized feature selection time-weighted dynamic time warping (OFS-TWDTW) method that integrates multidimensional feature selection from Sentinel-2 imagery. Our approach begins by constructing robust standard maize curves through phenological and morphological sample screening to ensure sample reliability. We then apply the Relief algorithm to evaluate feature importance, followed by separability analysis and autocorrelation removal to select an optimal set of discriminative phenological features, enhancing classification efficiency. Finally, we employ TWDTW with an adaptive minimum distance classification to eliminate reliance on subjective thresholds. By conducting extensive evaluation across three climatically diverse regions in China (Dezhou, Pingliang, and Nenjiang), OFS-TWDTW achieved overall accuracies of 95.36%, 93.62%, and 90.59%, respectively. Notably, it demonstrated superior robustness over the traditional NDVI-based baseline, particularly in resolving spectral confusion between maize and soybean in complex landscapes. This method reduces misclassification and omission errors, offering a scalable, high-accuracy solution for large-scale crop mapping with broader applicability to other crops.
Keywords:
Feature selection
maize mapping
phenology modeling
spectral feature
time-weighted dynamic time warping

Journal

IEEE Journal of Selected Topics in Applied Earth Observations and Remote Sensing cover
IEEE Journal of Selected Topics in Applied Earth Observations and Remote Sensing
IF:
5.3
Papers:
1.7K
Citations:
3.0W

Organization

Q
qingdao university of technology
Scholars:
2.0K
Papers: 693
Citations: 0
C
china agricultural university
Scholars:
5.1W
Papers: 3.0W
Citations: 43
S
Sichuan University
Scholars:
1.4W
Papers: 4.3K
Citations: 12.9W
S
southwest jiaotong university
Scholars:
9.6K
Papers: 3.3K
Citations: 0
C
chinese academy of sciences
Scholars:
56.7W
Papers: 45.0W
Citations: 704
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Cited Papers

Cited Papers

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err2023-08-01
err25
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errLi, Haijun; Song, Xiao-Peng; Hansen, Matthew C.; Becker-Reshef, Inbal; Adusei, Bernard; Pickering, Jeffrey; Wang, Li; Wang, Lei; Lin, Zhengyang; Zalles, Viviana; Potapov, Peter; V. Stehman, Stephen; Justice, Chris
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Early-season mapping of winter wheat in China based on Landsat and Sentinel images
err2020-11-25
err119
errOAAI
errDong, Jie; Fu, Yangyang; Wang, Jingjing; Tian, Haifeng; Fu, Shan; Niu, Zheng; Han, Wei; Zheng, Yi; Huang, Jianxi; Yuan, Wenping
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Mapping paddy rice agriculture in South and Southeast Asia using multi-temporal MODIS images
err2006-01-01
err682
PREAI
errXiao, XM; Boles, S; Frolking, S; Li, CS; Babu, JY; Salas, W; Moore, B
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Smallholder maize area and yield mapping at national scales with Google Earth Engine
err2019-07-01
err288
errOAAI
errJin, Zhenong; Azzari, George; You, Calum; Di Tommaso, Stefania; Aston, Stephen; Burke, Marshall; Lobell, David B.
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errShare
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A cost-effective and robust mapping method for diverse crop types using weakly supervised semantic segmentation with sparse point samples
err2024-12-01
err1
PREAI
errCai, Zhiwen; Xu, Baodong; Yu, Qiangyi; Zhang, Xinyu; Yang, Jingya; Wei, Haodong; Li, Shiqi; Song, Qian; Xiong, Hang; Wu, Hao; Wu, Wenbin; Shi, Zhihua; Hu, Qiong
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The critical role of extreme heat for maize production in the United States
err2013-03-03
err796
PREAI
errLobell, David B.; Hammer, Graeme L.; McLean, Greg; Messina, Carlos; Roberts, Michael J.; Schlenker, Wolfram
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