Dynamic-Headland-Aware Coverage Path Planning for Ground-Based Plant Protection Operations in Irregular Fields Using DQN-SHADE

Fixed full-boundary headlands create redundant non-working space in irregular fields, while working direction and swath offset jointly affect coverage quality and inter-swath turning cost. This study proposes a dynamic-headland-aware coverage path planning framework that allocates headland space according to swath endpoints and turning demand and generates parallel working swaths and Bézier U-turns for each direction–offset candidate. Field-specific empirical cumulative distribution function (ECDF)-midrank normalization converts turning distance, coverage error, and headland ratio into relative quality scores, and DQN-SHADE searches the resulting non-smooth discrete evaluation landscape. In geometric simulations on 24 actual field boundaries, DQN-SHADE achieved the lowest mean gap to the discrete reference optimum (0.0034) and the highest threshold success rate, SR5×10−3, of 80.83% among six stochastic optimizers under a common candidate-evaluation budget. Relative to fixed full-boundary headlands, dynamic headland allocation reduced the mean headland ratio from 13.30% to 7.52%, increased retained working area by 16,378.23 m2 per field, and maintained 98.16% mean coverage. The proposed framework improves field-space utilization while maintaining coverage quality and geometric feasibility under the evaluated simulation conditions.

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Publication Details

Journal
Agriculture
Published
2026-09-04
DOI
https://doi.org/10.3390/agriculture16171919
Primary Topic
Agricultural Engineering and Mechanization
Type
article
Field-Weighted Citation Impact
0.00

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article

Dynamic-Headland-Aware Coverage Path Planning for Ground-Based Plant Protection Operations in Irregular Fields Using DQN-SHADE

Xiaoyi Liu, Zhixin Yao, Tuo Sun, Yanlin Xin et al.
Agriculture
Agricultural Engineering and Mechanization
article

Dynamic-Headland-Aware Coverage Path Planning for Ground-Based Plant Protection Operations in Irregular Fields Using DQN-SHADE

Xiaoyi Liu, Zhixin Yao, Tuo Sun, Yanlin Xin, Taihong Zhang
article en

Abstract

Fixed full-boundary headlands create redundant non-working space in irregular fields, while working direction and swath offset jointly affect coverage quality and inter-swath turning cost. This study proposes a dynamic-headland-aware coverage path planning framework that allocates headland space according to swath endpoints and turning demand and generates parallel working swaths and Bézier U-turns for each direction–offset candidate. Field-specific empirical cumulative distribution function (ECDF)-midrank normalization converts turning distance, coverage error, and headland ratio into relative quality scores, and DQN-SHADE searches the resulting non-smooth discrete evaluation landscape. In geometric simulations on 24 actual field boundaries, DQN-SHADE achieved the lowest mean gap to the discrete reference optimum (0.0034) and the highest threshold success rate, SR5×10−3, of 80.83% among six stochastic optimizers under a common candidate-evaluation budget. Relative to fixed full-boundary headlands, dynamic headland allocation reduced the mean headland ratio from 13.30% to 7.52%, increased retained working area by 16,378.23 m2 per field, and maintained 98.16% mean coverage. The proposed framework improves field-space utilization while maintaining coverage quality and geometric feasibility under the evaluated simulation conditions.

AgricultureVol. 16(17)
Ministry of Education of the People's Republic of China (CN), Xinjiang Agricultural University (CN)
National Key Research and Development Program of China
Openalex Percentile: Top 19%
Agricultural Engineering and Mechanization
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Dynamic-Headland-Aware Coverage Path Planning for Ground-Based Plant Protection Operations in Irregular Fields Using DQN-SHADE — Xiaoyi Liu, Zhixin Yao, et al. · Agriculture (2026) | TGRS Research Map | TGRS