4.7 Article

Assessing farmland suitability for agricultural machinery in land consolidation schemes in hilly terrain in China: A machine learning approach

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FRONTIERS IN PLANT SCIENCE
卷 14, 期 -, 页码 -

出版社

FRONTIERS MEDIA SA
DOI: 10.3389/fpls.2023.1084886

关键词

farmland consolidation suitable for agricultural machinery; suitability assessment; potential of farmland productivity; machine learning approach (MLA); zoning; hilly terrain

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Using a machine learning approach, this study assesses the suitability of farmland for agricultural machinery in land consolidation schemes based on natural resource endowment, accessibility of agricultural machinery, socioeconomic level, and ecological limitations. Most farmland is suitable for agricultural machinery, but other factors such as slope, accessibility of tractor roads, depopulation, and ecological fragility affect the overall suitability. Implementation of these schemes can increase farmland productivity, but additional strategies like farmland ecosystem protection and development of machinery suitable for hilly areas are needed.
Identifying available farmland suitable for agricultural machinery is the most promising way of optimizing agricultural production and increasing agricultural mechanization. Farmland consolidation suitable for agricultural machinery (FCAM) is implemented as an effective tool for increasing sustainable production and mechanized agriculture. By using the machine learning approach, this study assesses the suitability of farmland for agricultural machinery in land consolidation schemes based on four parameters, i.e., natural resource endowment, accessibility of agricultural machinery, socioeconomic level, and ecological limitations. And based on suitability and potential improvement in farmland productivity, we classified land into four zones: the priority consolidation zone, the moderate consolidation zone, the comprehensive consolidation zone, and the reserve consolidation zone. The results showed that most of the farmland (76.41%) was either basically or moderately suitable for FCAM. Although slope was often an indicator that land was suitable for agricultural machinery, other factors, such as the inferior accessibility of tractor roads, continuous depopulation, and ecological fragility, contributed greatly to reducing the overall suitability of land for FCAM. Moreover, it was estimated that the potential productivity of farmland would be increased by 720.8 kg/ha if FCAM were implemented. Four zones constituted a useful basis for determining the implementation sequence and differentiating strategies for FCAM schemes. Consequently, this zoning has been an effective solution for implementing FCAM schemes. However, the successful implementation of FCAM schemes, and the achievement a modern and sustainable agriculture system, will require some additional strategies, such as strengthening farmland ecosystem protection and promoting R&D into agricultural machinery suitable for hilly terrain, as well as more financial support.

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