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首页> 外文期刊>International Journal of Environmental Research and Public Health >Optimization of Sample Points for Monitoring Arable Land Quality by Simulated Annealing while Considering Spatial Variations
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Optimization of Sample Points for Monitoring Arable Land Quality by Simulated Annealing while Considering Spatial Variations

机译:考虑空间变化的模拟退火优化采样点监测耕地质量

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With China’s rapid economic development, the reduction in arable land has emerged as one of the most prominent problems in the nation. The long-term dynamic monitoring of arable land quality is important for protecting arable land resources. An efficient practice is to select optimal sample points while obtaining accurate predictions. To this end, the selection of effective points from a dense set of soil sample points is an urgent problem. In this study, data were collected from Donghai County, Jiangsu Province, China. The number and layout of soil sample points are optimized by considering the spatial variations in soil properties and by using an improved simulated annealing (SA) algorithm. The conclusions are as follows: (1) Optimization results in the retention of more sample points in the moderate- and high-variation partitions of the study area; (2) The number of optimal sample points obtained with the improved SA algorithm is markedly reduced, while the accuracy of the predicted soil properties is improved by approximately 5% compared with the raw data; (3) With regard to the monitoring of arable land quality, a dense distribution of sample points is needed to monitor the granularity.
机译:随着中国经济的快速发展,耕地减少已成为全国最突出的问题之一。长期动态监测耕地质量对保护耕地资源至关重要。一种有效的做法是在获得准确预测的同时选择最佳采样点。为此,从一组密集的土壤采样点中选择有效点是一个紧迫的问题。在这项研究中,数据来自中国江苏省东海县。通过考虑土壤特性的空间变化并使用改进的模拟退火(SA)算法来优化土壤采样点的数量和布局。结论如下:(1)优化导致在研究区域的中,高变化分区中保留了更多的采样点; (2)改进后的SA算法获得的最优采样点数量明显减少,与原始数据相比,预测的土壤特性精度提高了约5%; (3)关于耕地质量的监测,需要采样点的密集分布来监测粒度。

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