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首页> 外文期刊>Soil & Tillage Research >Optimum three-point linkage set up for improving the quality of soil spectra and the accuracy of soil phosphorus measured using an on-line visible and near infrared sensor
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Optimum three-point linkage set up for improving the quality of soil spectra and the accuracy of soil phosphorus measured using an on-line visible and near infrared sensor

机译:最佳的三点联动装置,用于提高土壤光谱质量和使用在线可见和近红外传感器测量的土壤磷的准确性

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On-line measurement of soil properties using the visible (Vis) and near infrared (NIR) spectroscopy is sensitive to soil-to-sensor distance (D) and angle (l) variations, which have prevented the successful development of on-line soil sensors so far. This study was undertaken to minimise these variations through optimising the three-point linkage of the tractor to improve the quality of soil spectra and the accuracy of plant available phosphorus (P-avl) measured with an on-line soil sensor. The sensor consisted of a tine, to the back of which an optical probe was attached to acquire soil spectra in diffuse reflectance mode from the bottom of the trench opened by the tine. A mobile, fibre-type, Vis-NIR spectrophotometer (Zeiss Corona 45 visnir fibre, Germany), with a measurement range of 306.5-1710.9nm was used. Five lengths of the third point link (L) of the tractor of 545, 550, 555, 560 and 565mm were selected to evaluate the quality of spectra collected on-line at 0.15m tine depth. The on-line measured spectra were corrected to remove the effect of D and l. The correction was evaluated by estimating the accuracy of predicting P-avl using on-line measured spectra and a previously developed P-avl calibration model. Results showed that the best quality of spectra measured on-line was obtained for L of 555mm, at which D and l vanished. This finding was supported by the maximum value of average maximum reflectance (AMR) of 75.7% obtained and by 100% successfully collected spectra. The worst quality of spectra was obtained at L of 545mm, with the largest D of 6mm and the largest l of 0.6p. Values of L of 560 and 565mm led to a decrease in the AMR (43.3 and 33.2%, respectively), while recording 100% successful spectra. Correction of on-line measured spectra led to clear improvements in the accuracy of on-line measured P-avl. A lower root mean square error (RMSE) of 1.07mg 100gp# and higher ratio of prediction deviations (RPD) of 1.42 were obtained with corrected spectra as compared to uncorrected spectra (RMSE=1.15 and RPD=1.39). In addition, the correction of spectra resulted in an increase in the degree of similarity between laboratory and on-line measured P-avl maps by 29.6%. These results suggest the need for optimising the tractor hydraulic three-point linkage set up, and for spectra correction in order to improve the accuracy of on-line measured soil properties.
机译:使用可见(Vis)和近红外(NIR)光谱在线测量土壤特性对土壤到传感器的距离(D)和角度(l)变化很敏感,这阻碍了在线土壤的成功开发到目前为止。通过优化拖拉机的三点连接以改善土壤光谱的质量以及使用在线土壤传感器测量的植物有效磷(P-avl)的准确性,进行了这项研究,以将这些变化最小化。该传感器由一个尖齿组成,在其背面连接有一个光学探针,以从该尖齿打开的沟槽底部以漫反射模式获取土壤光谱。使用可移动的纤维型Vis-NIR分光光度计(Zeiss Corona 45 visnir fibre,德国),测量范围为306.5-1710.9nm。选择了545、550、555、560和565mm拖拉机的第三点链接(L)的五个长度,以评估在0.15m齿深处在线收集的光谱的质量。校正在线测量光谱以消除D和l的影响。通过使用在线测量光谱和先前开发的P-avl校准模型估算P-avl的准确性来评估校正。结果表明,对于555mm的L,在D和l消失的情况下,可以获得在线测量的最佳光谱质量。获得的75.7%的平均最大反射率(AMR)的最大值和100%成功收集的光谱为这一发现提供了支持。在545mm的L处获得最差的光谱质量,最大的D为6mm,最大的l为0.6p。 L值560和565mm导致AMR降低(分别为43.3和33.2%),同时记录了100%成功的光谱。在线测量光谱的校正导致在线测量P-avl准确性的明显提高。与未校正的光谱(RMSE = 1.15和RPD = 1.39)相比,校正后的光谱具有更低的均方根误差(RMSE)1.07mg 100gp#和较高的预测偏差比(RPD)为1.42。另外,光谱的校正导致实验室和在线测量的P-avl图之间的相似度增加了29.6%。这些结果表明需要优化拖拉机液压三点联动装置,并进行光谱校正,以提高在线测量的土壤特性的准确性。

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