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基于计算机视觉和机器学习建模的可可树香气特征的空间变异性:封面摄影和高空间遥感应用。

Spatial Variability of Aroma Profiles of Cocoa Trees Obtained through Computer Vision and Machine Learning Modelling: A Cover Photography and High Spatial Remote Sensing Application.

机构信息

School of Agriculture and Food, Faculty of Veterinary and Agricultural Sciences, University of Melbourne, Melbourne, VIC 3010, Australia.

Department of Wine, Food and Molecular Biosciences, Faculty of Agriculture and Life Sciences, Lincoln University, Lincoln 7647, New Zealand.

出版信息

Sensors (Basel). 2019 Jul 11;19(14):3054. doi: 10.3390/s19143054.

Abstract

Cocoa is an important commodity crop, not only to produce chocolate, one of the most complex products from the sensory perspective, but one that commonly grows in developing countries close to the tropics. This paper presents novel techniques applied using cover photography and a novel computer application (VitiCanopy) to assess the canopy architecture of cocoa trees in a commercial plantation in Queensland, Australia. From the cocoa trees monitored, pod samples were collected, fermented, dried, and ground to obtain the aroma profile per tree using gas chromatography. The canopy architecture data were used as inputs in an artificial neural network (ANN) algorithm, with the aroma profile, considering six main aromas, as targets. The ANN model rendered high accuracy (correlation coefficient (R) = 0.82; mean squared error (MSE) = 0.09) with no overfitting. The model was then applied to an aerial image of the whole cocoa field studied to produce canopy vigor, and aroma profile maps up to the tree-by-tree scale. The tool developed could significantly aid the canopy management practices in cocoa trees, which have a direct effect on cocoa quality.

摘要

可可豆是一种重要的商品作物,不仅可以用来生产巧克力——这种从感官角度来看最复杂的产品之一,而且可可豆通常在热带附近的发展中国家种植。本文介绍了在澳大利亚昆士兰州的一个商业种植园中应用于评估可可树树冠结构的新技术,包括覆盖摄影和一种新型计算机应用程序(VitiCanopy)。从监测的可可树中,采集了豆荚样本,进行发酵、干燥和研磨,以获得每棵树的香气特征,使用气相色谱法进行分析。将树冠结构数据作为输入,使用人工神经网络(ANN)算法,以六个主要香气为目标,进行香气特征分析。该 ANN 模型具有很高的准确性(相关系数(R)=0.82;均方误差(MSE)=0.09),且没有过度拟合。然后,将该模型应用于研究中整个可可田的航空图像,以生成树冠活力和香气特征图,直至逐棵树的尺度。开发的工具可以极大地帮助可可树的树冠管理实践,这对可可质量有直接影响。

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