High-precision 3D detection and reconstruction of grapes from laser range data for efficient phenotyping based on supervised learning

被引:40
作者
Mack, Jennifer [1 ]
Lenz, Christian [1 ]
Teutrine, Johannes [1 ]
Steinhage, Volker [1 ]
机构
[1] Univ Bonn, Dept Comp Sci 4, Friedrich Ebert Allee 144, D-53113 Bonn, Germany
关键词
Phenotyping bottleneck; Non-invasive phenotyping; Grapevine breeding; IMAGE-ANALYSIS; DESCRIPTORS;
D O I
10.1016/j.compag.2017.02.017
中图分类号
S [农业科学];
学科分类号
09 ;
摘要
In this contribution, we present an automated approach to the phenotyping of grape bunches. To do so, our method analyses high-resolution sensor data taken from grape bunches and generates complete 3D reconstructions of the observed grape bunches. We extend a previous work from our group to earlier development stages with mostly visible stem structure, using an enhanced pre-classification of the sensor data into specific categories, i.e., berries and stems, yielding high precision and recall rates for the reconstruction of the berries of more than 98% and 94%, respectively. The same quality of results can be achieved by training a classification model on one grape bunch and applying it to the other grape bunches. Furtherthore, we describe important observations concerning parameter initialization and optimization techniques resulting in a guideline for people working in the area. (C) 2017 Elsevier B.V. All rights reserved.
引用
收藏
页码:300 / 311
页数:12
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