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A Cost-Effective Automatic 3D Reconstruction Pipeline for Plants Using Multi-view Images

机译:用于使用多视图图像的植物的经济高效的自动三维重建管道

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Plant phenotyping involves the measurement, ideally objectively, of characteristics or traits. Traditionally, this is either limited to tedious and sparse manual measurements, often acquired destructively, or coarse image-based 2D measurements. 3D sensing technologies (3D laser scanning, structured light and digital photography) are increasingly incorporated into mass produced consumer goods and have the potential to automate the process, providing a cost-effective alternative to current commercial phenotyping platforms. We evaluate the performance, cost and practicability for plant phenotyping and present a 3D reconstruction method from multi-view images acquired with a domestic quality camera. This method consists of the following steps: (i) image acquisition using a digital camera and turntable; (ii) extraction of local invariant features and matching from overlapping image pairs; (iii) estimation of camera parameters and pose based on Structure from Motion(SFM); and (iv) employment of a patch based multi-view stereo technique to implement a dense 3D point cloud. We conclude that the proposed 3D reconstruction is a promising generalized technique for the non-destructive phenotyping of various plants during their whole growth cycles.
机译:植物表型涉及测量,理想地客观地,特征或特征。传统上,这是限于繁琐和稀疏的手动测量,通常被破坏性地获取或基于粗略的图像的2D测量。 3D传感技术(3D激光扫描,结构光和数码摄影)越来越多地纳入大规模生产的消费品,并有可能自动化该过程,为当前的商业表型平台提供经济效益的替代方案。我们评估植物表型的性能,成本和实用性,并从国内优质相机获取的多视图图像中提出3D重建方法。该方法包括以下步骤:(i)使用数码相机和转盘的图像采集; (ii)提取局部不变特征,并从重叠图像对匹配; (iii)基于运动(SFM)的结构估计相机参数和姿势; (iv)就业基于补丁的多视图立体技术来实现密集的3D点云。我们得出结论,所提出的3D重建是在其整个生长循环期间各种植物的非破坏性表型的有前途的通用技术。

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