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Design and Calibration of Multi-camera Systems for 3D Computer Vision: Lessons Learnt from Two Case Studies

机译:用于3D计算机视觉的多相机系统的设计和校准:两个案例研究的教训

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This paper examines how the design of imaging hardware for multi-view 3D reconstruction affects the performance and complexity of the computer vision system as a whole. We examine two such systems: a grape vine pruning robot (a 4.5 year/20 man-year project), and a breast cancer screening device (a 10 year/25 man-year project). In both cases, mistakes in the initial imaging hardware design greatly increased the overall development time and cost by making the computer vision unnecessarily challenging, and by requiring the hardware to be redesigned and rebuilt. In this paper we analyse the mistakes made, and the successes experienced on subsequent hardware iterations. We summarise the lessons learned about platform design, camera setup, lighting, and calibration, so that this knowledge can help subsequent projects to succeed.
机译:本文研究了用于多视图3D重建的成像硬件设计如何影响整个计算机视觉系统的性能和复杂性。我们研究了两个这样的系统:葡萄修剪机器人(4.5年/ 20人年项目)和乳腺癌筛查设备(10年/ 25人年项目)。在这两种情况下,初始成像硬件设计中的错误都会使计算机视觉不必要地具有挑战性,并且需要重新设计和重建硬件,从而大大增加了总体开发时间和成本。在本文中,我们分析了所犯的错误以及后续硬件迭代中获得的成功。我们总结了有关平台设计,相机设置,照明和校准的经验教训,以便这些知识可以帮助后续项目成功。

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