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Combining Stereo and Time-of-Flight Images with Application to Automatic Plant Phenotyping

机译:将立体声和飞行时间图像与应用应用于自动植物表型

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This paper shows how stereo and Time-of-Flight (ToF) images can be combined to estimate dense depth maps in order to automate plant phenotyping. We focus on some challenging plant images captured in a glasshouse environment, and show that even the state-of-the-art stereo methods produce unsatisfactory results. By developing a geometric approach which transforms depth information in a ToF image to a localised search range for dense stereo, a global optimisation strategy is adopted for producing smooth and discontinuity-preserving results. Since pixel-by-pixel depth data are unavailable for our images and many other applications, a quantitative method accounting for the surface smoothness and the edge sharpness to evaluate estimation results is proposed. We compare our method with and without ToF against other state-of-the-art stereo methods, and demonstrate that combining stereo and ToF images gives superior results.
机译:本文显示了立体声和飞行时间(TOF)图像可以组合以估计密集深度图以自动化植物表型。我们专注于在玻璃环境中捕获的一些具有挑战性的植物形象,表明即使是最先进的立体声方法也会产生不令人满意的结果。通过开发一种几何方法,该方法将TOF图像中的深度信息转换为密集立体声的局部搜索范围,采用了全局优化策略来生产平滑和不连续性保存结果。由于我们的图像和许多其他应用不可用的像素 - 逐像素深度数据,所提出了用于评估估计结果的表面平滑度和边缘清晰度的定量方法。我们将我们的方法与其他最先进的立体声方法进行比较,并证明组合立体声和TOF图像提供了卓越的结果。

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