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Going Further with Point Pair Features

机译:点对功能更进一步

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Point Pair Features is a widely used method to detect 3D objects in point clouds, however they are prone to fail in presence of sensor noise and background clutter. We introduce novel sampling and voting schemes that significantly reduces the influence of clutter and sensor noise. Our experiments show that with our improvements, PPFs become competitive against state-of-the-art methods as it outperforms them on several objects from challenging benchmarks, at a low computational cost.
机译:点对特征是一种广泛使用的检测点云中3D对象的方法,但是,在存在传感器噪声和背景杂波的情况下,它们很容易失败。我们介绍了新颖的采样和投票方案,可显着减少混乱和传感器噪声的影响。我们的实验表明,通过我们的改进,PPF相对于最新方法具有竞争优势,因为它在具有挑战性的基准测试中的多个对象上的性能都优于后者,而且计算成本较低。

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