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A combined GP-State space method for efficient crowd mapping

机译:高效人群映射的组合GP状态空间方法

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Crowd sensing is an effective zero-cost method to map physical spatial fields by exploiting sensors already embedded in smartphones. The potentially huge amount of generated data and random measurement positions represent serious challenges to be addressed. In this paper we propose a combined Gaussian process (GP)-State space method for crowd mapping whose complexity and memory requirements for field representation do not depend on the number of data measured. The method is validated through an experimental campaign involving a high accuracy positioning system and a magnetic mobile sensor as data collector.
机译:人群传感是一种通过利用已经嵌入在智能手机的传感器来映射物理空间字段的有效零成本方法。潜在的巨大产生的数据和随机测量位置代表要解决的严重挑战。在本文中,我们提出了一种组合的高斯过程(GP) - 用于人群映射的空间方法,其复杂性和现场表示的内存要求不依赖于测量的数据数量。该方法通过涉及高精度定位系统和磁移动传感器作为数据收集器的实验活动来验证。

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