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Sampling Animal Movement Paths Causes Turn Autocorrelation

机译:对动物运动路径进行采样会导致转弯自相关

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Animal movement models allow ecologists to study processes that operate over a wide range of scales. In order to study them, continuous movements of animals are translated into discrete data points, and then modelled as discrete models. This discretization can bias the representation of the movement path. This paper shows that discretizing correlated random movement paths creates a biased path by creating correlations between successive turning angles. The discretization also biases statistical tests for correlated random walks (CRW) and causes an overestimate in distances travelled; a correction is given for these biases. This effect suggests that there is a natural scale to CRWs, but that distance-discretized CRWs are in a sense, scale invariant. Perhaps a new null model for continuous movement paths is needed. Authors need to be aware of the biases caused by discretizing correlated random walks, and deal with them appropriately.
机译:动物运动模型使生态学家能够研究广泛范围内运作的过程。为了研究它们,将动物的连续运动转换为离散的数据点,然后将其建模为离散的模型。这种离散化可能会使运动路径的表示产生偏差。本文表明,离散化相关的随机运动路径通过在连续转弯角之间建立相关性而创建了一条偏置路径。离散化还会使相关随机游走(CRW)的统计测试产生偏差,并导致行进距离过高。对这些偏差进行了校正。这种效果表明CRW有一个自然的尺度,但是距离离散的CRW在某种意义上是尺度不变的。也许需要一个用于连续运动路径的新的空模型。作者需要意识到离散化相关随机游走所引起的偏差,并进行适当处理。

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