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首页> 外文期刊>Journal of Eye Movement Research >A cost function to determine the optimum filter and parameters for stabilizing gaze data
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A cost function to determine the optimum filter and parameters for stabilizing gaze data

机译:用于确定稳定凝视数据的最佳滤波器和参数的成本函数

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Prior to delivery of data, eye tracker software may apply filtering to correct for noise. Although filtering produces much better precision of data, it may add to the time it takes for the reporting of gaze data to stabilise after a saccade due to the usage of a sliding window. The effect of various filters and parameter settings on accuracy, precision and filter related latency is examined. A cost function can be used to obtain the optimal parameters (filter, length of window, metric and threshold for removal of samples and removal percentage). It was found that for any of the FIR filters, the standard deviation of samples can be used to remove 95% of samples in the window so than an optimum combination of filter related latency and precision can be obtained. It was also confirmed that for unfiltered data, the shape of noise, signified by RMS/STD, is around √2 as expected for white noise, whereas lower RMS/STD values were observed for all filters.
机译:在数据传递之前,眼跟踪软件可能会应用过滤以纠正噪声。虽然过滤产生了更好的数据精度,但是由于使用滑动窗口,它可能会增加凝视数据的报告所需的时间来稳定扫视。检查各种过滤器和参数设置对精度,精度和滤波器相关延迟的影响。可以使用成本函数来获得最佳参数(过滤器,窗口长度,度量和阈值以去除样品和去除百分比)。发现对于任何FIR滤波器,样品的标准偏差可用于去除窗口中的95%的样品,以便可以获得滤波器相关潜伏和精度的最佳组合。还证实,对于未过滤的数据,由RMS / STD表示的噪声形状如预期的白噪声,而所有滤波器都观察到较低的RMS / STD值。

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