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Classification Bayesian models of orientation identification with the known reference

机译:分类贝叶斯型号的定向识别与已知参考

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Humans may integrate the information of cues into target identification. We investigate how better the human brain identifies the orientation in the presence of the known reference. We first design a psychophysical experiment of orientation identification. The subjects estimate the orientation of a line which is intersected by a known oriented reference line. Four subjects performed the identification task. Estimates of the orientations exhibit the systematic increasing biases with the angle between the target line and the reference line increasing, and then the estimation precision of tilt orientations is obviously improved. We expound the identification process by Bayesian inference theory. We assume that the subjects first classify the stimuli and subsequently identify them. Then we put forward two classification Bayesian identification models: Directly Identifying Classification Bayesian Model (DCB) and Indirectly Identifying Classification Bayesian Model (ICB), in which the Equal-precision and Variable-precision encoding are considered. We compare our models' predictions to the experimental data. The results show that the variable-precision indirectly identifying classification Bayesian model fit better to the performance.
机译:人类可以将线索的信息集成到目标识别中。我们调查人脑在已知参考存在下识别方向的效果如何。我们首先设计了一个方向鉴定的心理物理实验。受试者估计由已知取向参考线相交的线的方向。四个科目执行了识别任务。取向的估计表现出系统增加的偏差,目标线与参考线之间的角度增加,然后倾斜取向的估计精度明显提高。我们阐述了贝叶斯推理理论的识别过程。我们假设受试者首先对刺激进行分类并随后识别它们。然后我们提出了两种分类贝叶斯识别模型:直接识别分类贝叶斯模型(DCB)和间接识别分类贝叶斯模型(ICB),其中考虑了相等精度和可变精度编码。我们将模型对实验数据的预测进行比较。结果表明,可变精度间接识别分类贝叶斯模型适合性能。

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