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LEARNING AUTOMATON AND LOW-PASS FILTER HAVING A PASS BAND THAT WIDENS OVER TIME

机译:学习自动机和低通滤镜具有随着时间的流逝会通过的通带

摘要

A learning automaton can be trained to merge data from input data streams, optionally with different data rates, into a single output data stream. The learning automaton can learn over time from the input data streams. The input data streams can be low-pass filtered to suppress data having frequencies greater than a time-varying cutoff frequency. Initially, the cutoff frequency can be relatively low, so that the effective data rates of the input data streams are all equal. This can ensure that initially, high data-rate data does not overwhelm low data-rate data. As the learning automaton learns, an entropy of the learning automaton changes more slowly, and the cutoff frequency is increased over time. When the entropy of the learning automaton has stabilized, the training is completed, and the cutoff frequency can be large enough to pass all the input data streams, unfiltered, to the learning automaton.
机译:可以训练学习自动机以将来自输入数据流的数据(可选地以不同的数据速率)合并为单个输出数据流。学习自动机可以随着时间从输入数据流中学习。可以对输入数据流进行低通滤波,以抑制频率大于时变截止频率的数据。最初,截止频率可以较低,因此输入数据流的有效数据速率都相等。这样可以确保一开始,高数据速率数据不会淹没低数据速率数据。随着学习自动机的学习,学习自动机的熵变化更加缓慢,并且截止频率随时间增加。当学习自动机的熵已稳定时,训练完成,并且截止频率可以足够大,以将所有未经过滤的输入数据流传递给学习自动机。

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