一个神经元卡车背板

S. Geva, J. Sitte, G. Willshire
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引用次数: 16

摘要

卡车后挡板已被用来证明神经网络的能力,以解决高度非线性的控制问题,这是不容易得到的解析技术。作者证明了这个问题的线性解是存在的,并且很容易找到这样的解。它展示了如何设计一个控制器来执行这项任务,以及如何用单个控制神经元实现它。控制神经元只需要两个输入变量和两个权值就能产生正确的转向信号。随机权重足以解决问题的概率非常高,以至于随机搜索非常成功。研究表明,单个神经元也足以解决看起来更困难的任务,即为一辆有两个拖车的卡车倒车,并且在网络复杂性上增加一点,也可以解决提供最小长度后备轨迹的问题
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A one neuron truck backer-upper
The truck backer-upper has been used to demonstrate the ability of neural networks to solve highly nonlinear control problems where the solution is not easily obtained by analytical techniques. The authors demonstrate that good linear solutions to this problem exist, and that it is very easy to find such solutions. It is shown how to design a controller to perform this task, and how it is implemented with a single control neuron. The control neuron requires only two input variables and two weights to produce correct steering signals. The probability that random weights are adequate to solve the problem is so high that a random search is highly successful. It is shown that a single neuron is also sufficient to solve the seemingly more difficult task of backing up a truck with two trailers, and that with small addition in network complexity the problem of providing minimum length backup trajectories can be solved too.<>
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