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A CMOS Current-Mode Dynamic Programming Circuit

机译:CMOS电流模式动态编程电路

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Dynamic programming (DP) is a fundamental algorithm for complex optimization and decision-making in many engineering and biomedical systems. However, conventional DP computation based on digital implementation of the Bellman–Ford recursive algorithm suffers from the “curse of dimensionality” and substantial iteration delays which hinder utility in real-time applications. Previously, an ordinary differential equation system was proposed that transforms the sequential DP iteration into a continuous-time parallel computational network. Here, the network is realized using a CMOS current-mode analog circuit, which provides a powerful computational platform for power-efficient, compact, and high-speed solution of the Bellman formula. Test results for the fabricated DP optimization chip demonstrate a proof of concept for this solution approach. We also propose an error compensation scheme to minimize the errors attributed to nonideal current sources and device mismatch.
机译:动态编程(DP)是许多工程和生物医学系统中用于复杂优化和决策的基本算法。但是,基于Bellman-Ford递归算法的数字实现的常规DP计算遭受“维数诅咒”和大量迭代延迟的困扰,这阻碍了实时应用的实用性。以前,提出了一种普通的微分方程系统,该系统将顺序DP迭代转换为连续时间并行计算网络。在这里,该网络使用CMOS电流模式模拟电路实现,该电路为功能强大,紧凑,高速的Bellman公式解决方案提供了强大的计算平台。所制造的DP优化芯片的测试结果证明了该解决方案方法的概念验证。我们还提出了一种误差补偿方案,以最大程度地减少归因于非理想电流源和器件失配的误差。

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