论文标题

关于人工生命和物理基质中的新兴计算

On Artificial Life and Emergent Computation in Physical Substrates

论文作者

Heiney, Kristine, Tufte, Gunnar, Nichele, Stefano

论文摘要

在生活系统中,我们经常看到计算所需的成分的出现 - 信息传输,存储和修改的能力 - 乞求我们如何在非常规计算应用中利用或模仿此类生物系统的问题。在计算技术的发展中,我们可以从人工生命中获得什么?人造生命为我们提供了强大的工具,可以理解生物系统的动态行为并在人造底物中捕获这种行为。通过这种方法,我们可以朝着与不受摩尔定律限制的物理基材的利用物理底物的紧急计算有关的新计算范式的发展,并最终实现了众多平行和分布式计算技术。在本文中,我们认为,人造生命的镜头为高性能计算技术的发展提供了宝贵的观点。我们首先提出了有关人造生命的简短基础背景以及一些可能适用于非常规计算的相关工具。然后详细讨论两个特定的底物:纳米磁体的生物神经元和集合。这些底物是作者正在进行的工作的重点,它们说明了此处概述的方法的两个方面 - 对生活系统的仔细研究和人工系统的构建以产生类似生活的行为。我们以哲学讨论来结束,以讨论我们可以通过对人为生活的研究固有的好奇心来学习什么。本文的主要贡献是介绍使用人工生命方法来揭示和利用物理基质的固有计算能力对非常规高性能计算中的应用的固有计算能力。

In living systems, we often see the emergence of the ingredients necessary for computation -- the capacity for information transmission, storage, and modification -- begging the question of how we may exploit or imitate such biological systems in unconventional computing applications. What can we gain from artificial life in the advancement of computing technology? Artificial life provides us with powerful tools for understanding the dynamic behavior of biological systems and capturing this behavior in manmade substrates. With this approach, we can move towards a new computing paradigm concerned with harnessing emergent computation in physical substrates not governed by the constraints of Moore's law and ultimately realize massively parallel and distributed computing technology. In this paper, we argue that the lens of artificial life offers valuable perspectives for the advancement of high-performance computing technology. We first present a brief foundational background on artificial life and some relevant tools that may be applicable to unconventional computing. Two specific substrates are then discussed in detail: biological neurons and ensembles of nanomagnets. These substrates are the focus of the authors' ongoing work, and they are illustrative of the two sides of the approach outlined here -- the close study of living systems and the construction of artificial systems to produce life-like behaviors. We conclude with a philosophical discussion on what we can learn from approaching computation with the curiosity inherent to the study of artificial life. The main contribution of this paper is to present the great potential of using artificial life methodologies to uncover and harness the inherent computational power of physical substrates toward applications in unconventional high-performance computing.

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