论文标题

这里有足够的空间:随着进化,超载,多尺度机器的生物系统

There's Plenty of Room Right Here: Biological Systems as Evolved, Overloaded, Multi-scale Machines

论文作者

Bongard, Joshua, Levin, Michael

论文摘要

计算模型对生物世界的适用性是一个积极的辩论主题。我们认为,一个有用的途径是由于放弃类别之间的硬边界并采用观察者依赖的,务实的观点而产生的。这种观点消除了由人类认知偏见(例如,过度简化的趋势)和先前的技术局限性驱动的偶然二分法,而有利于对进化,发育生物学研究和智能机器的研究所必需的更连续,渐进的观点。为生物医学或生物工程目的重新形状生活系统的努力需要在多个尺度上预测和控制其功能。由于许多原因,这是具有挑战性的,其中之一是生活系统同时在同一位置执行多个功能。我们将其称为“ polycomputing” - 同一基板同时计算不同事物的能力。这种能力是一种重要的方式,使生物是一种计算机,但不是熟悉的,线性的,确定性的。相反,在快速增长的物理计算文献中报道的那样,生物是广泛的计算材料的计算机。我们认为,由进化和设计的系统执行的计算以观察者为中心的框架将改善对中级事件的理解,因为它已经在量子和相对论范围内完成了。在这里,我们回顾了生物学和技术多元计算的示例,并提出了一个想法,即在同一硬件上的不同功能过载是一个重要的设计原则,它有助于理解和构建既进化又设计的系统。学会破解现有的多收缩底物,以及进化和设计新的底物将对再生医学,机器人技术和计算机工程产生巨大影响。

The applicability of computational models to the biological world is an active topic of debate. We argue that a useful path forward results from abandoning hard boundaries between categories and adopting an observer-dependent, pragmatic view. Such a view dissolves the contingent dichotomies driven by human cognitive biases (e.g., tendency to oversimplify) and prior technological limitations in favor of a more continuous, gradualist view necessitated by the study of evolution, developmental biology, and intelligent machines. Efforts to re-shape living systems for biomedical or bioengineering purposes require prediction and control of their function at multiple scales. This is challenging for many reasons, one of which is that living systems perform multiple functions in the same place at the same time. We refer to this as "polycomputing" - the ability of the same substrate to simultaneously compute different things. This ability is an important way in which living things are a kind of computer, but not the familiar, linear, deterministic kind; rather, living things are computers in the broad sense of computational materials as reported in the rapidly-growing physical computing literature. We argue that an observer-centered framework for the computations performed by evolved and designed systems will improve the understanding of meso-scale events, as it has already done at quantum and relativistic scales. Here, we review examples of biological and technological polycomputing, and develop the idea that overloading of different functions on the same hardware is an important design principle that helps understand and build both evolved and designed systems. Learning to hack existing polycomputing substrates, as well as evolve and design new ones, will have massive impacts on regenerative medicine, robotics, and computer engineering.

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