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Computing by Programmable Particles

机译:通过可编程粒子计算

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The vision for programmable matter is to realize a physical substance that is scalable, versatile, instantly reconfigurable, safe to handle, and robust to failures. Programmable matter could be deployed in a variety of domain spaces to address a wide gamut of problems, including applications in construction, environmental science, synthetic biology, and space exploration. However, there are considerable engineering and computational challenges that must be overcome before such a system could be implemented. Towards developing efficient algorithms for novel programmable matter behaviors, the amoebot model for selforganizing particle systems and its variant, hybrid programmable matter, provide formal computational frameworks that facilitate rigorous algorithmic research. In this chapter, we discuss distributed algorithms under these models for shape formation, shape recognition, object coating, compression, shortcut bridging, and separation in addition to some underlying algorithmic primitives.
机译:可编程物质的愿景是实现可扩展,多功能,即时可重新配置,安全处理和强大的故障的物理物质。可编程物品可以部署在各种域空间中,以满足宽敞的问题,包括建设,环境科学,合成生物学和太空探索的应用。但是,在这种系统可以实现之前必须克服的相当大的工程和计算挑战。为了开发新型可编程事项行为的高效算法,自主粒子系统的AmoEbot模型及其变体,混合可编程物质提供了促进严格算法研究的正式计算框架。在本章中,除了一些底层算法原语外,我们讨论这些模型下的分布式算法,用于形状形成,形状识别,对象涂层,压缩,快捷方式桥接和分离。

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