Sequential Voronoi Diagram Calculations using Simple Chemical Reactions

B. D. L. Costello, I. Jahan, A. Adamatzky
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引用次数: 11

Abstract

In our recent paper [de Lacy Costello et al. 2010] we described the formation of complex tessellations of the plane arising from the various reactions of metal salts with potassium ferricyanide and ferrocyanide loaded gels. In addition to producing colourful tessellations these reactions are naturally computing generalised Voronoi diagrams of the plane. The reactions reported previously were capable of the calculation of three distinct Voronoi diagrams of the plane. As diffusion coupled with a chemical reaction is responsible for the calculation then this is achieved in parallel. Thus an increase in the complexity of the data input does not utilise additional computational resource. Additional benefits of these chemical reactions is that a permanent record of the Voronoi diagram calculation (in the form of precipitate free bisectors) is achieved, so there is no requirement for further processing to extract the calculation results. Previously it was assumed that the permanence of the results was also a potential drawback which limited reusability. This paper presents new data which shows that sequential Voronoi diagram calculations can be performed on the same chemical substrate. This is dependent on the reactivity of the original reagent and the cross reactivity of the secondary reagent with the primary product. We present the results from a number of binary combinations of metal salts on both potassium ferricyanide and potassium ferrocyanide substrates. We observe three distinct mechanisms whereby secondary sequential Voronoi diagrams can be calculated. In most cases the result was two interpenetrating permanent Voronoi diagrams. This is interesting from the perspective of mapping the capability of unconventional computing substrates. But also in the study of natural pattern formation per se.
顺序Voronoi图计算使用简单的化学反应
在我们最近的论文[de Lacy Costello etal . 2010]中,我们描述了由金属盐与铁氰化钾和亚铁氰化钾负载凝胶的各种反应引起的平面复杂镶嵌的形成。除了产生彩色镶嵌外,这些反应自然地计算平面的广义Voronoi图。先前报告的反应能够计算出飞机的三个不同的Voronoi图。由于扩散与化学反应相结合是计算的关键,所以这是并行实现的。因此,数据输入复杂性的增加不使用额外的计算资源。这些化学反应的额外好处是Voronoi图计算的永久记录(以无沉淀平分线的形式)被实现,因此不需要进一步处理来提取计算结果。以前,人们认为结果的永久性也是一个限制可重用性的潜在缺点。本文提出了新的数据,表明顺序Voronoi图计算可以在相同的化学基质上进行。这取决于原始试剂的反应性和次级试剂与初级产物的交叉反应性。我们提出了一些金属盐在铁氰化钾和亚铁氰化钾底物上的二元组合的结果。我们观察到三种不同的机制,由此二级顺序Voronoi图可以计算。在大多数情况下,结果是两个相互穿透的永久Voronoi图。从映射非常规计算基板能力的角度来看,这很有趣。同时也在自然模式形成本身的研究中。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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