Team:ETH Zurich/project/overview

From 2014.igem.org

(Difference between revisions)
(Implementation in E. coli)
m
Line 6: Line 6:
== Background ==
== Background ==
 +
== "The whole is more than the sum of its parts" 'Aristotle' ==
 +
Emergence describes how novel properties can arise at a certain level from lower-complexity parts, where these properties are not observed. <sup>[[#refEmergence|[10]]]</sup> This phenomenon is wide-spread in nature. One straight-forward example is water : from the molecules of H<sub>2</sub>O, who are here considered as simple subparts, we are able to consider the liquid "water". At a higher level of complexity.
 +
 +
One particular pattern formation retained our attention : some sea snail present a complex pattern on their shells. The "Cloth of Gold" observed on textile cones results from an inner computation of the neural cells of the sea snail. This pattern appears row by row (computation after computation) and the pigments of the next row are determined by the pigments of the row before. 
 +
 +
[[File:ETHZurich_TextileCone.jpg|500px|center|]]
 +
 +
This pattern formation was formalized by Neuman in the concept of Cellular Automata. Following a simple pre-programmed logic rule, the state of a new spot, corresponding to the colors (eiter white or brown) in sea snail shells, is determined by the states of three parent spots (from the previous computation round). Wolfram <sup>[[#refWolfram|[11]]]</sup> elaborated a whole theory on cellular automata and presented the emergence properties of complex patterns from the wide variety of existing simple rules.
 +
 +
[[File:ETHZurich_CAWolfram.jpg|500px|center]]
 +
 +
Patterns formed after the cellular automata's theory offer a large panel of properties : striking examples are the rule 30 which gives an apparently random pattern and the rule 110 has been proven to be Turing complete. With cellular automata, you can not predict how the final pattern will look like even if you know the rule that governs its property. Tus, the intricated computations of steps poses the problem of the complexity.
== Our project : Mosai''coli'' ==
== Our project : Mosai''coli'' ==

Revision as of 06:07, 12 August 2014

iGEM ETH Zurich 2014

Retrieved from "http://2014.igem.org/Team:ETH_Zurich/project/overview"