A recurrent circuit of differentiable logic gates learns local update rules for cellular automata, reproducing Game of Life and generating target patterns.
Differentiable cellular automata
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abstract
We describe a class of cellular automata (CAs) that are end-to-end differentiable. DCAs interpolate the behavior of ordinary CAs through rules that act on distributions of states. The gradient of a DCA with respect to its parameters can be computed with an iterative propagation scheme that uses previously-computed gradients and values. Gradient-based optimization over DCAs could be used to find ordinary CAs with desired properties.
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Differentiable Logic Cellular Automata: From Game of Life to Pattern Generation
A recurrent circuit of differentiable logic gates learns local update rules for cellular automata, reproducing Game of Life and generating target patterns.