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Universal computation via self-assembly of DNA: Some theory and experiments.

, , and . DNA Based Computers, volume 44 of DIMACS Series in Discrete Mathematics and Theoretical Computer Science, page 191-213. DIMACS/AMS, (1996)

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Two-dimensional tile displacement can simulate cellular automata., and . CoRR, (2023)Universal Computation and Optimal Construction in the Chemical Reaction Network-Controlled Tile Assembly Model., and . DNA, volume 9211 of Lecture Notes in Computer Science, page 34-54. Springer, (2015)Time Complexity of Computation and Construction in the Chemical Reaction Network-Controlled Tile Assembly Model., and . DNA, volume 9818 of Lecture Notes in Computer Science, page 165-182. Springer, (2016)Programmable Control of Nucleation for Algorithmic Self-assembly., and . DNA, volume 3384 of Lecture Notes in Computer Science, page 319-328. Springer, (2004)Complexity of Compact Proofreading for Self-assembled Patterns., and . DNA, volume 3892 of Lecture Notes in Computer Science, page 305-324. Springer, (2005)Optimizing Tile Set Size While Preserving Proofreading with a DNA Self-assembly Compiler., and . DNA, volume 11145 of Lecture Notes in Computer Science, page 37-54. Springer, (2018)Toward molecular programming with DNA.. ASPLOS, page 1. ACM, (2008)Universal computation via self-assembly of DNA: Some theory and experiments., , and . DNA Based Computers, volume 44 of DIMACS Series in Discrete Mathematics and Theoretical Computer Science, page 191-213. DIMACS/AMS, (1996)On the computational power of DNA annealing and ligation.. DNA Based Computers, volume 27 of DIMACS Series in Discrete Mathematics and Theoretical Computer Science, page 199-221. DIMACS/AMS, (1995)A General-Purpose CRN-to-DSD Compiler with Formal Verification, Optimization, and Simulation Capabilities., , , , , and . DNA, volume 10467 of Lecture Notes in Computer Science, page 232-248. Springer, (2017)