Thermodynamically-Efficient Local Computation and the Inefficiency of Quantum Memory Compression

January 07, 2020 Β· Declared Dead Β· πŸ› Physical Review Research

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Authors Samuel P. Loomis, James P. Crutchfield arXiv ID 2001.02258 Category quant-ph: Quantum Computing Cross-listed cond-mat.stat-mech, cs.IT, nlin.CD Citations 5 Venue Physical Review Research Last Checked 5 months ago
Abstract
Modularity dissipation identifies how locally-implemented computation entails costs beyond those required by Landauer's bound on thermodynamic computing. We establish a general theorem for efficient local computation, giving the necessary and sufficient conditions for a local operation to have zero modularity cost. Applied to thermodynamically-generating stochastic processes it confirms a conjecture that classical generators are efficient if and only if they satisfy retrodiction, which places minimal memory requirements on the generator. This extends immediately to quantum computation: Any quantum simulator that employs quantum memory compression cannot be thermodynamically efficient.
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