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Experimentally modeling stochastic processes with less memory by the use of a quantum processor

机译:通过使用量子处理器,以较少的内存对随机过程进行实验建模

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Computer simulation of observable phenomena is an indispensable tool for engineering new technology, understanding the natural world, and studying human society. However, the most interesting systems are often so complex that simulating their future behavior demands storing immense amounts of information regarding how they have behaved in the past. For increasingly complex systems, simulation becomes increasingly difficult and is ultimately constrained by resources such as computer memory. Recent theoretical work shows that quantum theory can reduce this memory requirement beyond ultimate classical limits, as measured by a process’ statistical complexity, C. We experimentally demonstrate this quantum advantage in simulating stochastic processes. Our quantum implementation observes a memory requirement of Cq = 0.05 ± 0.01, far below the ultimate classical limit of C = 1. Scaling up this technique would substantially reduce the memory required in simulations of more complex systems.
机译:对可观察现象的计算机模拟是设计新技术,理解自然界和研究人类社会必不可少的工具。但是,最有趣的系统通常是如此复杂,以至于要模拟它们的未来行为,就需要存储有关它们过去的行为的大量信息。对于越来越复杂的系统,仿真变得越来越困难,并最终受到诸如计算机内存之类的资源的约束。最新的理论工作表明,量子理论可以将这种内存需求降低到超出经典的极限,这可以通过过程的统计复杂度C来衡量。我们通过实验证明了这种量子优势在模拟随机过程中。我们的量子实现观察到C q = 0.05±0.01的内存需求,远低于C = 1的最终经典极限。扩大此技术将大大减少模拟更复杂系统所需的内存。

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