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Quantum Computation by Classical Mechanical Apparatuses

机译:经典机械装置的量子计算

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We design a mechanical apparatus that works as "quantum" computer even though it follows classical physics. To do quantum computation, we need to know what percentage of a particular state is included in a superposed quantum state. However, the superposition easily breaks unless expensive and large-scale tooling, such as cryogenic temperature is prepared. We pay attention to causal formulation of quantum mechanics. The weighting coefficients of the superposition can be determined by monitoring the trajectory of a quantum particle. Such monitoring is possible only in macroscopic physics. Efficacy of our macroscopic apparatus model is shown in one of typical quantum algorithms, Deutsch algorithm. This classical mechanical design opens the way for "quantum mechanical" artificial intelligence to be mounted on robots in usual macroscopic world.
机译:我们设计了一种机械设备,即使它遵循经典物理学,也可以用作“量子”计算机。为了进行量子计算,我们需要知道特定状态的多少百分比包含在叠加的量子状态中。但是,除非准备昂贵且大规模的工具,如低温,否则叠合很容易破裂。我们注意量子力学的因果表述。叠加的加权系数可以通过监视量子粒子的轨迹来确定。这样的监视仅在宏观物理学中是可能的。我们的宏观仪器模型的功效在一种典型的量子算法Deutsch算法中得到了证明。这种经典的机械设计为在通常的宏观世界中将“量子机械”人工智能安装在机器人上开辟了道路。

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