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Field Extension of Real Values of Physical Observables in Classical Theory can Help Attain Quantum Results

机译:经典理论中物理观察物实际值的实际值可以有助于获得量子结果

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摘要

Physical quantities are assumed to take real values, which stems from the fact that an usual measuring instrument that measures a physical observable always yields a real number. Here we consider the question of what would happen if physical observables are allowed to assume complex values. In this paper, we show that by allowing observables in the Bell inequality to take complex values, a classical physical theory can actually get the same upper bound of the Bell expression as quantum theory. Also, by extending the real field to the quaternionic field, we can puzzle out the GHZ problem using local hidden variable model. Furthermore, we try to build a new type of hidden-variable theory of a single qubit based on the result.
机译:假设物理量采取实际值,其源于测量物理观察到的通常测量仪器总是产生实数。 在这里,如果允许物理观察可遵守复杂值,我们会考虑会发生什么问题。 在本文中,我们表明,通过允许观察到贝尔不等式以采取复杂的值,经典物理理论实际上可以获得与量子理论的钟表达的相同的上限。 此外,通过将真实字段扩展到四元环境,我们可以使用本地隐藏变量模型拼写GHz问题。 此外,我们尝试基于结果构建一个Qubit的新类型的隐藏变量理论。

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