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Interplay between Theories of Quantum and Classical Signals: Classical Representation of Entanglement

机译:量子理论与经典信号之间的相互作用:纠缠的经典表示

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The idea that quantum mechanics (QM) is simply a version of classical field theory is very old. Recently this idea has been realized in a new mathematical framework - on the basis of theory of random fields (L_2-valued random variables). Surprisingly (for at least orthodox Copenhagenist) fundamental predictions of QM can be reproduced on the basis of a purely wave model (prequantum classical statistical field theory, PCSFT). In particular, all quantum correlations (including correlations of composite systems in entangled states) can be represented as correlations of classical random signals. These signals fluctuate at the space-time scale which is essentially finer than the scale of quantum measurements. At the moment we are not able to monitor such signals. However, one can expect that increasing of the precision of measurements will provide such a possibility. In this paper we show that bosonic and fermionic correlations can be obtained in the classical field framework. Finally, we stress that QM can be reduced to theory of classical random fields only in the presence of a relatively strong background field.
机译:量子力学(QM)只是经典场论的一个版本,这一观点非常古老。最近,这个想法已经在一个新的数学框架中得以实现-基于随机场(L_2值随机变量)的理论。出乎意料的是(至少对于正统的哥本哈根学者而言),可以基于纯波动模型(量子经典统计场理论,PCSFT)来再现质量管理的基本预测。特别地,所有量子相关性(包括处于纠缠态的复合系统的相关性)都可以表示为经典随机信号的相关性。这些信号以时空尺度波动,该时空尺度实际上比量子测量的尺度要小。目前,我们无法监视此类信号。然而,可以预期的是,提高测量精度将提供这种可能性。在本文中,我们表明可以在经典场框架中获得玻声和铁离子的相关性。最后,我们强调只有在存在相对较强的背景场的情况下,QM才能简化为经典随机场理论。

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