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The measurement postulates of quantum mechanics are operationally redundant

机译:量子力学的测量假设在操作上是多余的

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摘要

Understanding the core content of quantum mechanics requires us to disentangle the hidden logical relationships between the postulates of this theory. Here we show that the mathematical structure of quantum measurements, the formula for assigning outcome probabilities (Born’s rule) and the post-measurement state-update rule, can be deduced from the other quantum postulates, often referred to as “unitary quantum mechanics”, and the assumption that ensembles on finite-dimensional Hilbert spaces are characterized by finitely many parameters. This is achieved by taking an operational approach to physical theories, and using the fact that the manner in which a physical system is partitioned into subsystems is a subjective choice of the observer, and hence should not affect the predictions of the theory. In contrast to other approaches, our result does not assume that measurements are related to operators or bases, it does not rely on the universality of quantum mechanics, and it is independent of the interpretation of probability.
机译:理解量子力学的核心内容要求我们解开该理论假设之间的隐藏逻辑关系。在这里,我们证明了量子测量的数学结构,分配结果概率的公式(伯恩法则)和测量后状态更新规则可以从其他通常被称为“单一量子力学”的量子假设中推导出来,以及在有限维希尔伯特空间上集合的假设的特征是数量有限。这是通过对物理理论采取一种可操作的方法来实现的,并使用以下事实:将物理系统划分为子系统是观察者的主观选择,因此不应影响理论的预测。与其他方法相比,我们的结果不假设测量值与算符或基数相关,它不依赖于量子力学的普遍性,并且独立于概率的解释。

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