论文标题
超确定性隐藏变异模型II:阴谋
Superdeterministic hidden-variables models II: conspiracy
论文作者
论文摘要
我们通过进一步发展上一篇文章$ \ Mathcal {a} $中提出的思想,证明了量子力学的超级确定模型是阴谋的。我们考虑了一个铃铛场景,在每次运行和每个机翼中,实验者选择$ N $设备之一来确定本地测量设置。我们证明,在不假定量子统计的任何特征的情况下,这种情况的超确定模型必须具有隐藏变量的精细调整分布。具体而言,需要进行微调,以便测量统计数据取决于测量设置,而不取决于选择设置的细节。我们将其量化为模型的间接费用微调$ f $,并表明任何$ n> 1 $的$ f> 0 $(对应于“微调”)。微调的概念假定任意(“非平衡”)隐藏变异分布原则上是可能的。我们还展示了如何在不使用非平衡的情况下量化超确定的阴谋。第二种方法是基于以下事实:超确定性相关性可以模仿实际信号。我们认为,类似的情况发生在平衡中,在每次运行中,隐藏变量与之相关的设备与实际使用的设备相同。这导致了极大的超确定性相关性,我们将其量化为适当定义的正式熵的下降。根据这两种方法,非本地和倒流模型被证明是非呼吸的。
We prove that superdeterministic models of quantum mechanics are conspiratorial in a mathematically well-defined sense, by further development of the ideas presented in a previous article $\mathcal{A}$. We consider a Bell scenario where, in each run and at each wing, the experimenter chooses one of $N$ devices to determine the local measurement setting. We prove, without assuming any features of quantum statistics, that superdeterministic models of this scenario must have a finely-tuned distribution of hidden variables. Specifically, fine-tuning is required so that the measurement statistics depend on the measurement settings but not on the details of how the settings are chosen. We quantify this as the overhead fine-tuning $F$ of the model, and show that $F > 0$ (corresponding to `fine-tuned') for any $N >1$. The notion of fine-tuning assumes that arbitrary (`nonequilibrium') hidden-variables distributions are possible in principle. We also show how to quantify superdeterministic conspiracy without using nonequilibrium. This second approach is based on the fact that superdeterministic correlations can mimic actual signalling. We argue that an analogous situation occurs in equilibrium where, for every run, the devices that the hidden variables are correlated with are coincidentally the same as the devices in fact used. This results in extremely large superdeterministic correlations, which we quantify as a drop of an appropriately defined formal entropy. Nonlocal and retrocausal models turn out to be non-conspiratorial according to both approaches.