论文标题
全局量子温度法
Global Quantum Thermometry
论文作者
论文摘要
提出了量子温度法的范式转移。迄今为止,温度计依赖于局部估计,这对于减少温度众所周知的统计波动很有用。为了在很少有测量数据或没有大量先验知识的情况下估算温度,我们构建了全球量子热计的理论。基于缩放参数,此处显示平均对数误差是温度计的正确数字。它的完整最小化为后处理的测量提供了一项操作和最佳规则,并建立了全球精确限制。我们将这些结果应用于旋转气体上测量结果的模拟结果,发现在整体估计器收敛到真实温度的情况下,局部方法可能导致温度估计值。因此,全局框架可以在温度计实验中采用可靠的数据分析方法。
A paradigm shift in quantum thermometry is proposed. To date, thermometry has relied on local estimation, which is useful to reduce statistical fluctuations once the temperature is very well known. In order to estimate temperatures in cases where few measurement data or no substantial prior knowledge are available, we build instead a theory of global quantum thermometry. Based on scaling arguments, a mean logarithmic error is shown here to be the correct figure of merit for thermometry. Its full minimisation provides an operational and optimal rule to post-process measurements into a temperature reading, and it establishes a global precision limit. We apply these results to the simulated outcomes of measurements on a spin gas, finding that the local approach can lead to biased temperature estimates in cases where the global estimator converges to the true temperature. The global framework thus enables a reliable approach to data analysis in thermometry experiments.