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首页> 外文期刊>The European physical journal, D. Atomic, molecular, and optical physics >Protecting the entropic uncertainty lower bound in Markovian and non-Markovian environment via additional qubits
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Protecting the entropic uncertainty lower bound in Markovian and non-Markovian environment via additional qubits

机译:通过额外的额度保护马尔可维亚和非马上环境中的熵不确定性下限

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摘要

The uncertainty principle is an important principle in quantum theory. Based on this principle, it is impossible to predict the measurement outcomes of two incompatible observables, simultaneously. The uncertainty principle basically is expressed in terms of the standard deviation of the measured observables. In quantum information theory, it is shown that the uncertainty principle can be expressed by Shannon's entropy. The entopic uncertainty lower bound can be altered by considering a particle as the quantum memory which is correlated with the measured particle. We assume that the quantum memory is an open system. We also select the quantum memory fromNqubit which interact with common reservoir. In this work we investigate the effects of the number of additional qubits in reservoir on entropic uncertainty lower bound. We conclude that the entropic uncertainty lower bound can be protected from decoherence by increasing the number of additional qubit in reservoir.
机译:不确定性原则是量子理论的重要原则。 基于该原理,不可能同时预测两个不相容的可观察到的测量结果。 在测量可观察到的标准偏差方面,基本上表达了不确定性原则。 在量子信息理论中,表明不确定性原则可以由香农的熵表达。 通过将粒子视为与测量的粒子相关的量子存储器,可以通过将粒子改变势孔不确定性下限。 我们假设量子存储器是开放系统。 我们还选择Quantum Memory FromNQubit,它与公共储库相互作用。 在这项工作中,我们调查储层中额外额度数量对熵的不确定性下限的影响。 我们得出结论,通过增加水库中的额外量子比数量,可以保护熵不确定性下限。

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