Space-Bounded Unitary Quantum Computation with Postselection

S. Tani
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Abstract

Space-bounded computation has been a central topic in classical and quantum complexity theory. In the quantum case, every elementary gate must be unitary. This restriction makes it unclear whether the power of space-bounded computation changes by allowing intermediate measurement. In the bounded error case, Fefferman and Remscrim [STOC 2021, pp.1343–1356] and Girish, Raz and Zhan [ICALP 2021, pp.73:1–73:20] recently provided the break-through results that the power does not change. This paper shows that a similar result holds for space-bounded quantum computation with postselection . Namely, it is proved possible to eliminate intermediate postselections and measurements in the space-bounded quantum computation in the bounded-error setting. Our result strengthens the recent result by Le Gall, Nishimura and Yakaryilmaz [TQC 2021, pp.10:1– 10:17] that logarithmic-space bounded-error quantum computation with intermediate postselections and measurements is equivalent in computational power to logarithmic-space unbounded-error probabilistic computation. As an application, it is shown that bounded-error space-bounded one-clean qubit computation (DQC1) with postselection is equivalent in computational power to unbounded-error space-bounded probabilistic computation, and the computational supremacy of the bounded-error space-bounded DQC1 is interpreted in complexity-theoretic terms.
具有后选择的空间有界幺正量子计算
空间边界计算一直是经典复杂性理论和量子复杂性理论的中心课题。在量子的情况下,每个基本门都必须是酉的。这个限制使得不清楚空间边界计算的能力是否会因为允许中间测量而改变。在有界误差情况下,Fefferman和Remscrim [STOC 2021, pp.1343-1356]和Girish, Raz和Zhan [ICALP 2021, pp.73:1-73:20]最近提供了功率不变化的突破性结果。本文证明了具有后选择的空间有界量子计算也有类似的结果。也就是说,证明了在有界误差设置下,消除空间有界量子计算中的中间后选和测量是可能的。我们的结果加强了Le Gall, Nishimura和Yakaryilmaz [TQC 2021, pp.10:1 - 10:17]最近的结果,即具有中间后选择和测量的对数空间有界误差量子计算在计算能力上等同于对数空间无界误差概率计算。作为一个应用,证明了后选择的有界错误空间有界单干净量子比特计算(DQC1)在计算能力上等同于无界错误空间有界概率计算,并从复杂度理论的角度解释了有界错误空间有界DQC1的计算优势。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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