Rewindable Quantum Computation and Its Equivalence to Cloning and Adaptive Postselection
Abstract
We define rewinding operators that invert quantum measurements. Then, we define complexity classes , , and as sets of decision problems solvable by polynomial-size quantum circuits with a polynomial number of rewinding operators, cloning operators, and adaptive postselections, respectively. Our main result is that . As a byproduct of this result, we show that any problem in can be solved with only postselections of events that occur with probabilities polynomially close to one. Under the strongly believed assumption that , or the shortest independent vectors problem cannot be efficiently solved with quantum computers, we also show that a single rewinding operator is sufficient to achieve tasks that are intractable for quantum computation. Finally, we show that rewindable Clifford circuits remain classically simulatable, but rewindable instantaneous quantum polynomial time circuits can solve any problem in .
Cite
@article{arxiv.2206.05434,
title = {Rewindable Quantum Computation and Its Equivalence to Cloning and Adaptive Postselection},
author = {Ryo Hiromasa and Akihiro Mizutani and Yuki Takeuchi and Seiichiro Tani},
journal= {arXiv preprint arXiv:2206.05434},
year = {2025}
}
Comments
32 pages, 4 figures, v2: Added Result 3 and improved Result 4, v3: Revised Theorem 34, reflected TQC review comments, and added minor revisions, v4: close to published version in Theor. Comp. Sys