Non-Clifford Cost of Random Unitaries
arXiv:2505.10110 · doi:10.1103/25v1-my1x
Abstract
Recent years have enjoyed a strong interest in exploring properties and applications of random quantum circuits. In this work, we explore the ensemble of -doped Clifford circuits on qubits, consisting of Clifford circuits interspersed with single-qubit non-Clifford gates. We establish rigorous convergence bounds towards unitary -designs, revealing the intrinsic cost in terms of non-Clifford resources in various flavors. First, we analyze the -th order frame potential, which quantifies how well the ensemble of doped Clifford circuits is spread within the unitary group. We prove that a quadratic doping level, , is both necessary and sufficient to approximate the frame potential of the full unitary group. As a consequence, we refine existing upper bounds on the convergence of the ensemble towards state -designs. Second, we derive tight bounds on the convergence of -doped Clifford circuits towards relative-error -designs, showing that is both necessary and sufficient for the ensemble to form a relative -approximate -design. Similarly, is required to generate pseudo-random unitaries. All these results highlight that generating random unitaries is extremely costly in terms of non-Clifford resources, and that such ensembles fundamentally lie beyond the classical simulability barrier. Additionally, we introduce doped-Clifford Weingarten functions to derive analytic expressions for the twirling operator over the ensemble of random doped Clifford circuits, and we establish their asymptotic behavior in relevant regimes.