Jacopo Rizzo, Lorenzo Leone
Abstract
Magic plays a dual role in quantum computation: it promotes stabilizer dynamics from efficient classical simulability to universality, but it presents a central challenge for fault tolerance, since non-stabilizer operations are harder to protect against noise. Magic state distillation addresses this issue; however, existing protocols typically assume prior structure in the input, such as proximity to the target or a specified noise model. Here we introduce universal magic state concentration: a fixed stabilizer protocol that converts a few copies of an unknown pure non-stabilizer qubit state into an exact target magic state. Motivated by the obstruction to exact -state concentration, we show that states behave fundamentally differently. Six input copies are necessary and sufficient to distill one exact state, with an optimal success probability determined by the linearized order-three stabilizer Rényi entropy