English

Quantum vs Classical Erasure: Equal Bounds but Unequal Costs

Quantum Physics 2026-07-29 v1

Abstract

Irreversibility has a fundamental thermodynamic cost, erasing information inevitably generates heat. This connection is quantified by the Landauer bound, which gives the minimum dissipation needed to erase a single bit of information. While this bound applies in both classical and quantum settings, it is saturated only in idealised limits of infinite resources. Here, we provide a unified first principles description of finite-resource erasure in both classical and quantum systems. We begin by proving the communal folklore that in the idealised regime the erasure cost of a bit encoded in a quantum or classical system is the same. Despite this, we show that their practical implementation differs substantially: achieving comparable erasure quality in quantum systems requires more control, larger accessible energy gaps and longer operation times. Classical protocols can achieve the erasure of a comparable quantum protocol under far weaker constraints which we expose in trade-off relations. Our results explain why practical erasure schemes fall short of Landauer's bound and show that classical systems enjoy several fundamental thermodynamic advantages.

Cite

@article{arxiv.2607.27341,
  title  = {Quantum vs Classical Erasure: Equal Bounds but Unequal Costs},
  author = {Jan Neuser and Jake Xuereb and Pharnam Bakhshinezhad and Marcus Huber},
  journal= {arXiv preprint arXiv:2607.27341},
  year   = {2026}
}