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Witnessing causal nonseparability

2 Pith papers cite this work. Polarity classification is still indexing.

2 Pith papers citing it
abstract

Our common understanding of the physical world deeply relies on the notion that events are ordered with respect to some time parameter, with past events serving as causes for future ones. Nonetheless, it was recently found that it is possible to formulate quantum mechanics without any reference to a global time or causal structure. The resulting framework includes new kinds of quantum resources that allow performing tasks - in particular, the violation of causal inequalities - which are impossible for events ordered according to a global causal order. However, no physical implementation of such resources is known. Here we show that a recently demonstrated resource for quantum computation - the quantum switch - is a genuine example of "indefinite causal order". We do this by introducing a new tool - the causal witness - which can detect the causal nonseparability of any quantum resource that is incompatible with a definite causal order. We show however that the quantum switch does not violate any causal nequality.

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fields

quant-ph 2

years

2026 2

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UNVERDICTED 2

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representative citing papers

Order structure and signalling in higher order quantum maps

quant-ph · 2026-04-10 · unverdicted · novelty 7.0

Higher-order quantum map types form a distributive lattice of regular subtypes where signalling relations are determined by type function evaluations and structure poset rank parity, with normal forms derived from maximal chains.

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Showing 2 of 2 citing papers.

  • Order structure and signalling in higher order quantum maps quant-ph · 2026-04-10 · unverdicted · none · ref 16

    Higher-order quantum map types form a distributive lattice of regular subtypes where signalling relations are determined by type function evaluations and structure poset rank parity, with normal forms derived from maximal chains.

  • How many systems can be dephased before the quantum switch becomes causally definite? quant-ph · 2026-05-21 · unverdicted · none · ref 15 · internal anchor

    In bipartite processes and multipartite quantum circuits with quantum control, causal nonseparability persists when any single non-future system remains undephased but becomes separable if all systems or only the future system is undephased.