A decompositional framework for process theories in spacetime
Matthias Salzger, John H. Selby

TL;DR
This paper extends process theories to include spacetime, introducing process implementations and identifying complex causal structures like zigzags, which are crucial for quantum causal modeling.
Contribution
It develops a framework for embedding process theories in spacetime, revealing infinite zigzag causal structures relevant for quantum resources.
Findings
Countably infinite zigzag causal structures identified
Quantum CNOT gate can be implemented with zigzag structures
Standard causal structures are insufficient for certain quantum processes
Abstract
There has been a recent surge of interest within the field of quantum foundations regarding incorporating ideas from general relativity and quantum gravity. However, many quantum information tools remain agnostic to the underlying spacetime. For instance, whenever we draw a quantum circuit the effective spacetime imposed by the connectivity of the physical qubits which will realize this circuit is not taken into account. In this work, we aim to address this limitation by extending the framework of process theories to include a background spacetime structure. We introduce the notion of process implementations, i.e., decompositions of a process. A process is then embeddable if and only if one of its implementations can be embedded in such a way that all the component processes are localized and all wires follow timelike paths. While conceptually simple, checking for embeddability is…
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