A leading choice of error correction for scalable quantum computing is the surface code with lattice surgery. The basic lattice surgery operations, the merging and splitting of logical qubits, act non-unitarily on the logical states and are not easily captured by standard circuit notation. This raises the question of how best to design, verify, and optimise protocols that use lattice surgery, in particular in architectures with complex resource management issues. In this paper we demonstrate that the operations of the ZX calculus --- a form of quantum diagrammatic reasoning based on bialgebras --- match exactly the operations of lattice surgery. Red and green ``spider'' nodes match rough and smooth merges and splits, and follow the axioms o...
We explain the graphical zx-calculus for reasoning about qubits without any reference to the underly...
Different graphical calculi have been proposed to represent quantum computation. First the ZX-calcul...
The ZX-calculus is an intuitive but also mathematically strict graphical language for quantum compu...
A leading choice of error correction for scalable quantum computing is the surface code with lattice...
A leading choice of error correction for scalable quantum computing is the surface code with lattice...
International audienceWe introduce the Scalable ZX-calculus (SZX-calculus for short), a formal and c...
We observe that lattice surgery, a model of fault-tolerant qubit computation, generalises straightfo...
International audienceWe present a completely new approach to quantum circuit optimisation, based on...
We present a completely new approach to quantum circuit optimisation, based on the ZX-calculus. We f...
ZX-Calculus is a versatile graphical language for quantum computation equipped with an equational th...
21 pages, 5 figuresInternational audienceFrom Feynman diagrams to tensor networks, diagrammatic repr...
We introduce the Scalable ZX-calculus (SZX-calculus for short), a formal and compact graphical langu...
The ZX-calculus, and the variant we consider in this paper (ZXH-calculus), are formal diagrammatic l...
The ZX-calculus is a graphical language for reasoning about quantum computation using ZX-diagrams, a...
The traditional method for computation in either the surface code or in the Raussendorf model is the...
We explain the graphical zx-calculus for reasoning about qubits without any reference to the underly...
Different graphical calculi have been proposed to represent quantum computation. First the ZX-calcul...
The ZX-calculus is an intuitive but also mathematically strict graphical language for quantum compu...
A leading choice of error correction for scalable quantum computing is the surface code with lattice...
A leading choice of error correction for scalable quantum computing is the surface code with lattice...
International audienceWe introduce the Scalable ZX-calculus (SZX-calculus for short), a formal and c...
We observe that lattice surgery, a model of fault-tolerant qubit computation, generalises straightfo...
International audienceWe present a completely new approach to quantum circuit optimisation, based on...
We present a completely new approach to quantum circuit optimisation, based on the ZX-calculus. We f...
ZX-Calculus is a versatile graphical language for quantum computation equipped with an equational th...
21 pages, 5 figuresInternational audienceFrom Feynman diagrams to tensor networks, diagrammatic repr...
We introduce the Scalable ZX-calculus (SZX-calculus for short), a formal and compact graphical langu...
The ZX-calculus, and the variant we consider in this paper (ZXH-calculus), are formal diagrammatic l...
The ZX-calculus is a graphical language for reasoning about quantum computation using ZX-diagrams, a...
The traditional method for computation in either the surface code or in the Raussendorf model is the...
We explain the graphical zx-calculus for reasoning about qubits without any reference to the underly...
Different graphical calculi have been proposed to represent quantum computation. First the ZX-calcul...
The ZX-calculus is an intuitive but also mathematically strict graphical language for quantum compu...