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Fault-tolerant logical measurements via homological measurement
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We introduce homological measurement, a framework for measuring the logical Pauli operators encoded in CSS stabilizer codes. The framework is based on the algebraic description of such codes as chain complexes. Protocols such as lattice surgery some of its recent generalizations are shown to be special cases of homological measurement. Using this framework, we develop a specific protocol called edge expanded homological measurement for fault-tolerant measurement of arbitrary logical Pauli operators of general qLDPC codes, requiring a number of ancillary qubits growing only linearly with the weight of the logical operator measured, and guaranteed that the distance of the code is preserved. We further benchmark our protocol numerically in a photonic architecture based on GKP qubits, showing that the logical error rate of various codes are on par with other methods requiring more ancilla qubits.
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Quantum Codes with Addressable and Transversal Non-Clifford Gates
The authors construct qubit CSS codes with addressable transversal CCZ gates and introduce an addressable orthogonality framework that generalizes Bravyi-Haah triorthogonality.
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