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Eigenstate-assisted realization of general quantum controlled unitaries with a fixed cost

Abstract

Controlled unitary gates are a basic element in many quantum algorithms. Converting a general unitary with a known decomposition into its controlled version, controlled-, can introduce a large overhead in terms of the depth of the circuit. We present a general method to take any unitary into controlled- using a fixed circuit with 4 CNOT gates and 2 Toffoli gates per qubit. For -qubit unitaries and one control qubit, we require qubits and a circuit that can generate an eigenstate of , for which there are many cost-effective known algorithms. The method also works for any black block implementation of , achieving a constant-depth realization independent of its decomposition. We illustrate its use in the Hadamard test and discuss applications to variational and quantum machine-learning algorithms.

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