The quantum volume benchmark defines a family of
square circuits, whose number of qubits and depth are the same. Therefore, the output of this benchmark is a single number. However, a proposed generalization is the volumetric benchmark framework, which defines a family of
rectangular quantum circuits, for which and are uncoupled to allow the study of time/space performance trade-offs, thereby sacrificing the simplicity of a single-figure benchmark. Volumetric benchmarks can be generalized not only to account for uncoupled and dimensions, but also to test different types of quantum circuits. While quantum volume benchmarks the quantum computer's ability to implement a specific type of
randomized circuits, these can, in principle, be substituted by other families of random circuits, periodic circuits, or algorithm-inspired circuits. Each benchmark must have a success criterion that defines whether a processor has "passed" a given test circuit. While these data can be analyzed in many ways, a simple method of visualization is illustrating the
Pareto front of the versus trade-off for the processor being benchmarked. This Pareto front provides information on the largest depth a patch of a given number of qubits can withstand, or, alternatively, the biggest patch of qubits that can withstand executing a circuit of given depth . ==See also==