Simulating quantum computation on a classical computer is a difficult problem. The matrices representing quantum gates, and the vectors modeling qubit states grow exponentially with an increase in the number of qubits. However, by using a novel data structure called the Quantum Information Decision Diagram (QuIDD) that exploits the structure of quantum operators, a useful subset of operator matrices and state vectors can be represented in a form that grows polynomially with the number of qubits. This subset contains, but is not limited to, any equal superposition of n qubits, any computational basis state, n-qubit Pauli matrices, and n-qubit Hadamard matrices. It does not, however, contain the discrete Fourier transform (employed in Shor's ...
Abstract—As quantum information processing gains traction, its sim-ulation becomes increasingly sign...
Stabiliser operations and state preparations are efficiently simulable by classical computers. Stabi...
We define formally decohered quantum computers (using density matrices), and present a simulation of...
Quantum-mechanical phenomena are playing an increasing role in information processing as transistor ...
Simulating quantum algorithms is a hard problem on classical computers, it usually needs exponential...
Simulating quantum computation on a classical com-puter is a difficult problem. The matrices represe...
Simulating quantum algorithms is a hard problem on classi-cal computers, it usually needs exponentia...
Quantum algorithms can be simulated using classical computers, but the typical time complexity of th...
QuIDDPro is a fast, scalable, and easy-to-use computational interface for generic quantum circuit si...
Quantum computers promise to solve important problems faster than conventional computers. However, u...
Quantum computers promise to solve several categories of problems faster than classical computers ev...
The purpose of this paper is to implement and simulate Grover's algorithm on one and several qubits ...
The computational power of quantum computers poses major challenges to new design tools since repres...
We present a new algorithm for classical simulation of quantum circuits over the Clifford+T gate set...
In this paper, we analyze existing quantum computer simulation techniques and their realizations to ...
Abstract—As quantum information processing gains traction, its sim-ulation becomes increasingly sign...
Stabiliser operations and state preparations are efficiently simulable by classical computers. Stabi...
We define formally decohered quantum computers (using density matrices), and present a simulation of...
Quantum-mechanical phenomena are playing an increasing role in information processing as transistor ...
Simulating quantum algorithms is a hard problem on classical computers, it usually needs exponential...
Simulating quantum computation on a classical com-puter is a difficult problem. The matrices represe...
Simulating quantum algorithms is a hard problem on classi-cal computers, it usually needs exponentia...
Quantum algorithms can be simulated using classical computers, but the typical time complexity of th...
QuIDDPro is a fast, scalable, and easy-to-use computational interface for generic quantum circuit si...
Quantum computers promise to solve important problems faster than conventional computers. However, u...
Quantum computers promise to solve several categories of problems faster than classical computers ev...
The purpose of this paper is to implement and simulate Grover's algorithm on one and several qubits ...
The computational power of quantum computers poses major challenges to new design tools since repres...
We present a new algorithm for classical simulation of quantum circuits over the Clifford+T gate set...
In this paper, we analyze existing quantum computer simulation techniques and their realizations to ...
Abstract—As quantum information processing gains traction, its sim-ulation becomes increasingly sign...
Stabiliser operations and state preparations are efficiently simulable by classical computers. Stabi...
We define formally decohered quantum computers (using density matrices), and present a simulation of...