Exploiting Quantum Teleportation in Quantum Circuit Mapping
arXiv:2011.07314 · doi:10.1145/3394885.3431604
Abstract
Quantum computers are constantly growing in their number of qubits, but continue to suffer from restrictions such as the limited pairs of qubits that may interact with each other. Thus far, this problem is addressed by mapping and moving qubits to suitable positions for the interaction (known as quantum circuit mapping). However, this movement requires additional gates to be incorporated into the circuit, whose number should be kept as small as possible since each gate increases the likelihood of errors and decoherence. State-of-the-art mapping methods utilize swapping and bridging to move the qubits along the static paths of the coupling map---solving this problem without exploiting all means the quantum domain has to offer. In this paper, we propose to additionally exploit quantum teleportation as a possible complementary method. Quantum teleportation conceptually allows to move the state of a qubit over arbitrary long distances with constant overhead---providing the potential of determining cheaper mappings. The potential is demonstrated by a case study on the IBM Q Tokyo architecture which already shows promising improvements. With the emergence of larger quantum computing architectures, quantum teleportation will become more effective in generating cheaper mappings.
To appear in ASP-DAC 2021
References in corpus (5)
- Supplementary information for "Quantum supremacy using a programmable superconducting processor"
- Quantum Chemistry in the Age of Quantum Computing
- Mapping Quantum Circuits to IBM QX Architectures Using the Minimal Number of SWAP and H Operations
- Teleportation Systems Towards a Quantum Internet
- Timing and resource-aware mapping of quantum circuits to superconducting processors
Cited by in corpus (5)
- MQT Bench: Benchmarking Software and Design Automation Tools for Quantum Computing
- Interaction graph-based characterization of quantum benchmarks for improving quantum circuit mapping techniques
- Robust Qubit Mapping Algorithm via Double-Source Optimal Routing on Large Quantum Circuits
- Entanglement and non-locality in quantum protocols with identical particles
- Nuwa: A Quantum Circuit Transpiler Based on a Finite-Horizon Heuristic for Placement and Routing