Surface code error correction offers a highly promising pathway to achieve scalable fault-tolerant quantum computing. When operated as stabiliser codes, surface code computations consist of a syndrome decoding step where measured stabiliser operators are used to determine appropriate corrections for errors in physical qubits. Decoding algorithms have undergone substantial development, with recent work incorporating machine learning (ML) techniques. Despite promising initial results, the ML-based syndrome decoders are still limited to small scale demonstrations with low latency and are incapable of handling surface codes with boundary conditions and various shapes needed for lattice surgery and braiding. Here, we report the development of an...
Fault tolerance is a prerequisite for scalable quantum computing. Architectures based on 2D topologi...
Quantum error correction is one of the most important milestones for realization of large-scale quan...
Continuous quantum error correction has been found to have certain advantages over discrete quantum ...
With the advent of noisy intermediate-scale quantum (NISQ) devices, practical quantum computing has ...
With the advent of noisy intermediate-scale quantum (NISQ) devices, practical quantum computing has ...
Quantum error correction (QEC) is key to have reliable quantum computation and storage, due to the f...
Quantum error correction (QEC) is key to have reliable quantum computation and storage, due to the f...
Quantum Error Correction (QEC) is required in quantum computers to mitigate the effect of errors on ...
Realizing the full potential of quantum computation requires quantum error correction (QEC), with mo...
Quantum computers promise to solve computing problems that are currently intractable using tradition...
Quantum Error Correction (QEC) continuously generates a stream of syndrome data that contains inform...
A fault-tolerant quantum computation requires an efficient means to detect and correct errors that a...
A quantum computer needs the assistance of a classical algorithm to detect and identify errors that ...
Quantum error correction (QEC) is required in quantum computers to mitigate the effect of errors on ...
Machine learning has the potential to become an important tool in quantum error correction as it all...
Fault tolerance is a prerequisite for scalable quantum computing. Architectures based on 2D topologi...
Quantum error correction is one of the most important milestones for realization of large-scale quan...
Continuous quantum error correction has been found to have certain advantages over discrete quantum ...
With the advent of noisy intermediate-scale quantum (NISQ) devices, practical quantum computing has ...
With the advent of noisy intermediate-scale quantum (NISQ) devices, practical quantum computing has ...
Quantum error correction (QEC) is key to have reliable quantum computation and storage, due to the f...
Quantum error correction (QEC) is key to have reliable quantum computation and storage, due to the f...
Quantum Error Correction (QEC) is required in quantum computers to mitigate the effect of errors on ...
Realizing the full potential of quantum computation requires quantum error correction (QEC), with mo...
Quantum computers promise to solve computing problems that are currently intractable using tradition...
Quantum Error Correction (QEC) continuously generates a stream of syndrome data that contains inform...
A fault-tolerant quantum computation requires an efficient means to detect and correct errors that a...
A quantum computer needs the assistance of a classical algorithm to detect and identify errors that ...
Quantum error correction (QEC) is required in quantum computers to mitigate the effect of errors on ...
Machine learning has the potential to become an important tool in quantum error correction as it all...
Fault tolerance is a prerequisite for scalable quantum computing. Architectures based on 2D topologi...
Quantum error correction is one of the most important milestones for realization of large-scale quan...
Continuous quantum error correction has been found to have certain advantages over discrete quantum ...