D-Wave has made a significant breakthrough in quantum error correction with the development of a dual-rail qubit gate, achieving approximately 99.9% fidelity for two-qubit operations with gate times of about 500 nanoseconds1. This innovation is crucial for improving the efficiency of quantum error correction, a major hurdle in the development of fault-tolerant quantum computing systems. The dual-rail erasure qubit architecture enables native hardware-level error detection, reducing the need for additional error correction mechanisms. This research supports D-Wave's gate-model roadmap, which aims to minimize hardware overhead requirements for large-scale quantum computing systems. The high fidelity and fast gate times demonstrated by D-Wave's dual-rail qubit gate bring the company closer to achieving practical quantum computing. This matters to practitioners because it demonstrates the potential for significant advancements in quantum error correction, paving the way for more reliable and efficient quantum computing systems.