Core technology
Core Technology
Traverse Quantum builds a full-stack technology system spanning fault-tolerant architecture, real-time error correction, system and ISA optimization, quantum design automation, and high-speed precision control.
Capabilities
- The world's first fault-tolerant system architecture prototype
- A leading position in real-time error correction
- System and instruction-set optimization benchmarked against global leaders
- Quantum design automation
- High-speed, high-precision control systems
Technical principles
- Apply a computer-science perspective and engineering mindset to reshape quantum physics
- Connect the quantum instruction set, microarchitecture, error-correction middleware, and control electronics
- Use hardware-software co-design to unite parallel control, fast readout, real-time decoding, and dynamic feedback
- Continuously optimize the fault-tolerant quantum computing stack for scalable engineering deployment
Full-stack technology track
The world's first fault-tolerant system architecture prototype
Team members successfully built the world's first complete fault-tolerant quantum computing system architecture prototype, spanning an end-to-end implementation of the quantum instruction set (ISA), microarchitecture, error-correction middleware, and control electronics.
A leading position in real-time error correction
Team members resolved the error-accumulation challenge that had troubled the field for a decade and were the first to reduce real-time surface-code decoding latency to under one microsecond. This technical benchmark places the company at the international forefront of scalable quantum error-correction control.
Technical strength benchmarked against global leaders
In quantum-system simulation, instruction-set optimization, and related fields, team members have broken world records multiple times and compete head-to-head technically with international leaders including Google, NVIDIA, and DeepMind in real-time decoding and systems.
Quantum design automation
Team members built an automated design workflow from quantum chips to quantum microarchitecture and pursue independent R&D of full-flow simulation optimization and physical verification tools. Some tools deliver internationally leading performance, providing methods and tool support for physical-layer optimization of fault-tolerant quantum computing systems.
High-speed, high-precision control system
The hardware-software co-designed room-temperature control architecture supports independent development of high-density, low-latency, low-noise quantum control electronics. Built on high-speed FPGAs, high-precision digital-to-analog and analog-to-digital converters, and a self-defined synchronized clock network, the system can control and rapidly read out large-scale qubits in parallel. Integrated low-latency signal processing and decision logic supports high-fidelity waveform generation and quantum-state readout, determines qubit states in sub-microsecond time, and triggers rapid reset and dynamic feedback for physical qubits.

