QUANTUM RELIABILITY INFRASTRUCTURE FOR ADVANCED COMPUTING

Building the path to autonomous compute.

Hyper Orbits is developing the software layer that makes advanced computation adaptive, measurable and verifiable, beginning with quantum error correction.

Quantum computing laboratory with a superconducting processor and control electronics
QUANTUM HARDWARE

Quantum laboratory systems

CAMPAIGN COMPLETE

600 million simulation shots across 24 frozen reproduction cells, covering Beam8, Beam32 and Beam64 on balanced X and Z workloads.

SEE SCOPE & EVIDENCE
OUR MISSION

Make advanced computation decide when more work is worth it.

We begin with quantum error correction, where reliability is urgent and measurable. The wider mission is to help future computing systems choose resources, adapt execution and verify outcomes across quantum and classical hardware.

ORBIT-D adaptive decoder architecture visual
CURRENT TECHNOLOGY

ORBIT-D

Adaptive decoding for qLDPC codes.

ORBIT-D is our first decoder technology: a real belief-propagation and bounded beam-search engine designed to measure uncertainty and vary decoding effort instead of spending the same compute on every syndrome.

  • Real local BP and Beam decoder backend
  • Beam8, Beam32 and Beam64 evaluation paths
  • Measured iterations, expansions and runtime
  • Controller, telemetry and evidence interfaces
EXPLORE ORBIT-D
RELIABILITY OS

One adaptive reliability system.

Seven connected components turn decoding into a controlled, measurable and deployable reliability workflow.

RELIABILITY OS COMPONENTORBIT-D

Decode

Executes adaptive qLDPC decoding.

RELIABILITY OS COMPONENTOrbitTune

Optimise

Searches reliability, latency and compute trade-offs.

RELIABILITY OS COMPONENTOrbitPilot

Adapt

Changes decoding effort as conditions change.

RELIABILITY OS COMPONENTOrbitRoute

Route

Selects the appropriate decoding path or compute level.

RELIABILITY OS COMPONENTOrbitGuard

Protect

Detects regressions and prevents unsafe adaptation.

RELIABILITY OS COMPONENTOrbitVerify

Prove

Preserves telemetry, provenance and validation evidence.

RELIABILITY OS COMPONENTOrbitForge

Deploy

Moves optimised strategies toward GPU, FPGA and hardware-oriented execution.

Together, these components form the foundation of Hyper Orbits Reliability OS.

EXPLORE RELIABILITY OS
EVIDENCE

Engineering progress, measured openly.

600M+

simulation shots recorded

24 / 24

frozen X/Z benchmark cells complete

10K

same-syndrome reference checks

3

beam configurations measured

These measurements establish the engineering foundation for ORBIT-D. Results come from classical simulation and documented experiments; comparative performance claims remain subject to controlled, held-out validation.

HOW WE VALIDATE
WHY HYPER ORBITS

Reliable computation should be adaptive, measurable and verifiable.

Hyper Orbits is building the intelligence between a computational problem and the hardware that executes it: deciding how much reliability work is required, which resources should be used and what evidence must accompany the result.

OUR COMPANY
THE HYPER ORBITS PATH

From quantum reliability to autonomous compute.

QEC is where Hyper Orbits starts. Autonomous, reliable compute is where Hyper Orbits is going.

01

Quantum Reliability

Adaptive QEC, decoding, optimisation and verification.

02

Quantum Compute

Optimise algorithms, QPU resources, classical support and reliability together.

03

Hardware-Neutral Compute

Select and coordinate QPUs, GPUs, CPUs and HPC based on workload requirements.

04

Autonomous Compute

Determine the best computational strategy for the required result, cost, speed and confidence.

WORK WITH US

Build the reliability infrastructure for what comes next.

We are seeking quantum hardware, research, evaluation, compute and grant partners who want to help validate and deploy adaptive reliability technology.

WORK WITH HYPER ORBITS