A NEW ROUTE TO QUANTUM COMPUTING

Cloud. Desktop. Beyond.

One DecaQ architecture.
Three ways to move forward.

DECAQ CLOUD01 /

Quantum computing.
On demand.

A managed, paid cloud service for supported quantum workloads.

DECAQ / RESULT WORKSPACE
DecaQ Max-Cut result visualizer showing a binary register and objective scan
Your code. Your workload. Your result.
6Quantum families
400Logical qubits*
Q400 DESKTOP02 /

Quantum computing.
On your desk.

The DecaQ desktop system. Dedicated computation, closer to your data.

Q400 compact white desktop system with a blue illuminated front, supplied product imageQ400 DESKTOP SYSTEM
400Logical qubits*
LocalOn-premise
CUSTOMERS & PARTNERS03 /

A new capability.
A shared opportunity.

For enterprises, research organizations, integrators and distributors.

Build.Customer solutions
Grow.New markets
6 ALGORITHM FAMILIESUP TO 400 LOGICAL QUBITS*OPENQASM WORKFLOWSCLOUD + LOCAL

*Capacity applies to supported DecaQ profiles. Workload, operator and precision limits depend on the selected family.

01 DECAQ CLOUD

Six quantum families.
One connected workspace.

From a defined workload to an inspectable result. Access DecaQ through a managed, paid service with profiles up to 400 logical qubits.

BVHidden structure

Bernstein–Vazirani

Recover an encoded binary relation through structured oracle computation.

DJOracle classification

Deutsch–Jozsa

Distinguish constant and balanced functions within a defined oracle problem.

IPEAdaptive precision

Iterative Phase Estimation

Reconstruct phase through controlled evolution and sequential phase extraction.

QPESpectral computation

Quantum Phase Estimation

Extract eigenphase information from structured controlled evolution.

VQEEnergy & Hamiltonians

Variational Quantum Eigensolver

Explore Hamiltonian and energy-minimization workloads using variational methods.

QAOAGraph optimization

Quantum Approximate Optimization Algorithm

Work with structured combinatorial problems, including Max-Cut.

01 / PROGRAMOpenQASM
02 / SUBMITYour workload
03 / EXECUTEDecaQ runtime
04 / INSPECTSource & evidence
05 / USEYour result

INSIDE THE WORKSPACE

The answer.
And the context
behind it.

Inspect the returned register, explore the objective scan and follow the source associated with the result.

VisualEvidenceSourceRaw JSON

Actual interface image supplied by DecaQ. This is a captured result, not a live computation.

QAOA / MAX-CUT WITNESSSource-bound result presentation

02 Q400 DESKTOP SYSTEM

Q400400 LOGICAL QUBITS*

DEDICATED. LOCAL. DECAQ.

Your desk.
Your data.
Your DecaQ.

Bring the DecaQ computational platform into your own environment. Q400 is a compact desktop system for supported logical quantum workloads.

400 logical qubits*

A dedicated DecaQ environment.

On-premise execution

Keep workloads close to your data.

Connected workflow

Plan your cloud-to-local deployment.

Technical onboarding

Discuss profiles, integration and support.

Configuration, supported profiles and delivery arrangements are confirmed with the DecaQ team.

Develop in the cloud.
Deploy on Q400.

Start with a defined workload. Test the supported profile. Plan the local deployment with DecaQ.

03 CUSTOMERS & PARTNERS

From a first workload
to a wider opportunity.

Bring a computational requirement, an integration plan or a market opportunity. Let’s define the next step together.

/ 01

Enterprise & research

Evaluate a real workload. Define the success criteria and explore cloud or local deployment.

/ 02

System integrators

Connect DecaQ to a wider environment, with a clear scope for interfaces, enablement and support.

/ 03

Distributors

Introduce DecaQ Cloud and Q400 to your market. Start a conversation about customers and territory.

LET’S BUILD THE NEXT STEP

Start with
a conversation.

Tell us what you want to compute, deploy or bring to market.

01 Define the opportunity
02 Align the technical scope
03 Plan a way forward

CONTACT / ONLINE INQUIRY

Your details will be sent to the DecaQ team when you submit.

THE DECAQ NOTEBOOK

Results. Research.
What comes next.

Explore the work behind the platform — from focused algorithm experiments to larger engineering and research programs.

6 updates
DECAQ / 01CONCEPTUAL SCHEMATIC
Research result

ECHO120

120-logical-qubit echo evolution

Forward evolution, a perturbation and reverse evolution — a focused investigation of deep logical computation.

120logical qubits
DECAQ / 02CONCEPTUAL SCHEMATIC
Research result

Simon

Finding a hidden period

Oracle-based hidden-period computation and the relations needed to recover an encoded structure.

Hiddenstructure
DECAQ / 03CONCEPTUAL SCHEMATIC
Engineering milestone

QAOA2000

A larger structured workload

Taking structured Max-Cut research beyond the current 400-logical-qubit service platform.

2,000logical-width research
DECAQ / 04CONCEPTUAL SCHEMATIC
Research program

FeMoco

A route toward quantum chemistry

Hamiltonian structure, phase estimation and the engineering of a chemically motivated computation.

QPEchemistry research
DECAQ / 05CONCEPTUAL SCHEMATIC
Roadmap target

SmartQASM

Think beyond expanded circuits

A program-representation and execution research direction for very large logical workloads.

1 billiongates · target
DECAQ / 06CONCEPTUAL SCHEMATIC
Research program

Quantum Gear

From circuits to useful functions

Connecting application intent, operators, precision and selected outputs to a computational route.

Functionto execution

Scope matters. Research, engineering milestones and development targets are labelled separately. Each note explains what is — and is not — being claimed.

THE DEVELOPMENT HORIZON

A much larger
computational future.

More logical capacity. Larger programs. A higher-level way to express what computation should do.

CURRENT PLATFORM400 logical qubits*DecaQ Cloud + Q400
Development target

ORCA

400,000

LOGICAL QUBITS · TARGET

Investigating an architecture that extends the DecaQ program toward hundreds of thousands of logical computational carriers.

Development target

SmartQASM

1 billion

GATES · PROGRAM-SCALE TARGET

Exploring representation and execution routes for very large logical programs, with explicit accounting of the work performed.

Research direction

Quantum Gear

Beyond
circuits.

FUNCTION-LEVEL COMPUTATION

Connecting functions, operators, precision and selected observables to a defined computational pathway.

Development targets are not current service capacities, delivery commitments or measured execution results. Qubit capacity and program gate count are separate dimensions.

QUANTUM GEAR × QPE × FUNDAMENTAL PHYSICS

What if computation
became a laboratory
for new ideas?

Quantum Gear connects application intent to computational functions. A parallel research direction explores structured operators, spectral models and discrete geometry through phase-estimation methods.

From useful functions to fundamental questions: a program of mathematical models, computational experiments and testable hypotheses.

Spectral operatorsPhase structureDiscrete geometryTOE research

Mathematical and computational research — not a claim of an experimentally established Theory of Everything.

FOR DEVELOPERS

Start with the workload.

Choose the algorithm family, define the computational contract and establish how you will verify the output.

01

Choose a family

BV · DJ · IPE · QPE · VQE · QAOA

02

Confirm the profile

Input, operators, width and precision.

03

Inspect the result

Returned output, source and verification scope.

THIS IS WHERE YOUR NEXT WORKLOAD BEGINS.

Use it in the cloud.
Put it on your desk.
Build what comes next.

Find your next step.

Search this page. No query is sent to a server.

DecaQ result visualizer

Enlarged DecaQ Max-Cut result visualizer

Supplied interface capture. The display is not a live execution.

SLQCS v0.1 · Standard for Logical Quantum Computational Systems

SLQCS v0.1 – Standard for Logical Quantum Computational Systems, candidate technical standard, page 1