How It Works

The Digital Twin Architecture. Safe AI by Design.

Fractal creates a synchronized, hyper-optimized digital twin of your structured data — then runs all AI processing on the twin, never on your systems of record.

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The Digital Twin

A Live Replica Built for AI

A Fractal digital twin is a continuously synchronized replica of your databases and systems of record. It is not a backup, a snapshot, or a data warehouse. It is a live, real-time copy that maintains full fidelity with your production data — housed in a separate, protected environment.

Data flows one way: from your source systems into the twin. AI operates exclusively on the twin. If an AI agent hallucinates, gets injected, or produces unexpected writes, the damage is contained to the twin. It never reaches your production databases.

Results can be promoted back to source systems through a controlled, auditable process — but nothing writes back without explicit authorization. This is not a guardrail. It is an architectural guarantee.

One-Way Sync
Source systems feed the twin continuously. The twin never writes back to your databases unless results are explicitly approved through an auditable promotion process.
Safe by design
Full Fidelity
The twin is a complete, real-time replica — not a subset or summary. Every record, every relationship, every field. AI sees the same data your production systems hold.
Real-time replica
Locality Optimization
Data and AI compute are co-located at the point of execution. I/O wait states — the dominant source of AI application latency — are virtually eliminated.
100× faster
Commodity Hardware
Fortune 500 workloads run on 10 small computers costing under $20,000 total — replacing entire server clusters and eliminating cloud dependencies.
90% less cost

The Architecture

Hyper-Optimized for Distributed AI

01

Built for AI, Not Just Transactions

Traditional databases are designed for transactional workloads — point lookups, ACID compliance, concurrent writes. The twin is built for the wide-scan, aggregate, and transform workloads that AI demands. The result is 100× to 1,000,000× better AI performance.

02

Fractal Agent Network

The twin is distributed across a network of Fractal agents — small, self-contained programs each holding the full application stack for a slice of the data. Agents coordinate peer-to-peer. No central broker, no middleware, no orchestration layer.

03

No Cloud Dependency

The twin runs on commodity hardware you control. There is no centralized database, no middleware layer, and no external cloud dependency. Licensing costs for Oracle, VMware, and cloud service layers are eliminated entirely.

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Concerned about the transition? Our onboarding team provides bespoke guidance on twin setup, AI integration, and deployment — so you are never navigating it alone.

Side by Side

AI on Source Systems vs. Fractal Digital Twin

Measured results from production deployments at Fortune 500 scale over five years. Not projections.

DimensionAI on Source SystemsFractal Digital Twin
Data Corruption RiskPresent — AI has direct write access to production databasesZero — AI operates exclusively on the twin
Application SpeedConstrained by database I/O and middleware latency100× — 1,000,000× faster via Locality Optimization
Infrastructure CostData center or cloud: $millions per year10 small computers: $10,000 total
DowntimeHours per monthLess than 30 seconds per year
Vendor Lock-InOracle, VMware, cloud-specific servicesEliminated — runs on any hardware
Time to MarketNew AI applications in monthsNew AI applications in hours or days

Results reflect measured production deployments at Fortune 500 scale over five years — not projections.

See the Difference Yourself

A 90-day proof of concept deploys the Fractal digital twin alongside your current environment, processing your production data. No disruption to existing operations.

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Days 1–14

Twin Setup & Sync

Onboarding team connects Fractal to your source systems and establishes the digital twin. Your production data begins flowing into the twin. Nothing changes for your users or existing systems.

Days 15–60

Parallel AI Operation

AI workloads run against the twin in parallel with your existing systems. You watch cost, speed, and safety metrics accumulate in real time — with your data, on your workloads.

Days 61–90

Validation & Decision

Review the full comparative dataset — performance, cost, and risk posture. Decide whether and when to transition workloads, on your timeline, with full visibility into the numbers.

Post 90 Days

Transition

Move workloads over as you choose. Legacy licensing, cloud spend, and data center costs come off the books as you go. Your source systems remain untouched until you decide otherwise.

Ready to See Safe, Low-Cost AI in Action?

A 90-day proof of concept alongside your existing systems. No disruption. Your data. Real numbers.

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