Technology brief
What this platform addresses
T. Y. K. E. is a proprietary system for generating truly random numbers (TRNG) intended for secure cryptographic applications in the post-quantum era.
Waste Management
T. Y. K. E. is a proprietary system for generating truly random numbers (TRNG) intended for secure cryptographic applications in the post-quantum era.
Technology brief
T. Y. K. E. is a proprietary system for generating truly random numbers (TRNG) intended for secure cryptographic applications in the post-quantum era.
The challenge
Encryption keys; secure games; simulations; tokenization. Sectors: financial simulations, military-grade encryption, AI randomness, secure gaming, cloud computing.
ARBOK solution
T.Y.K.E. is a proprietary system for generating truly random numbers (TRNG) intended for secure cryptographic applications in the post-quantum era. Unlike traditional pseudorandom number generators (PRNG) or photon-based quantum random number generators (QRNG), T.Y.K.E. uses a novel entropy source — deuterium activity in natural heavy water — captured and processed through a unique algorithm to produce statistically verified, unpredictable, and uncorrelated number streams. It provides an entropy layer for financial simulations, military-grade encryption, AI randomness, secure games, and cloud computing, with easy API integration, cloud scalability, and low hardware dependency. The system directly challenges academic QRNG initiatives such as NIST/CURBy, outperforming them in speed, cost, and reliability, and shifting true randomness from the lab to the field.
Radiation from deuterium in natural heavy water serves as the physical entropy source. A proprietary processing layer with entropy amplification converts this into statistically verified, unpredictable, and uncorrelated number streams. Entropy quality is non-deterministic and physically untraceable, and the output is resistant to Shor's and Grover's quantum algorithms.
Market and application
Demand for verifiably true randomness is accelerating as organizations prepare for the post-quantum transition across financial simulation, defense-grade encryption, AI training and inference, secure gaming, and cloud infrastructure. T.Y.K.E. is positioned against both incumbent PRNG providers and academic photon-based QRNG initiatives such as NIST/CURBy, competing on speed, cost, and ease of integration. As post-quantum cryptography standards push organizations toward stronger entropy sources across finance, government, and cloud sectors, the addressable base extends to any system currently relying on pseudorandom or hardware-QRNG sources for key generation.
T.Y.K.E. is delivered as a cloud-based entropy service rather than a capital equipment sale, so customer economics center on API consumption rather than upfront hardware investment. The core commercial advantage is cost per unit of verified entropy: T.Y.K.E. is positioned at roughly 10–50× lower cost than academic/photon-based QRNG alternatives, with no local hardware to purchase, install, or maintain — shifting the economics from capital-intensive quantum hardware toward a low-friction, usage-based subscription model suited to enterprise and cloud customers.
Use cases
Encryption keys; secure games; simulations; tokenization. Sectors: financial simulations, military-grade encryption, AI randomness, secure gaming, cloud computing.
Cloud-based generation with API integration; no local hardware required. Demo launch scheduled for September 2025.
Optical-Quantum Systems · Post-Quantum Cryptography · AI Randomness Modules · Cloud Vault APIs · Blockchain
T.Y.K.E. is a proprietary system for generating truly random numbers (TRNG) intended for secure cryptographic applications in the post-quantum era. Unlike traditional pseudorandom number generators (PRNG) or photon-based quantum random number generators (QRNG), T.Y.K.E. uses a novel entropy source — deuterium activity in natural heavy water — captured and processed through a unique algorithm to produce statistically verified, unpredictable, and uncorrelated number streams. It provides an entropy layer for financial simulations, military-grade encryption, AI randomness, secure games, and cloud computing, with easy API integration, cloud scalability, and low hardware dependency. The system directly challenges academic QRNG initiatives such as NIST/CURBy, outperforming them in speed, cost, and reliability, and shifting true randomness from the lab to the field.
Encryption keys; secure games; simulations; tokenization. Sectors: financial simulations, military-grade encryption, AI randomness, secure gaming, cloud computing.
Radiation from deuterium in natural heavy water serves as the physical entropy source. A proprietary processing layer with entropy amplification converts this into statistically verified, unpredictable, and uncorrelated number streams. Entropy quality is non-deterministic and physically untraceable, and the output is resistant to Shor's and Grover's quantum algorithms.
| Feature | Specification |
|---|---|
| Entropy source | Radiation from deuterium in natural heavy water |
| Processing layer | Proprietary algorithm with entropy amplification |
| Verified standards | NIST SP 800-90A/B, Diehard tests |
| Output speed | 1–10 Kbps, scalable |
| Compliance | GDPR, SOC2, Post-Quantum Crypto Ready |
| Cloud integration | Supported (with API) |
| Local hardware | Not required (cloud-based generation) |
| Entropy quality | Non-deterministic, physically untraceable |
| Security layer | Resistant to Shor's and Grover's quantum algorithms |
| Customization | Configurable entropy levels, API controls |
| Use cases | Encryption keys, secure games, simulations, tokenization |
Physical entropy source based on deuterium in natural heavy water; proprietary entropy amplification and processing algorithm; cloud-based generation service with API access; no local hardware required.
Versus QRNGs: 10× faster, 10–50× cheaper, better integration. Versus PRNGs: truly unpredictable and not seed-reversible. Versus the NIST-CURBy project: more scalable, commercially viable, and empirically verified. Easy API integration, cloud scalability, and low hardware dependency. Compliant with NIST SP 800-90A/B and Diehard tests, GDPR, SOC2, and post-quantum crypto readiness.
Optical-Quantum Systems · Post-Quantum Cryptography · AI Randomness Modules · Cloud Vault APIs · Blockchain
Cloud-based generation with API integration; no local hardware required. Demo launch scheduled for September 2025.
TRL 6 — Functional prototype validated under real-world conditions. Demo launch scheduled for September 2025.
Demand for verifiably true randomness is accelerating as organizations prepare for the post-quantum transition across financial simulation, defense-grade encryption, AI training and inference, secure gaming, and cloud infrastructure. T.Y.K.E. is positioned against both incumbent PRNG providers and academic photon-based QRNG initiatives such as NIST/CURBy, competing on speed, cost, and ease of integration. As post-quantum cryptography standards push organizations toward stronger entropy sources across finance, government, and cloud sectors, the addressable base extends to any system currently relying on pseudorandom or hardware-QRNG sources for key generation.
T.Y.K.E. is delivered as a cloud-based entropy service rather than a capital equipment sale, so customer economics center on API consumption rather than upfront hardware investment. The core commercial advantage is cost per unit of verified entropy: T.Y.K.E. is positioned at roughly 10–50× lower cost than academic/photon-based QRNG alternatives, with no local hardware to purchase, install, or maintain — shifting the economics from capital-intensive quantum hardware toward a low-friction, usage-based subscription model suited to enterprise and cloud customers.
Independent certification and audit risk for a physically sourced randomness claim; dependency on a stable, uncontaminated heavy-water entropy substrate; competitive response from established PRNG and QRNG vendors as post-quantum standards mature; adoption risk tied to long enterprise procurement cycles in security-critical sectors; regulatory and export-control considerations around cryptographic infrastructure; and execution risk in scaling from demo to a production cloud service.
Optical-Quantum Systems · Post-Quantum Cryptography · AI Randomness Modules · Cloud Vault APIs · Blockchain
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