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Omega deoxyribonucleic acid cryptography key-based authentication.

Chai Wen Chuah1, Jocelyn Tey2, Kamaruddin Malik Mohamad3

  • 1Guangdong University of Science & Technology, Dongguan, China. aiwenchuah@gmail.com.

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|November 27, 2025
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Summary
This summary is machine-generated.

This study introduces omega deoxyribonucleic acid cryptography key-based authentication for resource-constrained devices. This novel DNA cryptography method offers 256-bit security and proven resistance to attacks.

Keywords:
AuthenticationDeoxyribonucleic acid cryptographyDieharder statistical testLow computationalOmega deoxyribonucleic acid cryptography key-based authentication

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Area of Science:

  • Computer Science
  • Cryptography
  • Biotechnology

Background:

  • Deoxyribonucleic acid (DNA) cryptography offers low computational complexity for data protection on resource-constrained devices.
  • Existing literature lacks secure authentication mechanisms specifically for these devices.
  • DNA cryptography leverages biological principles for robust cryptographic ciphers.

Purpose of the Study:

  • To propose a novel authentication design using DNA cryptography for resource-constrained environments.
  • To address the gap in authentication solutions for devices with limited computational power.

Main Methods:

  • Developed an authentication design named omega deoxyribonucleic acid cryptography key-based authentication.
  • Evaluated the collision resistance using the Dieharder statistical test suite.
  • Provided mathematical proof of security against existential forgery under chosen message attacks.

Main Results:

  • The proposed omega DNA cryptography-based authentication method achieves a security level of 256 bits.
  • The authentication mechanism successfully passed the collision resistance tests.
  • The scheme is mathematically proven secure against existential forgery.

Conclusions:

  • The novel omega DNA cryptography key-based authentication is a viable solution for securing resource-constrained devices.
  • The method meets contemporary cryptographic standards and offers robust security.
  • This approach enhances data protection in environments with limited computational resources.