Combined Dynamic Random-Access Encryption Devices
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Solution Overview
Problem
Current encryption systems face challenges in providing robust, platform-independent security for diverse network environments, especially with the increasing mobility and vulnerability of portable storage devices, which require efficient and secure data transmission and storage solutions that protect against unauthorized access.
Innovation Solution
The development of combined devices and systems that utilize executable coded cipher keys for encrypting and decrypting data, incorporating forward error correction, sub-channel encoding, and dynamic key management to ensure secure data transmission and storage, while maintaining confidentiality and integrity across various platforms and environments.
Engineering Contradictions & Design Principles
Engineering Contradiction Analysis
1Reliability
If standard encryption algorithms are used, then data security is provided, but platform independence and adaptability to diverse network environments are limited
Solution Approach 1:
The encryption system is designed to operate across multiple platforms and network environments through standardized interfaces and protocols. The device implements universal encryption functions that can be deployed on different hardware and software platforms, providing consistent security performance across diverse environments including portable storage devices, network communications, and various operating systems.
Solution Approach 2:
The system allows dynamic adjustment of encryption parameters such as key length, algorithm selection, and security levels to adapt to different platform requirements and threat models. This enables the same encryption device to maintain optimal security performance across varied network environments and platform configurations.
2Ease of operation
If portable storage devices are made more mobile, then accessibility is improved, but vulnerability to unauthorized access increases
Solution Approach 1:
The encryption key is divided into multiple segments or shares that are distributed across different locations or devices. To access the encrypted data, a sufficient number of key segments must be combined, providing multi-factor authentication. This segmentation approach maintains portability while significantly increasing security against unauthorized access, as losing or compromising a single device does not expose the complete key.
Solution Approach 2:
Encryption and key distribution are performed in advance before the portable storage device is used or transferred. Security credentials and encrypted data are prepared beforehand with appropriate access controls, ensuring that even if the device is lost or stolen, the data remains protected without requiring additional security measures at the point of loss.
3Reliability
If encryption complexity is increased, then security is enhanced, but processing efficiency and speed are reduced
Solution Approach 1:
The encryption system dynamically adjusts the level of security and processing intensity based on the operational context, data sensitivity, and available computational resources. For example, less sensitive data or low-risk environments may use lighter encryption schemes for faster processing, while highly sensitive data triggers more robust encryption algorithms. This dynamic adaptation maintains security while optimizing processing efficiency for different scenarios.
Data Source
AI summary
Devices that conceal transmission(s) transmitted to and/or reveal transmission(s) received from these devices comprising at least one executable coded cipher key(s) at least one executable coded encryption key (ECEK) device that securitizes transmission(s) that uses executable coded key(s), and at least one executable coded decryption key (ECDK) device that reveals transmission(s) such that a combined device is a RDDS/ECDK device that transmits randomized data with data sub-channels and with ECEKs; and that also utilizes at least one executable coded cipher key(s), such that transmission(s) sent to an encrypter/decrypter memory that stores transmission(s) while the transmission(s) is concealed and/or revealed. When concealing/revealing operation(s) are completed the transmission(s) is sent to at least one transmitter such that the concealing/revealing operation of the transmission(s) is controlled and manipulated by the executable coded cipher key(s), wherein the executable coded cipher key(s) remain in the computer memory long enough to achieve securitization completion.


