Dual-Network Micro-Data Transfer for Interception-Resistant Transactions
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Solution Overview
Problem
Existing data transmission systems lack robust security measures, making them vulnerable to interception, which can lead to financial loss and compromised identities.
Innovation Solution
A system architecture that bifurcates data transmission using a quantum processor to randomly reorder micro-data, transmitted simultaneously to two IP addresses with confirmatory checks, ensuring enhanced security through unpredictable data ordering and authorization verification.
Engineering Contradictions & Design Principles
Engineering Contradiction Analysis
1Reliability
If data is transmitted using conventional single-channel systems, then transmission simplicity is maintained, but security vulnerability increases
Solution Approach 1:
The patent segments the data transmission into multiple independent channels (first transmission network and second transmission network) carrying different data portions. This segmentation ensures that interception of one channel does not compromise overall data security, while maintaining the ability to reconstruct complete data from both channels.
Solution Approach 2:
The patent introduces a temporal dimension to data transmission by transmitting different data portions at different times through different networks. The receiving system reconstructs data by combining portions received at different times, adding a time dimension to the transmission architecture and enhancing security against interception.
2Reliability
If data is bifurcated into micro-data for enhanced security, then interception resistance improves, but data processing complexity increases
Solution Approach 1:
The patent divides the original data into multiple micro-data portions that are transmitted separately through different networks. Each portion is small enough to be secure if intercepted individually, but collectively they reconstruct the complete data set, balancing security with processing feasibility.
Solution Approach 2:
The patent implements feedback mechanisms where the receiving system receives confirmation of data portion receipt and sends acknowledgment signals back to the transmitting system. This feedback ensures reliable reassembly of data portions and handles transmission errors, simplifying the overall processing complexity despite the bifurcation approach.
3Reliability
If quantum processors are used for random reordering of micro-data, then security enhancement is achieved, but computational resource requirements increase
Solution Approach 1:
The patent performs the quantum-based random reordering of micro-data portions before transmission begins. The quantum processor generates a random permutation of data portions in advance, which is then used to scramble the data during transmission. This preliminary action ensures that even if transmission channels are monitored, the data cannot be interpreted without the corresponding random ordering key.
Solution Approach 2:
The patent utilizes quantum mechanical properties (superposition and entanglement) to create a random ordering parameter that cannot be predicted or replicated. By changing the state of quantum systems to generate random permutations, the system achieves high-level security without requiring continuous quantum processing during transmission, thereby reducing overall energy consumption compared to continuous quantum computation.
Data Source
AI summary
Systems and methods for a system architecture for supporting bifurcated data transmission are provided. The system architecture may include a point-of-sale (“POS”) device. The system architecture may include a central server. The POS device may break up a transaction request received from a requestor into micro-data. Each micro-data may include a tiny portion of the transaction request and a header. The header may identify the transaction request and a number that identifies a location of the micro-data within the transaction request. The POS device may send the micro-data to a quantum processor for arranging the micro-data in a queue in a random order. The POS device may also compile a confirmatory data packet including data identifying the point-of-sale device and a total number of the micro-data. The confirmatory data packet and the micro-data, in the random order, may be transmitted to the central server.


