Packet Spreading Data Transmission With Anonymized Endpoints
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Solution Overview
Problem
Existing data transmission methods over open networks lack sufficient security and privacy, making them vulnerable to interception and exploitation by rogue actors, especially with the advent of quantum computing.
Innovation Solution
The method involves encrypting data packets and pseudo-randomly dividing them into sub-packets, which are then transmitted through separate communications channels to obscured addresses. These sub-packets are reassembled at the endpoint system, decrypted, and re-encrypted to reconstruct the original packet, providing benefits similar to frequency spreading in radio transmission.
Engineering Contradictions & Design Principles
Engineering Contradiction Analysis
1Reliability
If data packets are transmitted through open networks using conventional methods, then network connectivity and data transmission are achieved, but security and privacy are vulnerable to interception and exploitation
Solution Approach 1:
The data packet is divided into multiple sub-packets that are transmitted through separate communications channels. This segmentation ensures that even if one channel is compromised, the integrity of the overall data transmission is maintained, directly addressing the security vulnerability in open networks.
Solution Approach 2:
The patent implements nested encryption where sub-packets are encrypted with inner encryption and outer encryption layers. This nested structure provides multiple levels of security protection, making the data resistant to interception and exploitation by rogue actors while maintaining reliable transmission.
2Object-affected harmful factors
If data packets are encrypted and divided into sub-packets transmitted through multiple channels, then Low Probability of Detection and Intercept are achieved, but device complexity increases
Solution Approach 1:
The packet splitting mechanism divides data into sub-packets that can be hidden among other data traffic, achieving low probability of detection. The segmentation is implemented in a way that distributes complexity across multiple independent channels rather than concentrating it in a single complex system.
Solution Approach 2:
The patent introduces intermediary endpoint systems that facilitate the packet splitting and routing process. These intermediaries manage the complexity of coordinating multiple channels and ensuring proper reassembly, reducing the complexity burden on the original data transmission systems.
3Object-affected harmful factors
If sub-packets are sent through separate communications channels to obscured addresses, then Low Probability of Exploitation is achieved, but loss of time in packet reassembly occurs
Solution Approach 1:
The packet is encrypted and divided into sub-packets in advance before transmission. This preliminary preparation ensures that the receiving system can efficiently reassemble and decrypt the packets without time-consuming operations during the critical transmission phase, reducing overall time loss while maintaining low probability of exploitation.
Solution Approach 2:
The patent implements continuous encryption and reassembly operations that proceed without interruption. The endpoint systems continuously process sub-packets as they arrive, minimizing idle time and ensuring that the useful action of data transmission remains uninterrupted, thereby reducing time loss while maintaining security.
Data Source
AI summary
A packet-spreading data transmission system with anonymized endpoints facilitates enhanced fortified private communications between a plurality of arbitrary devices via a plurality of communication channels or networks. The data transmission system receives at a source endpoint device a message of arbitrary length. The message includes a destination address associated with a destination endpoint device. Both source endpoint device and the destination endpoint device are selected from a plurality of arbitrary devices. The received message are fragmented and agilely transmitted, via a plurality of communication channels, from the source endpoint device to the destination endpoint device.


