Code Table Signaling for Adaptive Network Authentication Encoding
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Solution Overview
Problem
Current data communication systems face challenges in optimizing signal integrity and adaptability to varying communication environments, particularly in managing bit error rates and data throughput across different industry and regulatory standards.
Innovation Solution
The implementation of Optimized Code Table Signaling (OCTS) for both digital and analog data streams, which transforms binary inputs into multi-valued vectors, allowing for dynamic management of bit error rates, data throughput, and signal integrity through the use of pre-computed tables and adaptive code table selection based on environmental characteristics.
Engineering Contradictions & Design Principles
Engineering Contradiction Analysis
1Reliability
If traditional data communication schemes with standard modulation and encoding techniques are used, then industry compatibility is maintained, but signal integrity and adaptability to varying communication environments are insufficient
Solution Approach 1:
The patent implements dynamic code table selection where the system adaptively chooses different code tables based on communication environment characteristics. The encoder and decoder can switch between multiple pre-defined code tables (e.g., Code Table A, Code Table B, Code Table C) depending on channel conditions, making the system flexible and adaptive rather than static.
Solution Approach 2:
The patent changes the fundamental parameter of code representation by using optimized code tables that map binary data to non-binary symbols (e.g., quaternary, octal, or hexadecimal symbols). This parameter change enables better signal integrity through optimized symbol mapping and improves adaptability by allowing selection of different code tables suited for different communication conditions.
2Productivity
If optimized code table signaling is implemented to improve signal integrity and adaptability, then bit error rates are reduced and data throughput is optimized, but dependency on specific industry and regulatory standards increases
Solution Approach 1:
The patent creates a universal optimized code table signaling framework that can operate across different communication standards and environments. The system uses a family of code tables that can be selected based on the specific communication context, making the OCTS system multi-functional and adaptable to various standards while maintaining independence from any single standard's constraints.
Solution Approach 2:
The patent employs pre-computed optimized code tables that are prepared in advance for different communication scenarios. These pre-computed tables enable the system to quickly adapt to varying conditions without real-time computation, improving data throughput while maintaining flexibility across different standards and environments.
3Reliability
If adaptive code table selection is used to manage bit error rates dynamically, then communication reliability improves, but system complexity increases
Solution Approach 1:
The patent implements dynamic code table selection where the system adaptively chooses different code tables based on communication environment characteristics. The encoder and decoder can switch between multiple pre-defined code tables (e.g., Code Table A, Code Table B, Code Table C) depending on channel conditions, making the system flexible and adaptive rather than static.
Solution Approach 2:
The system uses feedback mechanisms to monitor communication channel conditions and adjust code table selection accordingly. By observing bit error rates and channel quality, the system dynamically selects the most appropriate code table, improving reliability while keeping complexity manageable through rule-based adaptation.
Data Source
AI summary
In various embodiments, a system comprising a network interface, a processor, and a non-transient memory medium operatively coupled to the processor is disclosed. The memory medium is configured to store a plurality of instructions configured to program the processor to receive a digital bit stream, transform the digital bit stream to an encoded digital bit stream. The encoded digital bit stream comprises at least one of a gateway channel, a composite channel, or a data channel, and any combination thereof, and provides the encoded digital bit stream to the network interface for transmission. A non-transitory computer-readable memory medium and a computer-implemented method also are disclosed.


