Code Table Signaling for Network Authentication and Adaptive QOS
Find Innovative SolutionsGenerate Solutions
Solution Overview
Problem
Current data communication systems face challenges in optimizing signal integrity and Quality of Service (QOS) across diverse communication environments, particularly in adapting to industry and regulatory standards, and ensuring secure authentication of users within networks.
Innovation Solution
The implementation of Optimized Code Table Signaling (OCTS) for both digital and analog data streams, which involves encoding binary inputs into multi-valued vectors, managing Bit Error Rate (BER), and dynamically controlling QOS through derived measures, while providing secure authentication mechanisms using pre-distributed information and interleaved channels.
Engineering Contradictions & Design Principles
Engineering Contradiction Analysis
1Reliability
If traditional data communication schemes with standard modulation and encoding techniques are used, then the system operates independently of industry standards, but signal integrity and QOS cannot be optimized across diverse communication environments
Solution Approach 1:
The patent implements dynamic code table selection where the transmitter and receiver can switch between multiple code tables (e.g., Code Table A, Code Table B) based on channel conditions. This allows the system to adapt its encoding/decoding parameters in real-time to maintain signal integrity across varying communication environments, directly resolving the contradiction between reliability and adaptability.
Solution Approach 2:
The system changes physical parameters by selecting different code tables with distinct encoding properties. Each code table represents a different parameter configuration for error correction and data encoding. By transitioning between these parameter sets based on environmental conditions, the system optimizes signal integrity while maintaining adaptability to diverse communication scenarios.
2Reliability
If optimized code table signaling is implemented to enhance signal integrity, then authentication security is improved, but system complexity increases due to multiple code tables and authentication protocols
Solution Approach 1:
The patent implements preliminary authentication by exchanging authentication messages before actual data transmission begins. The transmitter and receiver establish their identities and select appropriate code tables in advance through a predefined authentication protocol. This preliminary action simplifies the overall system by separating authentication from data transmission, reducing the complexity of real-time decision-making during communication.
Solution Approach 2:
The authentication process is segmented into distinct phases: authentication message exchange, code table selection, and data transmission. Each phase uses specific code tables dedicated to that function. This segmentation reduces system complexity by organizing complex authentication and communication functions into manageable, independent modules that can be processed sequentially.
3Productivity
If multiple code tables are used for dynamic QOS control, then data transfer optimization is achieved, but the difficulty of detecting and measuring system state increases
Solution Approach 1:
The patent implements feedback mechanisms where the receiver monitors channel conditions and sends feedback messages to the transmitter indicating the current communication environment quality. Based on this feedback, the transmitter selects the appropriate code table for optimal data transfer. This feedback loop simplifies system state detection by providing explicit information about channel conditions, eliminating the need for complex indirect measurements.
Solution Approach 2:
The patent introduces intermediary control messages that carry information about channel conditions and code table selections between transmitter and receiver. These intermediary messages act as mediators that simplify the detection and measurement of system state by providing structured, explicit information about the current communication environment, making it easier to monitor and adjust data transfer parameters.
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.


