Mobile Terminal Parameter Configuration via Dynamic Channel Rate Adaptation
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Solution Overview
Problem
The rapid increase in service rate of mobile terminals leads to increased baseband power consumption, reduced working time, and heightened risks of heat dissipation, primarily due to the current configuration method using a fixed parameter configuration value group corresponding to a maximum channel change rate in high-speed scenarios, even in low-speed or static scenarios.
Innovation Solution
A method and device that dynamically determine the current channel change rate and configure each module of the mobile terminal using a parameter configuration value group corresponding to the specific channel change rate range in the target scenario, rather than a fixed high-speed scenario configuration, thereby optimizing power consumption and heat dissipation.
Engineering Contradictions & Design Principles
Engineering Contradiction Analysis
1Reliability
If a fixed parameter configuration value group corresponding to maximum channel change rate in high-speed scenario is used for all scenarios, then the mobile terminal can handle high-speed scenarios effectively, but baseband power consumption increases sharply and working time is reduced
Solution Approach 1:
The patent implements dynamic parameter configuration by determining the current scenario (high-speed, medium-speed, or low-speed) based on actual channel conditions and selecting the corresponding parameter configuration value group. This replaces the static fixed configuration with a dynamic adaptation mechanism that adjusts parameters according to real-time operational requirements, thereby reducing power consumption when high performance is not needed while maintaining reliability when required.
Solution Approach 2:
The patent changes the parameter configuration values based on the determined scenario. Different parameter sets are applied for different speed scenarios, allowing the system to optimize performance for each specific condition rather than operating with a single conservative parameter set designed for maximum speed. This parameter adaptation directly addresses the power consumption issue by using appropriate parameters only when needed.
2Productivity
If high parameter configuration values are used to ensure performance in high-speed scenarios, then service rate is maintained, but heat dissipation risks increase to 30°C-45°C
Solution Approach 1:
The system dynamically adjusts parameter configuration based on actual operational scenarios, using high performance parameters only when high-speed operation is actually required. This dynamic adaptation prevents unnecessary high power consumption and associated heat generation during medium-speed or low-speed operations, thereby controlling temperature while maintaining productivity capability when needed.
Solution Approach 2:
Different parameter configuration value groups are applied according to the determined scenario, with lower power-consuming parameters used during normal or low-speed operations. This parameter adaptation reduces the thermal load on the system while preserving the ability to achieve high service rates when the scenario requires it, thus managing temperature effectively.
3Use of energy by moving object
If parameter configuration is optimized for low-speed scenarios, then baseband power consumption is reduced, but performance in high-speed scenarios deteriorates
Solution Approach 1:
The system employs dynamic scenario detection and adaptive parameter selection, transitioning between different parameter configuration value groups based on actual channel conditions. This ensures that low power consumption parameters are used during normal operations while high performance parameters are automatically activated when high-speed service is required, resolving the contradiction between energy efficiency and productivity.
Solution Approach 2:
The patent creates a universal parameter configuration system that can adapt to multiple different scenarios (high-speed, medium-speed, low-speed) using a single intelligent control mechanism. This multi-functional approach allows the same system to optimize for different operational requirements, achieving both power efficiency and high performance capability without requiring separate fixed configurations for each scenario.
4Device complexity
If fixed parameter configuration corresponding to maximum channel change rate is used, then configuration simplicity is maintained, but adaptability to different scenarios is poor
Solution Approach 1:
The patent introduces dynamic scenario-based parameter selection that automatically adapts to different operational conditions. The system includes scenario determination logic that detects current channel conditions and selects appropriate parameter configuration value groups, providing excellent adaptability while maintaining configuration simplicity through automated decision-making rather than manual adjustment.
Solution Approach 2:
The system performs self-configuration by automatically determining the current scenario and selecting the appropriate parameter configuration value group without external intervention. This self-service mechanism maintains configuration simplicity while achieving high adaptability, as the system autonomously adjusts its parameters based on real-time channel conditions rather than requiring complex manual configuration or fixed conservative settings.
Data Source
AI summary
Embodiments of the present invention disclose a parameter configuration method and a configuration device for a mobile terminal. A parameter configuration method for a mobile terminal includes: obtaining a current channel change rate; comparing the current channel change rate with a maximum channel change rate and a minimum channel change rate in each scenario respectively; determining a channel change rate range to which the current channel change rate belongs, and setting a scenario corresponding to the channel change rate range as a target scenario; and obtaining a parameter configuration value group corresponding to the channel change rate range in the target scenario according to a corresponding relationship between a preset parameter configuration value group and the channel change rate range, and configuring a corresponding parameter of each module of the mobile terminal by using each parameter configuration value of the parameter configuration value group.


