Vibration Signal Testing via Mobile Terminal Feedback
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Solution Overview
Problem
Existing methods for testing vibration signals in intelligent terminals are inefficient, particularly for complex designs, as they require low testing efficiency for actual vibration effects.
Innovation Solution
A vibration signal testing method that collects user editing operations, generates and outputs vibration signals to a mobile terminal, and adjusts the signals based on actual vibration effects, improving testing efficiency through bidirectional signal transmission.
Engineering Contradictions & Design Principles
Engineering Contradiction Analysis
1Adaptability or versatility
If complex vibration signal designs are completed through desktop applications, then design capability is improved, but testing efficiency for actual vibration effects deteriorates
Solution Approach 1:
The patent introduces a mobile terminal as an intermediary device between the desktop application and the vibration motor. The mobile terminal receives vibration signals from the desktop, performs actual vibration execution, and feeds back test results to the desktop. This mediator enables efficient bidirectional communication and real-time testing, resolving the contradiction between design capability and testing efficiency.
Solution Approach 2:
The system implements a feedback mechanism where the mobile terminal sends test results back to the desktop application. This feedback loop allows designers to immediately evaluate the actual vibration effects of complex signal designs and make real-time adjustments, significantly improving testing efficiency while maintaining full design capability.
2Measurement precision
If vibration signals are tested on mobile terminals, then testing accuracy is improved, but signal transmission complexity increases
Solution Approach 1:
The mobile terminal serves multiple functions: it acts as a signal receiver, vibration executor, test evaluator, and feedback transmitter. By consolidating these functions into a single universal device, the system achieves high testing accuracy without proportionally increasing transmission complexity, as the mobile terminal handles multiple tasks through integrated software and hardware.
3Adaptability or versatility
If real-time adjustments are made to vibration signals, then design flexibility is improved, but testing time increases
Solution Approach 1:
The system enables continuous testing and adjustment cycles by maintaining constant communication between the desktop and mobile terminal. As the user adjusts vibration signal parameters in real-time on the desktop, the modified signals are immediately transmitted to the mobile terminal for execution and evaluation, creating a continuous feedback loop that enhances design flexibility without significant time loss.
Data Source
AI summary
A vibration signal testing method, a vibration signal testing device, a storage medium, and an electronic device are provided. The vibration signal testing method includes: collecting an editing operation of a user, obtaining a first vibration signal according to the editing operation, outputting the first vibration signal to a mobile terminal. The vibration signal testing method further includes determining corresponding test result according to actual vibration effect of the first vibration. By directly using a mobile terminal with vibration function as the output source of vibration signals, the user can experience the actual vibration effect of the designed vibration signal more quickly and conveniently. By combining professional design and production on the desktop with convenient experience on the mobile terminal, vibration signals can flow in both directions, thereby improving the testing efficiency, design efficiency, and design accuracy of vibration signals.

