Multi-Point Event Communication Using Potential Energy Synchronization
Find Innovative SolutionsGenerate Solutions
Solution Overview
Problem
Existing computers face challenges in synchronously merging multiple parameters describing complex events due to asynchronous data operations, leading to exponential computational requirements and resource consumption.
Innovation Solution
A multi-point communication device utilizing random paths and communication terminals that oscillate in potential energy, connecting when a potential energy difference exceeds a threshold, forming a network to describe and predict events.
Engineering Contradictions & Design Principles
Engineering Contradiction Analysis
1Adaptability or versatility
If existing computers merge multiple parameters into a single operation set to describe events, then event description capability is improved, but computational requirements increase exponentially
Solution Approach 1:
The patent divides the event description system into multiple independent communication terminals, each handling specific parameters. Instead of merging all parameters into a single operation set, the system segments them across distributed terminals that operate independently and communicate through potential energy differences, avoiding exponential computational growth.
Solution Approach 2:
The patent introduces a new dimension of potential energy as the communication medium between terminals. By transforming parameter communication into potential energy differences, the system enables parallel processing across multiple dimensions rather than sequential processing in a single computational space, reducing overall computational burden.
2Ease of operation
If existing computers use asynchronous data operations for event parameters, then operational flexibility is improved, but synchronization capability deteriorates
Solution Approach 1:
The patent implements a feedback mechanism where communication terminals continuously monitor potential energy differences and adjust their states accordingly. This feedback loop enables asynchronous terminals to automatically synchronize their operations based on real-time potential energy conditions, maintaining both flexibility and reliability.
Solution Approach 2:
The patent changes the fundamental parameter used for communication from traditional data signals to potential energy differences. This parameter transformation allows terminals to operate asynchronously while naturally synchronizing through physical potential energy equilibrium, resolving the contradiction between operational flexibility and synchronization capability.
3Reliability
If communication terminals use high amplitude potential energy to connect random paths, then connection reliability is improved, but energy consumption increases
Solution Approach 1:
The patent applies partial action by using just enough potential energy amplitude to exceed the minimum connection threshold, rather than continuously applying high amplitude energy. This approach achieves reliable connections when needed while minimizing energy consumption during normal operation, avoiding excessive energy use.
Applied Scientific Principles
This section explains which scientific principles are used to turn an abstract innovation direction into a practical engineering solution.
Function Achieved in This Case
The device enables efficient, multi-level description and prediction of complex events with reduced resource consumption by synchronously recording all parameters in a single operation set, supporting short-term and long-term memory functions.
Implementation Method 1
when a communication terminal is activated, the communication terminal oscillates in potential energy, and potential energy of the communication terminals and potential energy of the random paths connected thereto are synchronized
Data Source
AI summary
The present invention relates to multi-point synchronous communication technology, providing a multi-point communication device and its application in the field of artificial intelligence. Specifically, the present invention provides a multi-point communication method and device for describing and predicting events. The device utilizes the principle of multi-point synchronous communication to achieve multi-level description of complex events, description and prediction of timing events, recall, and the device has the functions of short-term memory and long-term memory. The device and the multi-point communication method adopted realize the synchronous description of all parameters of complex events in the same operation set, and avoid the disadvantages of pre-establishing channels between multiple communication terminals and high consumption of communication resources for obtaining channels through global broadcast.

