Anatomical Structure Simulation for Compression and Position Feedback

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Solution Overview

Problem

Existing medical simulations and visualizations lack the ability to provide therapeutic users with actionable feedback and realistic representations of how positional changes and compressions affect organs and anatomical structures, limiting their effectiveness in planning and predicting medical interventions.

Innovation Solution

A computer-assisted method that simulates positional changes and compressions on organs using advanced processors, imaging technologies, and interactive 3D virtual environments, providing real-time feedback through visual, acoustic, and haptic mechanisms to guide therapeutic users in optimizing organ positions and treatments.

Engineering Contradictions & Design Principles

VSEngineering Contradiction Analysis

1Loss of information

If visualizations and simulations are purely illustrative, then they provide a simple representation of information, but they fail to provide actionable feedback to therapists

Engineering Contradiction:
Improveactionable feedbackVSAvoidsimulation system
Core Design Contradiction:
Loss of informationVSDevice complexity

Solution Approach 1:

The patent implements a feedback mechanism that provides actionable instructions to therapists based on simulated organ positions. The system analyzes the simulated state of organs and delivers specific feedback guidance, transforming the simulation from a passive visual representation into an active therapeutic tool that guides treatment decisions and actions.

Inventive Principle:
Principle #23Feedback

2Reliability

If complex simulations are implemented to accurately represent physiological processes, then therapeutic understanding is improved, but the system becomes more complex and harder to operate

Engineering Contradiction:
Improvephysiological simulation accuracyVSAvoiduser interface
Core Design Contradiction:
ReliabilityVSEase of operation

Solution Approach 1:

The patent introduces an intermediary processing layer that translates complex physiological simulation data into simplified visual representations and actionable feedback. This intermediary layer handles the complexity of physiological models internally while presenting simplified, easy-to-interpret information to the user, bridging the gap between computational complexity and user-friendly operation.

Inventive Principle:
Principle #24Intermediary (Mediator)

3Adaptability or versatility

If real-time interactive 3D visualization is provided, then user understanding of anatomical changes is enhanced, but computational resources and processing time increase

Engineering Contradiction:
Improveinteractive visualizationVSAvoidcomputational power
Core Design Contradiction:
Adaptability or versatilityVSUse of energy by moving object

Solution Approach 1:

The patent implements optimized simulation techniques that calculate only the necessary physiological parameters and anatomical changes relevant to the current therapeutic context. Rather than simulating all possible physiological processes simultaneously, the system selectively computes partial sets of data needed for specific therapeutic scenarios, reducing overall computational burden while maintaining visualization quality.

Inventive Principle:
Principle #16Partial or excessive action

Data Source

PatentEP4607534A1Computer assisted method for controlling biophysical operations of anatomical structures with feedback mechanism
Publication Date: 2025.08.27 NEW WORLD ANATOMY UG
  • EP4607534A1 patent drawing
  • EP4607534A1 patent drawing

AI summary

The computer-assisted method described in this patent claim represents an innovative method for simulating and visualizing the complex effects of positional changes and compressions on organs in the human body and provides feedback in the form of a signal. The goal is to provide therapeutic users—such as physicians, surgeons, therapists, and medical professionals—with a deeper understanding of the physiological processes in the body, particularly with regard to the interactions between different organs under altered physical conditions. In summary, this computer-assisted method offers an advanced way of analyzing and visualizing the effects of physical changes in the human body, which can be of great benefit for therapeutic applications.It enables precise planning and prediction of medical interventions, thus contributing to improving patient care and, above all, providing feedback to the therapist or user.