Surgical Hub Control for Procedure-Aware Modular Device Response
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Solution Overview
Problem
Existing surgical systems face challenges in efficiently integrating and communicating data across different medical facilities, leading to inefficiencies and a lack of situational awareness during surgical procedures.
Innovation Solution
A surgical system comprising a modular device, at least one data source, and a surgical hub that communicably couples to the data source and the modular device, allowing for real-time data exchange and situational awareness adjustments based on procedural progress.
Engineering Contradictions & Design Principles
Engineering Contradiction Analysis
1Reliability
If surgical systems integrate multiple data sources and devices, then situational awareness and operational efficiency are improved, but system complexity and data integration challenges increase
Solution Approach 1:
The surgical hub serves as an intermediary device that centralizes data collection, processing, and distribution. It receives data from multiple sources including surgical devices, sensors, and external systems, processes this information centrally, and distributes relevant data to appropriate devices and users, thereby simplifying the overall system architecture while enhancing situational awareness
Solution Approach 2:
The surgical hub is designed as a universal platform capable of interfacing with multiple different types of surgical devices and data sources through standardized protocols. It performs multiple functions including data aggregation, real-time processing, analytics, and communication across the surgical ecosystem, reducing the need for device-specific integration solutions
2Productivity
If real-time data processing and response adjustment are implemented, then surgical outcomes and error reduction are improved, but computational requirements and data processing time increase
Solution Approach 1:
The system performs preliminary data processing and analytics before surgical procedures begin, pre-processing data from historical records, device calibrations, and procedural templates. This allows the real-time system to focus only on critical dynamic data during surgery, reducing computational burden while maintaining high productivity
Solution Approach 2:
The surgical hub implements selective real-time processing by prioritizing and deeply analyzing only the most critical parameters and data streams that directly impact surgical outcomes, while using lighter processing for less critical data. This partial focus approach optimizes computational resource usage while maintaining high surgical productivity
3Adaptability or versatility
If modular devices communicate with the surgical hub, then operational flexibility and adaptability are improved, but communication protocols and data standardization challenges increase
Solution Approach 1:
The surgical hub implements universal communication interfaces that support multiple protocols and data formats simultaneously. It acts as a protocol translator, converting between different device-specific protocols and a standardized internal format, thereby enabling operational flexibility without requiring each modular device to implement complex communication capabilities
Solution Approach 2:
The hub serves as a mediating communication layer between modular devices and the central control system. It handles protocol conversion, data standardization, and format normalization, allowing modular devices to communicate effectively without direct complex protocol implementations, thus maintaining adaptability while reducing individual device complexity
Data Source
AI summary
A surgical system for use in a surgical procedure is disclosed. The surgical system includes a modular device, at least one data source, and a surgical hub configured to communicably couple to the at least one data source and the modular device. The surgical hub comprises a control circuit configured to receive data from the at least one data source. The data is determinative of a progress status the surgical procedure. The control circuit is further configured to adjust a response to a sensed parameter based on the progress status.


