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An Artificial Intelligence Copilot for First Response Medicine
Yupeng Zhuo1, Masudur Radman1, Eddie Zhang1
1Edwardson School of Industrial Engineering, Purdue University, West Lafayette, IN 47907, United States.
Military Medicine
|August 6, 2026
Summary
This study introduces an AI Copilot using augmented reality (AR) to guide first responders in emergency medicine. The system enhances procedural accuracy and provides objective skill evaluation in austere field settings.
Area of Science:
- Emergency Medicine
- Artificial Intelligence
- Augmented Reality
Background:
- First responders face challenging environments with limited resources and communication.
- Procedural accuracy is critical for patient outcomes in emergency medicine.
- Existing AI systems are often designed for controlled hospital settings, not field use.
Purpose of the Study:
- To develop and validate an AI Copilot system for first responders in emergency medicine.
- To provide real-time procedural guidance, decision support, and skill evaluation.
- To enhance medical care in austere, resource-limited field environments.
Main Methods:
- A feasibility and technical validation study using an augmented reality (AR) headset and a GPU-equipped microprocessor.
- An edge-based AI system with machine learning models for action recognition, anticipation, visual question answering, hand tracking, and object detection.
- Performance benchmarking against expert-labeled ground truth using the Trauma THOMPSON dataset.
Main Results:
- The MViTv2 model achieved high accuracy for action recognition (89.75%) and anticipation (87.02%).
- The BLIP model demonstrated strong Visual Question Answering accuracy (88.64%) for clinical decision support.
- The system achieved 100% accuracy in differentiating expert and novice skill levels based on hand kinematics.
Conclusions:
- The AI Copilot is optimized for field care (Role 1-2), emphasizing autonomy and resilience.
- The AR-based system offers real-time mentorship, reducing cognitive load and improving procedural accuracy.
- This technology bridges the gap between expert and frontline medical care in high-stakes scenarios.