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AI Patient Monitoring System (Vitals + Fall Detection)

4TH YEAR• AI/ML• HARD

Problem statement

In hospitals and home care, continuous monitoring of elderly or critical patients is challenging; falls and abnormal vitals may go unnoticed.

Abstract

This system combines a wearable sensor node measuring heart rate and motion with a bed-side processor running AI models. The node sends vitals and accelerometer data wirelessly. The processor detects falls from IMU patterns and checks for abnormal vital ranges, sending alerts via SMS/app to caregivers.

Components required

  • Wearable microcontroller (ESP32 / nRF52)
  • Pulse and temperature sensors
  • IMU/accelerometer sensor
  • Gateway device (Raspberry Pi / PC)
  • Wi-Fi/BLE communication
  • SMS/app notification service

Block diagram

Wearable Sensors (Pulse, Temp, IMU)
➜
Wearable Node
➜
Wireless Link
➜
Gateway with AI Models
➜
Alert System to Caregivers

Working

The wearable node periodically measures vitals and streams IMU readings. The gateway runs scripts that analyze vitals for out-of-range values and classify IMU sequences using a trained model to detect falls. When an event occurs, the system records data and sends alerts to registered mobile numbers or a nursing station dashboard.

Applications

  • Elderly care monitoring
  • Hospital step-down units
  • Rehabilitation centers
  • Base for medical IoT products