AI Article Synopsis

  • Intoxicated driving leads to approximately 10,000 fatalities each year, prompting the development of smartphone systems that analyze user gait to identify intoxicated individuals and prevent drunk driving.
  • These systems utilize motion sensor data from smartphones, employing machine learning techniques to classify walking patterns, yet previous research hasn't tested which walking styles best reveal intoxication through automated methods.
  • The study compares various classification algorithms (like LSTM, CNN, and Random Forest) on the accuracy of detecting intoxication levels based on different sobriety test walks, finding that smartphone detection is more precise during the decline of intoxication and that normal walks can be as effective as standard sobriety tests.

Article Abstract

Intoxicated driving causes 10,000 deaths annually. Smartphone sensing of user gait (walk) to identify intoxicated users in order to prevent drunk driving, have recently emerged. Such systems gather motion sensor (accelerometer and gyroscope) data from the users' smartphone as they walk and classify them using machine or deep learning. Standard Field Sobriety Tests (SFSTs) involve various types of walks designed to cause an intoxicated person to lose their balance. However, SFSTs were designed to make intoxication apparent to a trained law enforcement officer who manually proctors them. No prior work has explored which types of walk yields the most accurate results when assessed autonomously by a smartphone intoxicated gait assessment system. In this paper, we compare how accurately Long Short Term Memory (LSTM), Convolution Neural Network (CNN), Random Forest, Gradient Boosted Machines (GBM) and neural network classifiers are able to detect intoxication levels of drunk subjects who performed normal, walk-and-turn and standing on one foot SFST walks. We also compared the accuracy of intoxication detection on the ascending (increasing intoxication) vs descending (decreasing intoxication) limbs of drinking sessions (bi-phasic). We found smartphone intoxication sensing more accurate on the descending limb of the drinking episode and that intoxication detection on the normal walks of subjects were just as accurate as the SFSTs.

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Source
http://dx.doi.org/10.1109/EMBC.2019.8857214DOI Listing

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