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Ignoring what we don't know in accelerometer-based behaviour classification: the open-set recognition problem.
Oakleigh Wilson1, Dave Schoeman1, Bence Ferdinandy2
1School of Science, Technology and Engineering, University of the Sunshine Coast, Sunshine Coast, QLD 4556, Australia.
The Journal of Experimental Biology
|January 2, 2026
Summary
Supervised machine learning for animal behavior classification struggles with novel behaviors. Binary one-versus-all models offer a more conservative approach to handling unknown activities from accelerometer data.
Area of Science:
- Animal behavior analysis
- Machine learning applications
- Bio-logging technology
Background:
- Supervised machine learning is widely used for classifying animal behaviors using accelerometer data.
- Current models assign data to predefined categories but fail to recognize novel behaviors, leading to overprediction of known classes.
- This limitation, known as open-set recognition, is an underexplored challenge in accelerometer-based behavior classification.
Purpose of the Study:
- To describe the open-set recognition problem in animal behavior classification using accelerometers.
- To assess four potential solutions for addressing this limitation.
- To provide recommendations for improving the reliability of behavior classification models.
Main Methods:
- Evaluation of a multiclass model with an 'other' category.
- Assessment of threshold-based models.
- Analysis of one-class models.
- Implementation and testing of binary one-versus-all models.
Main Results:
- Traditional multiclass models exhibit high false-positive rates when encountering behaviors not included in the training data.
- Binary one-versus-all models demonstrate a more conservative and reliable performance in open-set scenarios.
- The study highlights significant uncertainty in real-world applications of current classification methods.
Conclusions:
- Open-set recognition is a critical, yet often overlooked, issue in accelerometer-based animal behavior analysis.
- Binary one-versus-all models are recommended as a more robust approach, especially when focusing on specific behaviors.
- Increased awareness of this limitation is crucial for accurate interpretation of animal behavior data.
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