Automating, Analyzing and Improving Pupillometry with Machine Learning Algorithms

Author:

Kalmár György,Büki Alexandra,Kékesi Gabriella,Horváth Gyöngyi,Nyúl László G.ORCID

Abstract

The investigation of the pupillary light reflex (PLR) is a well-known method to provide information about the functionality of the autonomic nervous system. Pupillometry, a non-invasive technique, was applied to study the PLR alterations in a new, schizophrenia-like rat substrain, named WISKET. The pupil responses to light impulses were recorded with an infrared camera; the videos were automatically processed and features were extracted. Besides the classical statistical analysis (ANOVA), feature selection and classification were applied to reveal the significant differences in the PLR parameters between the control and WISKET animals. Based on these results, the disadvantages of this method were analyzed and the measurement process was redesigned and improved. The automated pupil detection method has also been adapted to the new videos. 2564 images were annotated manually and used to train a fully-convolutional neural network to produce pupil mask images. The method was evaluated on 329 test images and achieved 4% median relative error. With the new setup, the pupil detection became reliable and the new data acquisition offers robustness to the experiments.

Publisher

University of Szeged

Subject

Computer Vision and Pattern Recognition,Software,Computer Science (miscellaneous),Electrical and Electronic Engineering,Information Systems and Management,Management Science and Operations Research,Theoretical Computer Science

Reference23 articles.

1. The interaction between pupil function and cardiovascular regulation in patients with acute schizophrenia

2. Acute psychosis leads to increased QT variability in patients suffering from schizophrenia

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4. Pupilnet: convolutional neural networks for robust pupil detection;Fuhl;arXiv preprint,2016

5. Pupilnet v2. 0: Convolutional neural networks for cpu based real time robust pupil detection;Fuhl;arXiv preprint,2017

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