Improving Behavior Monitoring of Free-Moving Dairy Cows Using Noninvasive Wireless EEG Approach and Digital Signal Processing Techniques

Author:

Silva Ana Carolina de Sousa1ORCID,Arce Aldo Ivan Céspedes1,Arteaga Hubert2,Sarnighausen Valeria Cristina Rodrigues3,Atzingen Gustavo Voltani von4ORCID,Costa Ernane José Xavier1ORCID

Affiliation:

1. Basic Science Department, College of Zootechnics and Food Engineering, University of São Paulo, Sao Paulo 13635-900, Brazil

2. Escuela de Ingeniería de Industrias Alimentarias, Universidad Nacional de Jaén, Carretera Jaén-San Ignacio Km 24-Sector Yanuyacu, Jaén 06801, Peru

3. Bioprocess and Biotecnology Department, School of Agriculture, São Paulo State University, Rua Dr. José Barbosa de Barros, 1780, Jardim Paraíso, Botucatu 18610-307, Brazil

4. Federal Institute of Sao Paulo, Piracicaba 13400-000, Brazil

Abstract

Electroencephalography (EEG) is the most common method to access brain information. Techniques to monitor and extract brain signal characteristics in farm animals are not as developed as those for humans and laboratory animals. The objective of this study was to develop a noninvasive method for monitoring brain signals in cattle, allowing the animals to move freely, and to characterize these signals. Brain signals from six Holstein heifers that could move freely in a paddock compartment were acquired. The control group consisted of the same number of bovines, contained in a climatic chamber (restrained group). In the second step, the signals were characterized by Power Spectral Density, Short-Time Fourier Transform, and Lempel–Ziv complexity. The preliminary results revealed an optimal electrode position, referred to as POS2, which is located at the center of the frontal region of the animal’s head. This positioning allowed for attaching the electrodes to the front of the bovine’s head, resulting in the acquisition of longer artifact-free signal sections. The signals showed typical EEG frequency bands, like the bands found in humans. The Lempel–Ziv complexity values indicated that the bovine brain signals contained random and chaotic components. As expected, the signals acquired from the retained bovine group displayed sections with a larger number of artifacts due to the hot 32 degree C temperature in the climatic chamber. We present a method that helps to monitor and extract brain signal features in unrestrained bovines. The method could be applied to investigate changes in brain electrical activity during animal farming, to monitor brain pathologies, and to other situations related to animal behavior.

Funder

Sao Paulo State Research Foundation

Publisher

MDPI AG

Subject

Fluid Flow and Transfer Processes,Computer Science Applications,Process Chemistry and Technology,General Engineering,Instrumentation,General Materials Science

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