Please use this identifier to cite or link to this item: https://rda.sliit.lk/handle/123456789/3525
Title: Advancing Canine Health and Care: A Multifaceted Approach using Machine Learning
Authors: Wimukthi, Y
Kottegoda, H
Andaraweera, D
Palihena, P
Fernando, H
Kasthurirathnae, D
Keywords: Transfer learning
Reinforcement learning
Artificial neural network
Convolutional Neural Network
Image processing
Issue Date: 26-Jun-2023
Publisher: IEEE
Citation: Y. Wimukthi, H. Kottegoda, D. Andaraweera, P. Palihena, H. Fernando and D. Kasthurirathnae, "Advancing Canine Health and Care: A Multifaceted Approach using Machine Learning," 2023 5th International Congress on Human-Computer Interaction, Optimization and Robotic Applications (HORA), Istanbul, Turkiye, 2023, pp. 1-6, doi: 10.1109/HORA58378.2023.10155781.
Series/Report no.: 2023 5th International Congress on Human-Computer Interaction, Optimization and Robotic Applications (HORA);
Abstract: This research paper proposes a comprehensive approach to enhance the well-being of dogs through a range of innovative technologies. Firstly, we develop an automated system for dog breed and age identification using a Convolutional Neural Network (CNN) and a transfer learning model. This system aims to provide an efficient and reliable solution for dog owners and new adopters who are interested in discovering more about their canine companions. Secondly, we propose the development of a system that uses Reinforcement Learning to generate personalized meal plans based on a variety of factors such as the dog's breed, age, weight, health status, and emotional state. The system aims to provide dog owners with a reliable and effective tool for generating personalized meal plans that will enhance their pets' overall health and well-being. Thirdly, we present a dog disease recognition application that utilizes an artificial neural network (ANN) for identifying dog diseases based on their symptoms. Lastly, we introduce a real-time remote dog monitoring system using loT devices with edge computing to detect aggressive and anxious sounds. Our system provides an accurate classification of dog sounds related to aggression and anxiety, which can help dog owners detect and respond to potential issues early on. This research aims to provide dog owners and veterinarians with a range of technologies that can help them better understand and care for their furry friends.
URI: https://rda.sliit.lk/handle/123456789/3525
ISSN: 979-8-3503-3752-5
Appears in Collections:Department of Computer Science and Software Engineering
Research Papers - Dept of Computer Science and Software Engineering
Research Papers - IEEE

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