CattleEyeView : A Multi-Task Top-down View Cattle Dataset for Smarter Precision Livestock Farming

Ong, Kian Eng and Retta, Sivaji and Srinivasan, Ramarajulu and Tan, Shawn and Liu, Jun (2024) CattleEyeView : A Multi-Task Top-down View Cattle Dataset for Smarter Precision Livestock Farming. In: 2023 IEEE International Conference on Visual Communications and Image Processing (VCIP) :. 2023 IEEE International Conference on Visual Communications and Image Processing, VCIP 2023 . Institute of Electrical and Electronics Engineers Inc., KOR. ISBN 9798350359855

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Abstract

Cattle farming is one of the important and profitable agricultural industries. Employing intelligent automated precision livestock farming systems that can count animals, track the animals and their poses will raise productivity and significantly reduce the heavy burden on its already limited labor pool. To achieve such intelligent systems, a large cattle video dataset is essential in developing and training such models. However, many current animal datasets are tailored to few tasks or other types of animals, which result in poorer model performance when applied to cattle. Moreover, they do not provide top-down views of cattle. To address such limitations, we introduce CattleEyeView dataset, the first top-down view multi-Task cattle video dataset for a variety of inter-related tasks (i.e., counting, detection, pose estimation, tracking, instance segmentation) that are useful to count the number of cows and assess their growth and well-being. The dataset contains 753 distinct top-down cow instances in 30,703 frames (14 video sequences). We perform benchmark experiments to evaluate the model's performance for each task. The dataset and codes can be found at https://github.com/AnimalEyeQ/CattleEyeView

Item Type:
Contribution in Book/Report/Proceedings
Additional Information:
Publisher Copyright: © 2023 IEEE.
Uncontrolled Keywords:
/dk/atira/pure/subjectarea/asjc/1700/1705
Subjects:
?? countingcowdatasetdetectioninstance segmentationpose estimationtrackingcomputer networks and communicationscomputer vision and pattern recognitionhardware and architecturesignal processingmedia technology ??
ID Code:
224986
Deposited By:
Deposited On:
14 May 2025 09:35
Refereed?:
Yes
Published?:
Published
Last Modified:
17 May 2025 01:45