Identification of Individual Hanwoo Cattle by Muzzle Pattern Images through Deep Learning

Author:

Lee Taejun1,Na Youngjun12ORCID,Kim Beob Gyun1ORCID,Lee Sangrak1ORCID,Choi Yongjun1

Affiliation:

1. Department of Animal Science, Konkuk University, Seoul 05029, Republic of Korea

2. Animal Data Laboratory, Antller Inc., Seoul 05029, Republic of Korea

Abstract

The objective of this study was to identify Hanwoo cattle via a deep-learning model using muzzle images. A total of 9230 images from 336 Hanwoo were used. Images of the same individuals were taken at four different times to avoid overfitted models. Muzzle images were cropped by the YOLO v8-based model trained with 150 images with manual annotation. Data blocks were composed of image and national livestock traceability numbers and were randomly selected and stored as train, validation test data. Transfer learning was performed with the tiny, small and medium versions of Efficientnet v2 models with SGD, RMSProp, Adam and Lion optimizers. The small version using Lion showed the best validation accuracy of 0.981 in 36 epochs within 12 transfer-learned models. The top five models achieved the best validation accuracy and were evaluated with the training data for practical usage. The small version using Adam showed the best test accuracy of 0.970, but the small version using RMSProp showed the lowest repeated error. Results with high accuracy prediction in this study demonstrated the potential of muzzle patterns as an identification key for individual cattle.

Funder

Ministry of Agriculture, Food and Rural Affairs

Ministry of Science and ICT (MSIT), Rural Development Administration (RDA) of South Korea

Publisher

MDPI AG

Subject

General Veterinary,Animal Science and Zoology

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