Facial chick sexing: An automated chick sexing system from chick facial image

IF 5.7 Q1 AGRICULTURAL ENGINEERING
Marta Veganzones Rodriguez , Thinh Phan , Arthur F.A. Fernandes , Vivian Breen , Jesus Arango , Michael T. Kidd , Ngan Le
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引用次数: 0

Abstract

Chick sexing, the process of determining the gender of day-old chicks, is a critical task in the poultry industry due to the distinct roles that each gender plays in production. While effective traditional methods achieve high accuracy, color, and wing feather sexing is exclusive to specific breeds, and vent sexing is invasive and requires trained experts. To address these challenges, we propose a novel approach inspired by facial gender classification techniques in humans: facial chick sexing. This new method does not require expert knowledge and aims to reduce training time while enhancing animal welfare by minimizing chick manipulation. We develop a comprehensive system for training and inference that includes data collection, facial and keypoint detection, facial alignment, and classification. We evaluate our model on two sets of images: Cropped Full Face and Cropped Middle Face, both of which maintain essential facial features of the chick for further analysis. Our experiment demonstrates the promising viability, with a final accuracy of 81.89% on the Cropped Full Face set, of this approach for future practices in chick sexing by making them more universally applicable.
面部小鸡性别鉴定:从小鸡面部图像自动小鸡性别鉴定系统
雏鸡性别鉴定,即确定日龄雏鸡性别的过程,是家禽业的一项关键任务,因为每种性别在生产中扮演着不同的角色。虽然有效的传统方法实现了高精度,但颜色和翅膀羽毛的性别鉴定是特定品种独有的,而排气性别鉴定是侵入性的,需要训练有素的专家。为了解决这些挑战,我们提出了一种受人类面部性别分类技术启发的新方法:面部小鸡性别鉴定。这种新方法不需要专业知识,旨在减少训练时间,同时通过最大限度地减少小鸡操纵来提高动物福利。我们开发了一个全面的训练和推理系统,包括数据收集,面部和关键点检测,面部对齐和分类。我们在两组图像上评估我们的模型:裁剪的全脸和裁剪的中脸,这两组图像都保留了小鸡的基本面部特征,以便进一步分析。我们的实验证明了这种方法的可行性,在裁剪的全面集上的最终准确率为81.89%,通过使其更普遍适用,该方法在未来的小鸡性别鉴定实践中具有很大的可行性。
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CiteScore
4.20
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