In vivo estimation of chicken breast and thigh muscle weights using multi-atlas-based elastic registration on computed tomography images.

IF 1.7 3区 农林科学 Q2 AGRICULTURE, DAIRY & ANIMAL SCIENCE British Poultry Science Pub Date : 2025-10-01 Epub Date: 2025-03-21 DOI:10.1080/00071668.2025.2472903
Á Csóka, S E Simon, T P Farkas, S Szász, Z Sütő, Ö Petneházy, G Kovács, I Repa, T Donkó
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Abstract

1. This study employed an automated estimation method for quantitatively assessing valuable meat parts in broiler chickens. This involved the segmentation of computed tomography (CT) images through elastic registration, utilising feature and model selection.2. Sixty Tetra HB colour broiler chickens (30 males and 30 females) were randomly selected and examined by CT at 10 weeks of age (live weight: 2560 ± 400 g). The animals were slaughtered, and their breast and thigh muscles were dissected and weighed (thigh and breast weights were 90 ± 19 g and 337 ± 58 g). Multi-atlas registration was used for segmentation, followed by feature extraction (256 features/individual) from the CT images.3. Four different regression analysis techniques (linear, PLS, lasso and ridge) with and without feature selection were applied to the collected data with k-fold cross-validation for estimating the thigh and breast muscle weights. The feature selection produced significantly better results in all cases.4. Among the analysis techniques, lasso and ridge regression performed the best for both muscle groups (thigh and breast muscles). These were as follows: lasso for breast: r2 = 0.993, RMSE = 4.87 g; ridge for breast: r2 = 0.995, RMSE = 4.03 g; lasso for thigh: r2 = 0.976, RMSE = 2.94 g; and ridge for thigh: r2 = 0.965, RMSE = 3.53 g.5. The results demonstrated the effectiveness of the automated method, initially tested on rabbits, in accurately estimating valuable meat parts of broiler chickens. The robust performance of the selected regression models underscores the potential for widespread application in poultry production, offering a reliable and efficient means of quantitative assessment.

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基于多图集的计算机断层扫描图像弹性配准在体内估计鸡胸肌和大腿肌的重量。
1. 本研究采用自动估算法对肉鸡有价值部位进行定量评估。这涉及到计算机断层扫描(CT)图像的分割,通过弹性配准,利用特征和模型选择。2 .随机选取10周龄(活重2560±400 g) Tetra HB彩色肉鸡60只(公30只,母30只),进行CT检查,屠宰后解剖胸部和大腿肌肉并称重(大腿和乳房重量分别为90±19 g和337±58 g),采用多图谱配准进行分割,然后从CT图像中提取特征(256个特征/只)。采用四种不同的回归分析技术(线性、PLS、lasso和ridge)对收集的数据进行k倍交叉验证,以估计大腿和乳房肌肉重量。特征选择在所有情况下都产生了明显更好的结果。在分析技术中,套索和脊回归对两个肌群(大腿和乳房肌群)的效果最好。乳用套索:r2 = 0.993, RMSE = 4.87 g;胸脊:r2 = 0.995, RMSE = 4.03 g;大腿套索:r2 = 0.976, RMSE = 2.94 g;大腿脊:r2 = 0.965, RMSE = 3.53 g.5。结果证明了自动化方法的有效性,该方法最初在兔子身上进行了测试,可以准确估计肉鸡的有价值的肉部分。所选回归模型的稳健性能强调了在家禽生产中广泛应用的潜力,提供了可靠和有效的定量评估手段。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
British Poultry Science
British Poultry Science 农林科学-奶制品与动物科学
CiteScore
3.90
自引率
5.00%
发文量
88
审稿时长
4.5 months
期刊介绍: From its first volume in 1960, British Poultry Science has been a leading international journal for poultry scientists and advisers to the poultry industry throughout the world. Over 60% of the independently refereed papers published originate outside the UK. Most typically they report the results of biological studies with an experimental approach which either make an original contribution to fundamental science or are of obvious application to the industry. Subjects which are covered include: anatomy, embryology, biochemistry, biophysics, physiology, reproduction and genetics, behaviour, microbiology, endocrinology, nutrition, environmental science, food science, feeding stuffs and feeding, management and housing welfare, breeding, hatching, poultry meat and egg yields and quality.Papers that adopt a modelling approach or describe the scientific background to new equipment or apparatus directly relevant to the industry are also published. The journal also features rapid publication of Short Communications. Summaries of papers presented at the Spring Meeting of the UK Branch of the WPSA are published in British Poultry Abstracts .
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