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Detection of different shapes of lactation curve for milk yield in dairy cattle by empirical mathematical models

机译:基于经验数学模型的奶牛泌乳曲线不同形状检测

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摘要

The study of relationships between mathematical properties of functions used to model lactation curves is usually limited to the evaluation of the goodness of fit. Problems related to the existence of different lactation curve shapes are usually neglected or solved drastically by considering shapes markedly different from the standard as biologically atypical. A deeper investigation could yield useful indications for developing technical tools aimed at modifying the lactation curve in a desirable fashion. Relationships between mathematical properties and lactation curve shapes were analyzed by fitting several common functions (Wood incomplete gamma, Wilmink's exponential, Ali and Schaeffer's polynomial regression, and fifth-order Legendre polynomials) to 229,518 test-day records belonging to 27,837 lactations of Italian Simmental cows. Among the best fits (adjusted r(2) higher than 0.75), the 3-parameter models (Wood and Wilmink) were able to detect 2 main groups of curve shape: standard and atypical. Five-parameter models (Ali and Schaeffer function and the Legendre polynomials) were able to recognize a larger number of curve shapes. The higher flexibility of 5-parameter models was accompanied by increased sensitivity to local random variation as evidenced by the bias in estimated test-day yields at the beginning and end of lactation (border effect). Meaning of parameters, range of their values and of their (co) variances are clearly different among groups of curves. Our results suggest that analysis based on comparisons between parameter values and (co)variances should be done carefully. Comparisons among parameter values and (co)variances could yield more robust, reliable, and easy to interpret results if performed within groups based on curve shape.
机译:用于模拟泌乳曲线的函数的数学特性之间的关系的研究通常仅限于拟合优度的评估。通常通过将明显不同于标准的形状视为生物学上非典型的方法,来彻底地忽略或解决与存在不同泌乳曲线形状有关的问题。更深入的研究可以为开发旨在以理想方式修改泌乳曲线的技术工具提供有用的指示。通过将几种常见函数(伍德不完全伽马,威尔明克指数,阿里和舍弗的多项式回归以及五阶勒让德多项式)拟合到属于意大利西门塔尔奶牛27,837胎的229,518个试验日记录,分析了数学性质与哺乳曲线形状之间的关系。 。在最佳拟合中(调整后的r(2)大于0.75),三参数模型(Wood和Wilmink)能够检测曲线形状的两个主要组:标准曲线和非典型曲线。五参数模型(Ali和Schaeffer函数以及Legendre多项式)能够识别大量曲线形状。 5参数模型的较高灵活性伴随着对局部随机变化的敏感性提高,这可以通过泌乳开始和结束(边界效应)的估计试验日产量的偏差来证明。在曲线组之间,参数的含义,其值的范围及其(共)方差明显不同。我们的结果表明,应该仔细进行基于参数值和(协)方差之间的比较的分析。如果在基于曲线形状的组内执行,则参数值和(协)方差之间的比较可以产生更鲁棒,可靠和易于解释的结果。

著录项

  • 来源
    《Journal of dairy science》 |2005年第3期|p.1178-1191|共14页
  • 作者单位

    Dipartimento di Scienze Zootecniche, Universita di Sassari, Via De Nicola 9, 07100 Sassari, Italy. macciott@uniss.it;

  • 收录信息 美国《科学引文索引》(SCI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 乳品加工工业;
  • 关键词

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