首页> 美国卫生研究院文献>Animals : an Open Access Journal from MDPI >Goat Milk Nutritional Quality Software-Automatized Individual Curve Model Fitting Shape Parameters Calculation and Bayesian Flexibility Criteria Comparison
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Goat Milk Nutritional Quality Software-Automatized Individual Curve Model Fitting Shape Parameters Calculation and Bayesian Flexibility Criteria Comparison

机译:山羊牛奶营养质量软件自动化的单独曲线模型配件形状参数计算和贝叶斯灵活性标准比较

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摘要

The high costs of genotyping normally compel researchers to work with reduced sample sizes. Contextually, population observations may no longer compensate for the lack of sufficient data to fit lactation curves, hindering model efficiency, explicative ability, and predictive potential. Individualized lactation curve analyses may save these drawbacks, but may be time-demanding, which may be prevented through computational automatization. An SPSS model syntax was defined and used to evaluate the individual performance of 49 linear and non-linear models to fit the curve described by the milk components of the milk of 159 Murciano-Granadina does selected for genotyping analyses. Protein, fat, dry matter, lactose, and somatic cell counts curves were evaluated and modelled, while peak and persistence were estimated to maximize the ability to understand and anticipate productive responses in Murciano-Granadina goats, which may translate into improved profitability of goat milk as a product.
机译:基因分型的高成本通常强迫研究人员使用降低的样本尺寸。背景下,人口观察可能不再弥补缺乏足够的数据来适应哺乳曲线,妨碍模型效率,解性能力和预测潜力。个性化哺乳曲线分析可以节省这些缺点,但可能是令人耗时的,这可能通过计算自动化来防止。定义了SPSS模型语法,并用于评估49线性和非线性模型的个性性能,以适应由159个Murciano-Granadina的牛奶的牛奶组分的曲线选择进行基因分型分析。评估和建模蛋白质,脂肪,干物质,乳糖和体细胞计数曲线,而估计峰值和持久性估计最大化理解和预测Murciano-Granadina Goats的高效响应的能力,这可能转化为山羊牛奶的提高盈利能力作为产品。

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