影响印尼奶牛产奶量的非遗传因素研究及FH牛选择校正因子的建立

Agus Susanto, D. Purwantini, Setya Agus Santosa, Dewi Puspita Candrasari
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引用次数: 0

摘要

本研究的目的是确定对BBPTUHPT bataturraden FH奶牛单次泌乳产奶量有重大影响的非遗传变量,并构建变量的校正因子。Baturraden的国家奶牛和饲料育种中心(BBPTUHPT)为该研究提供了次要数据,其中包括2000年至2014年出生的1,015头FH奶牛每次泌乳量的1,942条独特记录(共1,015条泌乳记录)。每次泌乳量、泌乳天数(100-600天)、产犊年龄(575 - 2993天)、泌乳期(泌乳1-6天)和出生季节是研究的变量。采用F检验检验非遗传因素对奶牛泌乳量的影响(方差分析)。季节对每次泌乳产奶量的影响采用学生t检验。利用多元最小二乘法建立校正因子。产犊年龄(1750 ~ 2000天)、挤奶天数(300 ~ 350天)和旱季是构建修正因子的主要基准。使用R程序生成和运行统计测试和图形表示。结果表明,产犊年龄与哺乳期有很强的相关性(r= 0.94)。多因素分析结果显示,挤奶天数、产犊年龄和出生季节均显著影响单次泌乳量,方差占总方差的84.16% (P < 0.01)。实际产奶量的平均值(标准差)为3710.55 kg,而调整后的产奶量的平均值(标准差)为5167.91 kg。调整参数可使泌乳量变化幅度降低57.92%。(43.00% vs 18.09%)。结论:通过纠正挤奶天数、产犊年龄和出生季节的产奶量数据,成功地减少了非遗传变异。
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Study of Non-Genetic Factors Affecting Dairy Cow's Milk Production and the Development of Correction Factors for Selection of FH Cattle in Indonesia
The purpose of this study is to identify the non-genetic variables that have a substantial impact on the milk output per lactation of FH dairy cows at BBPTUHPT Baturraden and to construct variables' correction factors. The National Dairy Cow and Forage Breeding Center (BBPTUHPT) of Baturraden provided the secondary data for the study, which included 1,942 unique records of the amount of milk produced per lactation by 1,015 FH dairy cows born between 2000 and 2014 (a total of 1,015 lactation records). Milk output per lactation, the number of milking days (100–600), the age at calving (575–2,993 days), the lactation phase (lactation 1-6), and the season of birth were among the studied variables. The F test was used to examine the impact of non-genetic factors on the amount of milk cows produce per lactation (ANOVA).  The impact of season on milk output per lactation was examined using a student t-test. Utilizing the multivariate least squares method, correction factors were created. Age at calving, which ranges from 1750 to 2000 days, milking days, which range from 300 to 350, and the dry season serve as the primary benchmarks for constructing correction factors. The R program was used to generate and run statistical tests and graphic representation. The findings indicated that the age of calving and lactation period had a very strong correlation (r= 0.94). The number of milking days, age at calving, and season at birth all significantly affected milk output per lactation, with the variance contributing 84.16 percent to the overall variation, according to the results of multivariate analysis (P < 0.01). Actual milk production had a mean (standard deviation) of 3710.55 kg, while adjusted milk production had a mean (standard deviation) of 5167.91 kg. The adjustment parameters can lower the variation in milk production each lactation by 57.92%. (43.00 percent vs 18.09 percent).  Conclusion: Non-genetic variability was successfully reduced by correcting milk production data on the number of days of milking, age at calving, and season at birth.
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