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Estimation of 305-Days Milk Yield Using Fuzzy Linear Regression in Jersey Dairy Cattle      
Yazarlar
Prof. Dr. Özkan GÖRGÜLÜ
Ahi Evran Üniversitesi, Türkiye
Dr. Öğr. Üyesi Aslı AKILLI
Ahi Evran Üniversitesi, Türkiye
Özet
Fuzzy linear regression analysis helps to produce successful assumptions in situations with uncertainty between variables and provides researchers with a flexible perspective. In this study, 305 days milk yield estimation studies were carried out using partial lactation records of Jersey cattle with the fuzzy linear regression method. Calving age, number of lactation, days of milk, calving season, and the first four milk test days records were used as the independent variables in the study. Also, 305 days milk yield was used as the dependent variable. Reliability of the obtained estimates was discussed using graphical representations of h values and three different statistical error criteria (RMSE, MAPE and R). In addition, the estimated values obtained were compared with the observed values. The fuzzy linear regression equations developed for 10 different h values shows that the equations obtained for the h = 0.4 and h = 0.5 values are the closest observed values to 305 days milk yield. The difference between the predicted values and the observed values was statistically insignificant (p > 0.05). These results show that the fuzzy linear regression method can be successfully used to predict 305 days milk yield at the beginning of the lactation.
Anahtar Kelimeler
Fuzzy regression, Fuzzy linear programming, Dairy cattle, Milk yield
Makale Türü Özgün Makale
Makale Alt Türü SSCI, AHCI, SCI, SCI-Exp dergilerinde yayımlanan tam makale
Dergi Adı The Journal of Animal and Plant Sciences
Dergi ISSN 1018-7081
Dergi Tarandığı Indeksler SCI-Expanded
Dergi Grubu Q3
Makale Dili İngilizce
Basım Tarihi 03-2018
Cilt No 28
Sayı 4
Sayfalar 1174 / 1181
Makale Linki http://www.thejaps.org.pk/docs/Accepted/2018/28-3/38.pdf
BM Sürdürülebilir Kalkınma Amaçları
Atıf Sayıları
WoS 1
SCOPUS 1
Google Scholar 2

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