Please use this identifier to cite or link to this item: http://ir.futminna.edu.ng:8080/jspui/handle/123456789/29033
Title: The use of Artificial Neural Networks for modelling rumen fill in ruminants
Authors: Adebayo, Rasheed
Moyo, Mehluli
Kana, Gueguim
Nsahlai, Ignatius Verla
Keywords: Artificial Neural Network model, cattle, Random Forest model, rumen fill, sheep
Issue Date: 24-Jun-2020
Publisher: Canadian Science Publishing, Canadian Journal of Animal Science
Citation: Adebayo et. al. (2020) The use of Artificial Neural Networks for modelling rumen fill in ruminants
Abstract: Artificial Neural Network (ANN) and Random Forest models for predicting rumen fill of cattle and sheep were developed. Data on rumen fill were collected from studies that reported body weights, measured rumen fill and stated diets fed to animals. Animal and feed factors that affected rumen fill were identified from each study and used to create a dataset. These factors were used as input variables for predicting the weight of rumen fill. For ANN modelling, a three-layer Levenberg-Marquardt Back Propagation Neural Network was adopted and achieved 96% accuracy in prediction of the weight of rumen fill. The precision of the ANN model’s prediction of rumen fill was higher for cattle (80%) than sheep (56%). On validation, the ANN model achieved 95% accuracy in prediction of the weight of rumen fill. A Random Forest model was trained using a binary tree-based machine learning algorithm and achieved 87% accuracy in prediction of rumen fill. The Random Forest model achieved 16% (cattle) and 57% (sheep) accuracy in validation of the prediction of rumen fill. In conclusion, the ANN model gave better predictions of rumen fill compared to the Random Forest model and should be used in predicting rumen fill of cattle and sheep
URI: http://repository.futminna.edu.ng:8080/jspui/handle/123456789/29033
Appears in Collections:Animal Production

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