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用于预测兔子生理反应的决策树

Decision Trees for Predicting the Physiological Responses of Rabbits.

作者信息

Ferraz Patrícia Ferreira Ponciano, Julio Yamid Hernández Fábian, Ferraz Gabriel Araújo E Silva, Moura Raquel Silva de, Rossi Giuseppe, Saraz Jairo Alexander Osorio, Barbari Matteo

机构信息

Federal University of Lavras (UFLA), Department of Agricultural Engineering, Lavras, Minas Gerais 37200-900, Brazil.

Faculty of Economics, Administrative and Accounting Sciences, Universidad del Sinú Elías Bechara Zainúm, Montería, Córdoba 230001, Colombia.

出版信息

Animals (Basel). 2019 Nov 18;9(11):994. doi: 10.3390/ani9110994.

Abstract

The thermal environment inside a rabbit house affects the physiological responses and consequently the production of the animals. Thus, models are needed to assist rabbit producers in decision-making to maintain the production environment within the zone of thermoneutrality for the animals. The aim of this paper is to develop decision trees to predict the physiological responses of rabbits based on environmental variables. The experiment was performed in a rabbit house with 26 rabbits at eight weeks of age. The experimental database is composed of 546 observed data points. Sixty decision tree models for the prediction of respiratory rate (RR, mov.min) and ear temperature (ET, °C) of rabbits exposed to different combinations of dry bulb temperature (t, °C) and relative humidity (RH, %) were developed. The ET model exhibited better statistical indices than the RR model. The developed decision trees can be used in practical situations to provide a rapid evaluation of rabbit welfare conditions based on environmental variables and physiological responses. This information can be obtained in real time and may help rabbit breeders in decision-making to provide satisfactory environmental conditions for rabbits.

摘要

兔舍内的热环境会影响兔子的生理反应,进而影响其生产性能。因此,需要模型来协助养兔生产者进行决策,以便将动物的生产环境维持在热中性区内。本文的目的是开发决策树,以根据环境变量预测兔子的生理反应。实验在一个有26只8周龄兔子的兔舍中进行。实验数据库由546个观测数据点组成。针对暴露于不同干球温度(t,°C)和相对湿度(RH,%)组合下的兔子,开发了60个用于预测呼吸频率(RR,次/分钟)和耳温(ET,°C)的决策树模型。耳温模型的统计指标比呼吸频率模型更好。所开发的决策树可用于实际情况,以便根据环境变量和生理反应快速评估兔子的福利状况。这些信息可以实时获取,可能有助于养兔者进行决策,为兔子提供令人满意的环境条件。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f088/6912584/27d3962204a2/animals-09-00994-g001.jpg

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