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奶牛热状态预测模型:从技术角度的综述

Predictive Models of Dairy Cow Thermal State: A Review from a Technological Perspective.

作者信息

Neves Soraia F, Silva Mónica C F, Miranda João M, Stilwell George, Cortez Paulo P

机构信息

CEFT-Transport Phenomena Research Centre, Faculty of Engineering, University of Porto, Rua Dr. Roberto Frias, 4200-465 Porto, Portugal.

ALiCE-Associate Laboratory in Chemical Engineering, Faculty of Engineering, University of Porto, Rua Dr. Roberto Frias, 4200-465 Porto, Portugal.

出版信息

Vet Sci. 2022 Aug 8;9(8):416. doi: 10.3390/vetsci9080416.

Abstract

Dairy cattle are particularly sensitive to heat stress due to the higher metabolic rate needed for milk production. In recent decades, global warming and the increase in dairy production in warmer countries have stimulated the development of a wide range of environmental control systems for dairy farms. Despite their proven effectiveness, the associated energy and water consumption can compromise the viability of dairy farms in many regions, due to the cost and scarcity of these resources. To make these systems more efficient, they should be activated in time to prevent thermal stress and switched off when that risk no longer exists, which must consider environmental variables as well as the variables of the animals themselves. Nowadays, there is a wide range of sensors and equipment that support farm routine procedures, and it is possible to measure several variables that, with the aid of algorithms based on predictive models, would allow anticipating animals' thermal states. This review summarizes three types of approaches as predictive models: bioclimatic indexes, machine learning, and mechanistic models. It also focuses on the application of the current knowledge as algorithms to be used in the management of diverse types of environmental control systems.

摘要

由于产奶需要较高的代谢率,奶牛对热应激特别敏感。近几十年来,全球变暖和较温暖国家奶牛产量的增加,刺激了各种奶牛场环境控制系统的发展。尽管这些系统已被证明有效,但由于这些资源的成本和稀缺性,相关的能源和水消耗可能会危及许多地区奶牛场的生存能力。为了提高这些系统的效率,应及时启动它们以防止热应激,并在风险不再存在时关闭,这必须考虑环境变量以及动物自身的变量。如今,有各种各样支持农场日常程序的传感器和设备,可以测量几个变量,借助基于预测模型的算法,可以预测动物的热状态。本综述总结了作为预测模型的三种方法:生物气候指数、机器学习和机理模型。它还重点介绍了当前知识作为算法在各种环境控制系统管理中的应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4453/9416202/4e804325b081/vetsci-09-00416-g001.jpg

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