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Descripción

Mixed models are an extremely useful modeling tool for situations in which there is some dependency among observations in the data, where the correlation typically arises from the observations being clustered in some way. For example, it is quite common to have data in which we have repeated measurements for the units of observation, or in which the units of observation are otherwise grouped together (e.g. students within school, cities within geographic region). While there are different ways to approach such a situation, mixed models are a very common and powerful tool to do so. In addition, they have ties to other statistical approaches that further expand their applicability.Lee mas.

Relevancia profesional por rol de datos

Las técnicas y herramientas cubiertas en Mixed Models with R son muy similares a los requisitos que se encuentran en los anuncios de trabajo de Científico de datos.

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