Machine Learning Using SAS Viya

所在平台: CourseraArchive

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课程主页: https://www.coursera.org/archive/machine-learning-sas

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课程大纲

Getting Started with Machine Learning using SAS® Viya®
Data Preparation and Algorithm Selection
Decision Trees and Ensembles of Trees
Neural Networks

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This course covers the theoretical foundation for different techniques associated with supervised machine learning models. In addition, a business case study is defined to guide participants through all steps of the analytical life cycle, from problem understanding to model deployment, through data preparation, feature selection, model training and validation, and model assessment. A series of demonstrations and exercises is used to reinforce the concepts and the analytical approach to solving business problems. This course uses Model Studio, the pipeline flow interface in SAS Viya that enables you to prepare, develop, compare, and deploy advanced analytics models. You learn to train supervised machine learning models to make better decisions on big data. The SAS applications used in this course make machine learning possible without programming or coding.

使用SAS Viya的机器学习:本课程涵盖与有监督的机器学习模型相关的各种技术的理论基础。此外,还定义了一个业务案例研究,以指导参与者完成分析生命周期的所有步骤,从问题理解到模型部署,再到数据准备,功能选择,模型训练和验证以及模型评估。一系列的演示和练习用于加强解决业务问题的概念和分析方法。 本课程使用Model Studio(SAS Viya中的管道流接口),使您能够准备,开发,比较和部署高级分析模型。您将学习训练有监督的机器学习模型,以便对大数据做出更好的决策。本课程中使用的SAS应用程序使无需编程或编码即可进行机器学习。

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