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            課程目錄:使用MATLAB 進行機器學習課程培訓
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                使用MATLAB 進行機器學習課程培訓

             

             

            組織和預處理數據
            聚類數據
            創建分類模型
            評估和改善模型
            化簡數據集
            改善模型性能
            Importing and Organizing Data

            Objective: Bring data into MATLAB and organize it for analysis, including normalizing
            data and removing observations with missing values.

            Data types
            Tables
            Categorical data
            Data preparation
            Finding Natural Patterns in Data

            Objective: Use unsupervised learning techniques to group observations based
            on a set of explanatory variables and discover natural patterns in a data set.

            Unsupervised learning
            Clustering methods
            Cluster evaluation and interpretation
            Building Classification Models

            Objective: Use supervised learning techniques to perform predictive modeling for classification problems.
            Evaluate the accuracy of a predictive model.

            Supervised learning
            Training and validation
            Classification methods

            Improving Predictive Models

            Objective: Reduce the dimensionality of a data set. Improve and simplify machine learning models.

            Cross validation
            Hyperparameter optimization
            Feature transformation
            Feature selection
            Ensemble learning
            Building Regression Models

            Objective: Use supervised learning techniques to perform predictive modeling for continuous response variables.

            Parametric regression methods
            Nonparametric regression methods
            Evaluation of regression models
            Creating Neural Networks

            Objective: Create and train neural networks for clustering and predictive modeling.
            Adjust network architecture to improve performance.

            Clustering with Self-Organizing Maps
            Classification with feed-forward networks
            Regression with feed-forward networks

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