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            課程目錄:Deep Learning for Finance (with R)培訓
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                      Deep Learning for Finance (with R)培訓

             

             

             

            Introduction

            Understanding the Fundamentals of Artificial Intelligence and Machine Learning

            Understanding Deep Learning

            Overview of the Basic Concepts of Deep Learning
            Differentiating Between Machine Learning and Deep Learning
            Overview of Applications for Deep Learning
            Overview of Neural Networks

            What are Neural Networks
            Neural Networks vs Regression Models
            Understanding Mathematical Foundations and Learning Mechanisms
            Constructing an Artificial Neural Network
            Understanding Neural Nodes and Connections
            Working with Neurons, Layers, and Input and Output Data
            Understanding Single Layer Perceptrons
            Differences Between Supervised and Unsupervised Learning
            Learning Feedforward and Feedback Neural Networks
            Understanding Forward Propagation and Back Propagation
            Understanding Long Short-Term Memory (LSTM)
            Exploring Recurrent Neural Networks in Practice
            Exploring Convolutional Neural Networks in practice
            Improving the Way Neural Networks Learn
            Overview of Deep Learning Techniques Used in Finance

            Neural Networks
            Natural Language Processing
            Image Recognition
            Speech Recognition
            Sentimental Analysis
            Exploring Deep Learning Case Studies for Finance

            Pricing
            Portfolio Construction
            Risk Management
            High Frequency Trading
            Return Prediction
            Understanding the Benefits of Deep Learning for Finance

            Exploring the Different Deep Learning Packages for R

            Deep Learning in R with Keras and RStudio

            Overview of the Keras Package for R
            Installing the Keras Package for R
            Loading the Data
            Using Built-in Datasets
            Using Data from Files
            Using Dummy Data
            Exploring the Data
            Preprocessing the Data
            Cleaning the Data
            Normalizing the Data
            Splitting the Data into Training and Test Sets
            Implementing One Hot Encoding (OHE)
            Defining the Architecture of Your Model
            Compiling and Fitting Your Model to the Data
            Training Your Model
            Visualizing the Model Training History
            Using Your Model to Predict Labels of New Data
            Evaluating Your Model
            Fine-Tuning Your Model
            Saving and Exporting Your Model
            Hands-on: Building a Deep Learning Model for Stock Price Prediction Using R

            Extending your Company's Capabilities

            Developing Models in the Cloud
            Using GPUs to Accelerate Deep Learning
            Applying Deep Learning Neural Networks for Computer Vision, Voice Recognition, and Text Analysis
            Summary and Conclusion

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