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            課程目錄:Natural Language Processing (NLP) with Python spaCy培訓
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               Natural Language Processing (NLP) with Python spaCy培訓

             

             

             

            Introduction

            Defining "Industrial-Strength Natural Language Processing"
            Installing spaCy

            spaCy Components

            Part-of-speech tagger
            Named entity recognizer
            Dependency parser
            Overview of spaCy Features and Syntax

            Understanding spaCy Modeling

            Statistical modeling and prediction
            Using the SpaCy Command Line Interface (CLI)

            Basic commands
            Creating a Simple Application to Predict Behavior

            Training a New Statistical Model

            Data (for training)
            Labels (tags, named entities, etc.)
            Loading the Model

            Shuffling and looping
            Saving the Model

            Providing Feedback to the Model

            Error gradient
            Updating the Model

            Updating the entity recognizer
            Extracting tokens with rule-based matcher
            Developing a Generalized Theory for Expected Outcomes

            Case Study

            Distinguishing Product Names from Company Names
            Refining the Training Data

            Selecting representative data
            Setting the dropout rate
            Other Training Styles

            Passing raw texts
            Passing dictionaries of annotations
            Using spaCy to Pre-process Text for Deep Learning

            Integrating spaCy with Legacy Applications

            Testing and Debugging the spaCy Model

            The importance of iteration
            Deploying the Model to Production

            Monitoring and Adjusting the Model

            Troubleshooting

            Summary and Conclusion

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