Fine Tune BERT for Text Classification with TensorFlow
This is a guided project on fine-tuning a Bidirectional Transformers for Language Understanding (BERT) model for text classification with TensorFlow. In this...
About This Course
This is a guided project on fine-tuning a Bidirectional Transformers for Language Understanding (BERT) model for text classification with TensorFlow. In this 2.5 hour long project, you will learn to preprocess and tokenize data for BERT classification, build TensorFlow input pipelines for text data with the tf.data API, and train and evaluate a fine-tuned BERT model for text classification with TensorFlow 2 and TensorFlow Hub. Prerequisites: In order to successfully complete this project, you should be competent in the Python programming language, be familiar with deep learning for Natural Language Processing (NLP), and have trained models with TensorFlow or and its Keras API. Note: This course works best for learners who are based in the North America region. We’re currently working on providing the same experience in other regions.
Topics Covered
Frequently Asked Questions
How much does Fine Tune BERT for Text Classification with TensorFlow cost?
Fine Tune BERT for Text Classification with TensorFlow costs $9.99. Check the course page for current pricing and available discounts.
Who teaches Fine Tune BERT for Text Classification with TensorFlow?
Fine Tune BERT for Text Classification with TensorFlow is taught by Coursera, Coursera.
What skill level is Fine Tune BERT for Text Classification with TensorFlow for?
This course is designed for all levels learners.
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