Introduction to Transformer for NLP with Python
About this course
Interested in the field of Natural Language Processing (NLP)? Then this course is for you!Ever since Transformers arrived on the scene, deep learning hasn't been the same.Machine learning is able to generate text essentially indistinguishable from that created by humansWe've reached new state-of-the-art performance in many NLP tasks, such as machine translation, question-answering, entailment, named entity recognition, and moreIn this course, you will learn very practical skills for applying transformers, and if you want, the detailed theory behind how transformers and attention work.There are several reasons why this course is different from any other course. The first reason is that it covers all basic natural language process techniques, so you will have an understanding of what natural language processing is. The second reason is that it covers GPT-2, NER, and BERT which are very popular in natural language processing. The final reason is that you will have lots of practice projects with detailed explanations step-by-step notebook so you can read it when you have free time.The course is split into 4 major parts:Basic natural language processingFundamental TransformersText generation with GPT-2Text classificationPART 1: Using TransformersIn this section, you will learn about the fundamental of the natural language process. It is really important to understand basic natural language processing before learning transformers. In this section we will cover:What is natural language processing (NLP)What is stemming and lemmatizationWhat is chunkingWhat is a bag of words?In this section, we will build 3 small projects. These projects are:Gender identificationSentiment analyzerT
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