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U&P AI - Natural Language Processing (NLP) with Python

Become an NLP Engineer by creating real projects using Python, semantic search, text mining and search engines!

4.45 / 5.0
13867 students5 hours 50 minutes

Created by Abdulhadi Darwish, offered on Udemy

bestcourses score™

Student feedback

8/10

To make sure that we score courses properly, we pay a lot of attention to the reviews students leave on courses and how many students are taking a course in the first place. This course has a total of 13867 students which left 1151 reviews at an average rating of 4.45. Impressive!

Course length

9/10

We analyze course length to see if courses cover all important aspects of a topic, taking into account how long the course is compared to the category average. This course has a length of 5 hours 50 minutes, which is pretty short. This might not be a bad thing, but we've found that longer courses are often more detailed & comprehensive. The average course length for this entire category is 7 hours 54 minutes.

Overall score

7.7/10

This course currently has a bestcourses score of 7.7/10, which makes it a great course to learn from. On our entire platform, only 15% of courses achieve this rating!

Description


-- UPDATED -- (NEW LESSONS ARE NOT IN THE PROMO VIDEO)

THIS COURSE IS FOR BEGINERS OR INTERMEDIATES, IT IS NOT FOR EXPERTS

This course is a part of a series of courses specialized in artificial intelligence :

  • Understand and Practice AI - (NLP)

This course is focusing on the NLP:

  • Learn key NLP concepts and intuition training to get you quickly up to speed with all things NLP.

  • I will give you the information in an optimal way, I will explain in the first video for example what is the concept, and why is it important, what is the problem that led to thinking about this concept and how can I use it (Understand the concept). In the next video, you will go to practice in a real-world project or in a simple problem using python (Practice).

  • The first thing you will see in the video is the input and the output of the practical section so you can understand everything and you can get a clear picture!

  • You will have all the resources at the end of this course, the full code, and some other useful links and articles.

In this course, we are going to learn about natural language processing. We will discuss various concepts such as tokenization, stemming, and lemmatization to process text. We will then discuss how to build a Bag of Words model and use it to classify text. We will see how to use machine learning to analyze the sentiment of a given sentence. We will then discuss topic modeling and implement a system to identify topics in a given document. We will start with simple problems in NLP such as Tokenization Text, Stemming, Lemmatization, Chunks, Bag of Words model. and we will build some real stuff such as :

  1. Learning How to Represent the Meaning of Natural Language Text

  2. Building a category predictor to predict the category of a given text document.

  3. Constructing a gender identifier based on the name.

  4. Building a sentiment analyzer used to determine whether a movie review is positive or negative.

  5. Topic modeling using Latent Dirichlet Allocation

  6. Feature Engineering

  7. Dealing with corpora and WordNet

  8. Dealing With your Vocabulary for any NLP and ML model

TIPS (for getting through the course):

  • Take handwritten notes. This will drastically increase your ability to retain the information.

  • Ask lots of questions on the discussion board. The more the better!

  • Realize that most exercises will take you days or weeks to complete.

  • Write code yourself, don’t just sit there and look at my code.

You don't know anything about NLP? let's break it down!

I am always available to answer your questions and help you along your data science journey. See you in class!

NOTICE that This course will be modified and I will add new content and new concepts from one time to another, so stay informed! :)

What you will learn

  • Understand every detail and build real stuff in NLP
  • (NEW)Learn how some plugins use semantic search to generate source code
  • (NEW)Building your vocabulary for any NLP model
  • (NEW)Reducing Dimensions of your Vocabulary for Machine Learning Models
  • (NEW)Feature Engineering and convert text to numerical values for machine learning models
  • (NEW) Keyword search VS Semantic search
  • (NEW)Similarity between documents
  • (NEW)Dealing with WordNet
  • (NEW)Search engines under the hood
  • Tokenizing text data
  • Converting words to their base forms using stemming
  • Converting words to their base forms using lemmatization
  • Dividing text data into chunks
  • Dealing with corpuses
  • Extracting document term matrix using the Bag of Words model
  • Building a category predictor
  • Constructing a gender identifier
  • Building a sentiment analyzer
  • Topic modeling using Latent Dirichlet Allocation

Requirements

  • A little bit of python
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Frequently asked questions

  • Price: $19.99
  • Platform: Udemy
  • Language: English
  • 5 hours 50 minutes
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bestcourses score: 7.7/10

This course is better than many others in its category.