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Natural Language Processing with Probabilistic Models

In Course 2 of the Natural Language Processing Specialization, you will: a) Create a simple auto-correct algorithm using minimum edit distance and dynamic programming, b) Apply the Viterbi Algorithm for part-of-speech (POS) tagging, which is vital for computational linguistics, c) Write a better auto-complete algorithm using an N-gram language model, and d) Write your own Word2Vec model that uses a neural network to compute word embeddings using a continuous bag-of-words model. By the end of this Specialization, you will have designed NLP applications that perform question-answering and sentiment analysis, created tools to translate languages and summarize text. This Specialization is designed and taught by two experts in NLP, machine learning, and deep learning. Younes Bensouda Mourri is an Instructor of AI at Stanford University who also helped build the Deep Learning Specialization. Łukasz Kaiser is a Staff Research Scientist at Google Brain and the co-author of Tensorflow, the Tensor2Tensor and Trax libraries, and the Transformer paper.

状态:Embeddings
状态:Probability & Statistics
中级课程小时

精选评论

NP

5.0评论日期:Jan 22, 2022

This class is one of the best on the subject. The prof is very knowledgeable and explains concepts very clearly. The code in the assignments and lectures is super clean and structured incredibly well.

BN

5.0评论日期:Feb 12, 2021

Nicely broken into digestible chunks. Labs well done, not too easy, and too too frustrating. Material presented clearly and in (again) nice small steps.

PP

5.0评论日期:May 29, 2021

I'm really thankful to the professors for sharing there knowledge and experience and creating this excellent course. I have learnt a a lot. Thank You !!!

AH

5.0评论日期:Sep 28, 2020

Very good course! helped me clearly learn about Autocorrect, edit distance, Markov chains, n grams, perplexity, backoff, interpolation, word embeddings, CBOW. This was very helpful!

KK

5.0评论日期:Jul 1, 2020

This course is very good introduction to NLP Probabilistic models such as Hidden Markov model, N-Gram Language model, and Word2Vec with Python programming assignments.

RV

4.0评论日期:Aug 18, 2020

The course is exceptional in its own way by bringing people to the understanding of probabilistic models. Crisp & Clear. But one need to explore & practise more to gain expertise.

BN

5.0评论日期:Sep 10, 2020

This is one of the best courses i have taken. I have learned a lot from this course. Assignments were great and challenging. Thank you deeplearning.ai team for this amazing course.

RA

4.0评论日期:Jan 15, 2021

In the first and second week the exercices have some unecessery pranks in the data formatation just to make the exercice harded, but it take out the attention for what matter in the course that is NLP

KM

5.0评论日期:Aug 9, 2020

This course is great. Actually the NLP specialization so far has been really good. The lectures are short and interesting and you get a good grasp on the concepts.

OO

4.0评论日期:Oct 6, 2020

Good course, but the lecture notes in week 2 can be much more improved. Understanding Viterbi algorithm without visuals and animations was very difficult. Apart from that, great course!

AP

5.0评论日期:Dec 27, 2020

A great course in the very spirit of the original Andrew Ng's ML course with lots of details and explanations of fundamental approaches and techniques.

MG

5.0评论日期:Jan 23, 2022

Excellent course! Well designed and taught. I would have liked more advices on how to preprocess text before applying word embeddings (lemmatization, stemming, etc.)

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显示:20/299

Boris Kabakov
1.0
评论日期:Sep 6, 2020
sukanya nath
3.0
评论日期:Jul 21, 2020
Gabriel Teixeira Pinto Coimbra
1.0
评论日期:Aug 3, 2020
Dan Campbell
3.0
评论日期:Jul 8, 2020
Oleh Sinkevych
4.0
评论日期:Aug 3, 2020
Manik Singhal
3.0
评论日期:Aug 13, 2020
Greg Devyatov
2.0
评论日期:Dec 26, 2020
ES
4.0
评论日期:Jul 7, 2020
Dimitry Ishenko
1.0
评论日期:Apr 14, 2021
Zhendong Wang
5.0
评论日期:Jul 10, 2020
Saurabh Kansal
5.0
评论日期:Jul 14, 2020
Mark McCormick
4.0
评论日期:Jul 19, 2020
Laurence Golding
3.0
评论日期:Mar 15, 2021
Slava Shebanov
2.0
评论日期:Jan 11, 2022
P G
2.0
评论日期:Oct 26, 2021
John Anthony Jose
3.0
评论日期:Sep 25, 2020
Andreas Beschorner
3.0
评论日期:Oct 4, 2020
Sina Mehraeen
3.0
评论日期:May 14, 2023
Simon Prentice
2.0
评论日期:Nov 27, 2020
Benjamin Wolff
2.0
评论日期:Jul 13, 2023