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Natural Language processing

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Natural language processing
Natural language processing
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Natural Language processing

  1. 1. Natural Language Processing
  2. 2. #TeamNoFrazzle
  3. 3.  NAZMUL AHSAN 151-15-4668  MAHBUBUR RAHMAN 151-15-4761  FARHAN TAWSIF CHOWDHURY 151-15-4705  SANZIDUL ISLAM 151-15-5223  SADIA SULTANA SHARMIN MOUSUMI 151-15-5191
  4. 4. Natural language processing is a sector of artificial intelligence that can analysis human language.
  5. 5. Background history : CAN MACHINE THINK ?
  6. 6. Stanford NLP GROUP : • A group from Stanford university developed some software. • One of them is Core Stanford NLP .written in Java. • Packages are widely used in industry, academia, and government.
  7. 7. Well known now-a-days : • Voice search • Translator • Information retrieval • Captcha Challenge • Different types of App. • IOT Internet Of Things
  8. 8. WHY Natural Language Processing ?
  9. 9. Retrieve Information: My friend: When you will meet with me? Me: I have decided to meet tomorrow at 10:00 AM in Library
  10. 10. Retrieve Information: My friend: When you will meet with me? Me: I have decided to meet tomorrow at 10:00 AM in Library Date : 31-03-17 (Tomorrow) Time: 10:00 AM Place: Library
  11. 11. Retrieve Information: Event: Database Presentation Time: 11:30 AM Info: Take preparation properly
  12. 12. MachineTranslation: 1. Google Translation. 2. Pipilika (first Bangla search engine) 3. Voice speech to Text
  13. 13. আমি ত োিোকে ভোলবোমি | => I love you. Grass is greener on the other of the side. => নদীর ওপোকের ঘোিগুচ্ছ তবশী িবুজ। Google’s Translation : ঘাস নদী ওপারে সবুজ | MachineTranslation:
  14. 14. Language Processing: Generate SQL from natural language. Natural Language: Publish department SQL Query: Select * from department Natural Language: Show all student information of Section E, 40 batch, CSE SQL Query: Select * from CSE_students where batch = `40` AND section = `E`
  15. 15. NLPTechnique: 1. One of the Machine Learning application is NLP 2. Two approach: I. Supervised. * Tag key-word work as training set * YouTube Suggestion, Favorite list in messenger. II. Unsupervised. * No pre-training set. * Clustering, Data analyzation, Google Search
  16. 16. “First we thought the PC was a calculator. Then we foundout how to turn numbers into letters withASCII — and we thought it was a typewriter. Then we discoveredgraphics, andwe thought it was a television. Withthe WorldWide Web, we've realized it's a brochure.” ― Douglas Adams
  17. 17. • Add your results here Results • Add your objective here Objective Project Description
  18. 18. Aspects of NLP • Tokenization / Segmentation • Disambiguation • Stemming • Part of Speech (POS) tagging • Contextual Analysis • Sentiment Analysis
  19. 19. Tokenization & Segmentation • Segmenting text into words “The meeting has been scheduled for this Saturday.” “He has agreed to co-operate with me.” “Indian Airlines introduces another flight on the New Delhi– Mumbai route.” “We are leaving for the U.S.A. on 26th May.” “Fahad is playing the role of Duke of Athens in A Midsummer Night’s Dream in a theatre in New York City!” • Named Entity Recognition
  20. 20. POS tagging • Part of speech (POS) recognition “ Today is a beautiful day. “ Today is a beautiful day Noun Verb Article Adjective Noun
  21. 21. Showing application of NLP with python scripting
  22. 22. Opportunities of NLP • Research opportunity • Employment/Job opportunity
  23. 23. Limitation of NLP
  24. 24. Future of NLP • The bots • Supporting invisible UI • Smarter search • Intelligence from unstructured information
  25. 25. Do you have Any QUESTION?

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