Adil Khan 1 year ago
AdiKhanOfficial #FYP Ideas

Topic modeling for Urdu news.

This project is for topic modeling of Urdu news text in which we are using machine learning to extract the result. Topic modeling is a technique to identify the topics present in a large set of text documents. We use Urdu news text to show that this approach works on any genre of text equally w

Project Title

Topic modeling for Urdu news.

Project Area of Specialization

Artificial Intelligence

Project Summary

This project is for topic modeling of Urdu news text in which we are using machine learning to extract the result. Topic modeling is a technique to identify the topics present in a large set of text documents. We use Urdu news text to show that this approach works on any genre of text equally well. Topic modeling helps us to extract unexposed latent words that can represent complete documents for example we get the whole text by using machine learning and extract the keywords from the Urdu new text.

Project Objectives

  • Machine learning-based approaches for topic modeling are successful in extracting logical and semantic topics from a given collection of text. We experimented with topic modeling approaches for Urdu news text to show that these approaches work fine on any genre of text
  •  
  1. It makes it possible for people to find the topic of interest easily when there is hard to read all the data generated on social media at a rate never seen before.

There has been a lot of research on topic modeling in English but not much in Urdu despite According to Ethnologist's 2018 estimates, Urdu, is the 11th most widely spoken language in the world, with 170 million total speakers.

Project Implementation Method

Topic modeling is an algorithm for extracting the topic or topics for a collection of documents. It is the widely used text mining method in Natural Language Processing to gain insights into text documents. The algorithm is analogous to dimensionality reduction techniques used for numerical data. some steps are

Steps...................................................................................................................................................
==>data collection.
==>feature selection
==>preprocessing (cleaning, lemmatization, stemming)(nltk, SciPy, genism)
==>word embedding (token level)(bag of word, glove, word to bag)
==>model selection (lda, lsi, hdp, lsa)
==>comparison
==>key word extraction, visualization (word cloud, coherence model)

Benefits of the Project

  •  It saves a lot of time and helps students get their results quickly.
  • It can identify the keywords of search and recommend a topic to user accordingly.

Technical Details of Final Deliverable

not set 

Final Deliverable of the Project

Software System

Core Industry

IT

Other Industries

Core Technology

Artificial Intelligence(AI)

Other Technologies

Sustainable Development Goals

Quality Education

Required Resources

Item Name Type No. of Units Per Unit Cost (in Rs) Total (in Rs)
GTX 1650 Equipment13700037000
120GB SSD Miscellaneous 136003600
4GB RAM DDR3 Miscellaneous 140004000
Total in (Rs) 44600
If you need this project, please contact me on contact@adikhanofficial.com
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