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  Published Paper Details:

  Paper Title

ANALYSIS OF HUMAN TRAITS USING MACHINE LEARNING

  Authors

  Kavita Agrawal

  Keywords

Logistic regression, Naive Bayes classifiers, XGBoost, Decision Tree

  Abstract


Personality is a parameter that makes one individual different from the other individual. Predicting personality has many applications in real world. The main objective of this paper is to take textual data as input from the user and then run the trained machine learning model on this data to predict his 4 personality traits which are Introversion vs Extroversion, Sensing vs Intuition, Thinking vs Feeling, Judging vs Perceiving. The main objective is to build an application where users can answer the questions which are processed and analyzed to output his personality traits. The output is a string of 4 characters where each character determines a personality trait, total of 16 personality types are possible. The Machine learning model XGboost is used to classify the text and output four personality traits. Processing of large textual data is to be done using Natural Language Processing (NLP) techniques with the help of nltk libraries to process and categorize the data. In order to increase the performance of the model hyper parameter tuning along with cross fold validation is done

  IJCRT's Publication Details

  Unique Identification Number - IJCRT2106344

  Paper ID - 208410

  Page Number(s) - d1-d7

  Pubished in - Volume 9 | Issue 6 | June 2021

  DOI (Digital Object Identifier) -    http://doi.one/10.1729/Journal.27467

  Publisher Name - IJCRT | www.ijcrt.org | ISSN : 2320-2882

  E-ISSN Number - 2320-2882

  Cite this article

  Kavita Agrawal,   "ANALYSIS OF HUMAN TRAITS USING MACHINE LEARNING", International Journal of Creative Research Thoughts (IJCRT), ISSN:2320-2882, Volume.9, Issue 6, pp.d1-d7, June 2021, Available at :http://www.ijcrt.org/papers/IJCRT2106344.pdf

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ISSN: 2320-2882
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Journal Starting Year (ESTD) : 2013
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ISSN and 7.97 Impact Factor Details


ISSN
ISSN
ISSN: 2320-2882
Impact Factor: 7.97 and ISSN APPROVED
Journal Starting Year (ESTD) : 2013
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