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Rudra Manohar Krishna Ganti's Projects

banking-sector icon banking-sector

The problem is all about categorising the bank customers into different categories having strong similarity within the group .with the dataset containing bank transactions data. Some of the data elements are transaction id, customer id ,transaction amount , mode of transactions, etc.Need to come up with algorithms that can segment users into different categories.So the problem is of unsupervised learning in nature.

detect-facial-features icon detect-facial-features

Code example demonstrating how to detect eyes, nose, lips, and jaw with dlib, OpenCV, and Python

personalised-medicine-project icon personalised-medicine-project

Basically, the problem is all about personalised treatment regarding personalised treatment for cancer through genetic testing. Genetic map is unique for every individual. Mutations in genes leads to cancer. So our problem in precise is all about classifying clinically actionable mutations that led predefined treatment for cancer. Challenge lies in distinguishing mutilations that contribute to cancer growth. Currently this interpretation of genetic mutations is being done manually. This is a very time-consuming task where a clinical pathologist has to manually review and classify every single genetic mutation based on evidence from text-based clinical literature. We need to develop a Machine Learning algorithm that, using this knowledge base as a baseline, automatically classifies genetic variations.

sentiment-analysis-and-map-viz-of-tweets- icon sentiment-analysis-and-map-viz-of-tweets-

This project “Prognostication of Box Office Talk using Twitter Corpus” predicts the success of the movie using state of mind of the people that could possibly be achieved by sentiment analysis. The analysis is done with Naive Bayes Classifier which is a supervised text classification algorithm attaining 81 percent of F-Score. This work is also incorporated with visualization of data in R language which stands one among the best in representing the analysis in pictorial format and a map visualization that portrays the location of the tweets with the user name whom it has come from.

tfidf-vectorization icon tfidf-vectorization

( Scratch development ) Term Frequency Inverse Document Frequency is a vectorization technique used widely in Natural Language Processing. The vectorization effectively gives importance to rare words and important words.

twitter-sentiment-visualisation icon twitter-sentiment-visualisation

:earth_africa: The R&D of a sentiment analysis module, and the implementation of it on real-time social media data, to generate a series of live visual representations of sentiment towards a specific topic or by location in order to find trends.

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