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  1. Twitter-moods-as-stock-price-predictors-on-Nasdaq Twitter-moods-as-stock-price-predictors-on-Nasdaq Public

    An attempt to predict next day's stock price movements using sentiments in tweets with cashtags. Six different ML algorithms were deployed (LogReg, KNN, SVM etc.). Main libraries used: Pandas & Numpy

    Jupyter Notebook 23 6

  2. Analysing-IMDB-reviews-using-GloVe-and-LSTM Analysing-IMDB-reviews-using-GloVe-and-LSTM Public

    Using the IMDB data found in Keras here a few algorithms built with Keras. The source code is from Francois Chollet's book Deep learning with Python. The aim is to predict whether a review is posit…

    Jupyter Notebook 7 3

  3. K-means-clustering-on-US-crime-data K-means-clustering-on-US-crime-data Public

    Unsupervised machine learning using U.S. crime data and k-means clustering. Crime categories: murder, assault & rape in all 50 states in 1973.

    Jupyter Notebook 3 8

  4. Predicting-Nordea-stock-price-using-an-LSTM-neural-network- Predicting-Nordea-stock-price-using-an-LSTM-neural-network- Public

    Using an 80/20 split in the historical data daily closing prices where predicted using a LSTM network based on data observed in the past 30 days for each prediction

    Jupyter Notebook 2 2

  5. Multivariate-Regression---King-County-House-Prices Multivariate-Regression---King-County-House-Prices Public

    Supervised Machine Learning Using Regression Analysis

    Jupyter Notebook 2 1

  6. Predicting-the-Popularity-of-Online-News Predicting-the-Popularity-of-Online-News Public

    Building a model which can predict the number of online 'shares' an article will get based on a set of variables attached to it. (Python)

    Jupyter Notebook 5 3