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ncaa-ml's Introduction

NCAA-Machine Learning

-- Project status: [Active]

The app can be accessed at: https://ncaa-ml.herokuapp.com/

NCAA

Project Objective

The purpose of this project is to:

  1. Visualize NCAA Basketball and Football programs across the US
  2. Analyze state budgets and how they may impact sports programs
  3. Build Machine Learning models that predict:
  • Which conference should you go to in order to be drafted by NBA?
  • What is the probability of you getting drafted in the NFL?
  1. Host a serverless app

Methods Used

  • Extract and Transform
  • Data Visualization
  • Machine Learning
  • Cloud

Technologies

  • Python
  • Flask, Pandas, Jupyter
  • PostgreSQL
  • Google Colab
  • Tableau
  • Microsoft Azure ML
  • HTML/CSS/Bootstrap
  • Heroku
  • AWS services: S3, RDS

Process

  • Gather data
  • Read in data
  • Data
    • Parse (multiple data files)
    • Map data files (implementing key relationships)
    • GeoCode Data (using Google Maps API)
  • Load cleaned data into PostgreSQL connected through AWS RDS
  • Create visuals using Tableau
  • Construct a Machine Learning model using Microsoft Azure ML Studio
  • Build a Flask app that renders our app with ML results on Heroku

Challenges

  • Initially when hosting with AWS, ran into difficulties connecting PostgreSQL to app.
  • ML model request would time out on AWS when hosting.
  • Building and optimizing ML models
  • Web scrapping data

Next Step

  • Create a route on the app to allow user to access tables on PostgreSQL upon request.

Data Sources

Contributing Members

Team Leads: Salvador Olivas (https://github.com/solivas89) | Nabeel Sheikh (https://github.com/nsheikh23)

Other Members:

Name Github
Dale Romero https://github.com/chippen-dale
Dominique Dunning https://github.com/ddunning

ncaa-ml's People

Contributors

nsheikh23 avatar

Watchers

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