In this project, I implemented LSTM model to predict hourly Bike Share Demand
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Updated
Mar 13, 2020 - Jupyter Notebook
In this project, I implemented LSTM model to predict hourly Bike Share Demand
Having some fun with Capital Bikeshare's data
A project that aims to estimate the correlation between Guadalajara's crimes and its public bike system. Done as part of the Saturdays.AI program in its Guadalajara 2nd edition.
Analyzing and predicting the demand for bikes using a Spatio-Temporal Graph Convolutional Network (STGCN) model.
Linear Regression model for Bike sharing dataset
London Bike Sharing Dataset
Collect and pre-process historical trip data from major bike sharing companies
FOSSCON Indego Presentation / Cycling Through The Indego Bike-Share API
This project demostrates my SQL and Excel skills, tools common for any organization. The datasets were too big to analyse in Excel alone and so I used SQL to do much of the heavy lifting and did visualizations in excel.
Developing a business strategy to meet the demand levels and meet the customer's expectations.
In this project, the dataset provided by Motivate (https://www.motivateco.com/), a bike share system provider for many major cities in the United States, to uncover bike share usage patterns. It is designed to be interactive and allows you to compare usage between three large cities: Chicago, New York City, and Washington, DC.
Analyzing the bike-share data of US from Motivate, for three popular cities Washington, New York, and Chicago and showing statistics for different users, stations, and times of travel. Also filters the data sets according to the user's choice and shows statistics on the filtered data.
Bikes' Rental Analysis - The repository contains data analysis aiming on understanding behavior of people renting bikes in Washington D.C. in years 2012-2018 (based on Capital Bikeshare data).
An simple example of data exploration and test-driving development
In this project, I thoroughly clean bike-share data from 2014-2015 and build a simplistic ARIMA model to forecast daily revenue per bike station in 2016. (Repo in progress)
Predict near-term Capital Bikeshare availability using a random forest and Poisson regression. Display current status and predictions with leaflet.js map visualization.
Machine Learning
Customer Analytics: Explore and analyze data related to bikeshare systems for three major cities
🚲 Bike Share Route Planner
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