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Description
Team analysis citi bike ride data and tries to model the expected ride length.
Good things:
- Results discuss feature importance, which makes the model more interpretable.
- Interesting visualizations.
- Overlaying weather data is an interesting idea.
Improvement areas:
- I felt a general lack of clarity on the objective. Bike theft, social bias, probability of ending locations, bike available for redistribution is mentioned as objective/application at different places. These might be interrelated, but I think its too much promise or trying to solve too many problems from one model output.
- Weather data granularity should be at least at hour level at least. Overlaying rainfall on day bike was out is leaving good scope for error.
- Modeling (classifier for trips more than one hour) does not really match with stated objective (predicting trip duration)
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