The research explores the application of crowdsourcing and data mining techniques to determine the optimal transportation methods in Sri Lanka by analyzing user mobility captured through GPS-enabled mobile devices. Utilizing an Android application, data on transportation method satisfaction and user's mobility patterns were collected, processed, and analyzed to develop an algorithm that predicts the best routes and times for travel. The study demonstrates that integrating crowdsourced GPS data with data mining methods offers an effective solution to mitigate traffic issues and enhance user satisfaction with transportation options.
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