Btsa

Berlin Time Series Analysis Repository

Data ScienceHTMLMIT

Abstract

Btsa is an open-source Data Science project. Berlin Time Series Analysis Repository. It is built using HTML, Python. The complete source code is publicly available on GitHub under the MIT License, making it a useful reference for students building a Data Science mini project or final-year project.

1. Introduction

Berlin Time Series Analysis Repository

2. Objective

Berlin Time Series Analysis Repository

This project demonstrates how HTML, Python can be applied to a real-world Data Science problem.

4. Technology Stack

HTMLPython
  • Build Docker image:
  • Run container

5. System Requirements

General requirements for this technology stack — check the README for exact versions.

  • A modern web browser
  • VS Code or any code editor
  • Python 3.8 or later
  • pip / virtualenv for dependencies
  • VS Code, PyCharm or Jupyter Notebook
  • Git (to clone the repository)

6. Installation & Setup

git clone https://github.com/juanitorduz/btsa.git
cd btsa

Full setup instructions are in the project README.

7. Future Enhancements

Suggested extensions you can add to make this your own project.

  • Turn the analysis into an interactive dashboard
  • Automate data refresh with a scheduled job
  • Add a predictive model on top of the analysis

8. Viva / Review Questions

Common questions examiners ask for projects in this domain.

  1. What is the source of the dataset and how was missing data handled?
  2. Which exploratory analysis steps revealed the most useful insight?
  3. Why were these particular charts chosen to present the data?
  4. Which statistical or ML technique supports the conclusions?
  5. How could the analysis be automated or refreshed with new data?

9. Source Code & License

This project is developed by juanitorduz and published on GitHub under the MIT License. Please follow the license terms and credit the original author when you use or modify this code.

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