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Project for SFWRENG_4AL3 course on Kaggle Give Me Some Credit challenge: https://www.kaggle.com/c/GiveMeSomeCredit/overview/description. The objective is to build a machine learning model for loan risk assessment, that predicts whether an individual (with a borrowing and financial history) will default on a loan within 2 years.

active 2025-11-052025-11-11 (UTC)

Complete coverage26,684 / 26,684 hourly files (100%) · 2 absent upstream2023-08-152026-08-30 (UTC)
Events
3
Pushes
0
Pull requests
0
Issues
1
Stars
0
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0

Activity over time

Daily event counts in the loaded window

Line chart, 7 days from 2025-11-05 to 2025-11-11. Pushes: 0 total, peak 0 in a day. Pull requests: 0 total, peak 0 in a day. Issues: 1 total, peak 1 in a day. Comments: 0 total, peak 0 in a day. Stars: 0 total, peak 0 in a day.

  • Pushes
  • Pull requests
  • Issues
  • Comments
  • Stars

Stars, PRs, issues and forks are under-captured in the later part of this window. GH Archive progressively stopped capturing non-push events during 2026 — −95% or worse by the end of the window. Every series here except Pushes fades for that reason, so a decline above reflects the archive, not this repository. Pushes stay reliable throughout, so read them, and the contributor counts derived from them, as the real signal. Data health has the measurements.

Top contributors

Pushes, PRs, issues, reviews and comments — stars and forks excluded, so this is contribution rather than popularity

ContributorContributionsPushesPRsComments
sharbata1000

Recent activity

Latest issues, pull requests and releases

  • Issue#1sharbata2025-11-05 06:32
    Preprocessing - Data Cleanup, Feature Engineering, Feature Selection

Totals cover only the window loaded into ClickHouse and count events, not GitHub's lifetime totals — 0 stars here means stars gained during the window, not the repo's star count.