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Chessboard Corner Pose Dataset β™ŸοΈπŸ“

1. Dataset Description

This dataset is designed for Keypoint Detection (Pose Estimation) tasks, specifically to detect the 4 semantic corners of a chessboard from various camera angles.

It is intended to be used as Phase 1 of a Chess Move Tracking pipeline. The detected keypoints are used to calculate the Homography matrix for Perspective Warping (straightening the board).

  • Task: Keypoint Detection (YOLO-Pose)
  • Format: YOLOv8 / YOLO11 Pose Format
  • Input: Raw video frames (rotated, tilted, occluded)
  • Output: 4 Keypoints (a1, h1, a8, h8)

2. Dataset Structure

Keypoints Definition

The model is trained to detect 1 Class (Chessboard) with 4 Keypoints:

  1. Index 0: a1 (Bottom-Left in White perspective)
  2. Index 1: h1 (Bottom-Right in White perspective)
  3. Index 2: a8 (Top-Left in White perspective)
  4. Index 3: h8 (Top-Right in White perspective)

Data Splits

Split Images Description
Train 3390 Extracted from Various Chess Play Videos with augmentations
Valid 290 Extracted from Various Chess Play Videos (Unseen angles)
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Models trained or fine-tuned on surawut/chessboard-dataset-yolo