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mask-rcnn-models

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Real-time object detection & tracking pipeline — Mask R-CNN + SORT algorithm with Kalman filtering. 78.4% tracking accuracy, 100% ID stability. Self-supervised evaluation metrics.

  • Updated Feb 5, 2026
  • Python

Frequency Self-Attention for Building Segmentation in Aerial Imagery. Frequency-domain self-attention for building segmentation in aerial imagery. FsaNet in a Mask R-CNN, attending over 256 DCT coefficients instead of 65,536 pixels. Cheaper and more accurate than the spatial baseline.

  • Updated Aug 7, 2026
  • Jupyter Notebook

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