Hi everyone,

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Hi Divyansh,
Mayank's suggestions on increasing training iterations and using post-processing are good starting points for addressing the "none" label bleed-through you are seeing.
On a related note, we have a validated JAABA lunge classifier developed as part of the DANCE pipeline (Yadav, Dey et al., eLife 2025). Direct transfer may be limited if your arena geometry and recording conditions differ substantially from ours, since JAABA features are sensitive to these parameters. That said, the GitHub repository (https://github.com/agrawallab/DANCE) and the publication describe our training procedure in detail, including how we handled class imbalance between "lunge" and "none" frames and how we selected training videos iteratively, which may provide useful guidance for building your own classifier.
Hope this helps.
Pavan