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📄 ResearchJuly 13, 2026

Learning to Navigate Efficiently with Only 0.58M Trainable Parameters

Recent progress in visual navigation has largely been driven by scale: end-to-end policies with hundreds of millions of parameters trained on billions of frames or large-scale simulated data. We ask how much of this scale a single task family actually requires, and what structure can substitute for ...

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Source

http://arxiv.org/abs/2607.11029v1