Learning GenAI via SOTA Papers
Title: Ouroboros-Spatial: Closing the Data-Model Loop for Spatial Reasoning Source: http://arxiv.org/abs/2606.11719v1 Summary: This paper introduces a self-evolving training framework that enables models to co-evolve their training distribution with their own capabilities by acting as both proposer and solver. It represents a significant breakthrough in efficiency and reasoning by closing the data-model loop, allowing for substantial performance gains with an order of magnitude less training data.
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