RESEARCHarXiv CS.AI·4/30/2026
Grounding vs. Compositionality: On the Non-Complementarity of Reasoning in Neuro-Symbolic Systems
This work challenges the assumption that compositional reasoning emerges as a byproduct of symbol grounding in neuro-symbolic AI. It introduces the $i$LTN architecture, demonstrating that models trained solely on a grounding objective fail to generalize, while joint training on perceptual grounding and multi-step reasoning is crucial.
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