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Differentiate the Evaluator, Not the Program: An Efficient Runtime Representation for Neuro-Symbolic Learning
A paper proposing a runtime representation for neuro-symbolic learning.
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By Lucas ShenemanarXiv
Read original article →The authors present Native Differentiable Virtual Machine (NDVM), a runtime representation that differentiates executable programs without compiling each candidate into a separate graph.
NDVM separates symbolic structure from differentiable numeric state, allowing for efficient evaluation of large populations of parameter vectors. The paper demonstrates the effectiveness of NDVM in co-search over LLM-proposed programs.
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