Beam Tree Recursive Cells
Jishnu Ray Chowdhury, Cornelia Caragea
Abstract
We propose Beam Tree Recursive Cell (BT-Cell) -a backpropagation-friendly framework to extend Recursive Neural Networks (RvNNs) with beam search for latent structure induction. We further extend this framework by proposing a relaxation of the hard top-k operators in beam search for better propagation of gradient signals. We evaluate our proposed models in different out-of-distribution splits in both synthetic and realistic data. Our experiments show that BT-Cell achieves near-perfect performance on several challenging structure-sensitive synthetic tasks like ListOps and logical inference while maintaining comparable performance in realistic data against other RvNN-based models. Additionally, we identify a previously unknown failure case for neural models in generalization to unseen number of arguments in ListOps. The code is available at: https://github.com/JRC1995/ BeamTreeRecursiveCells .
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Install the CLIlune papers fulltext 591d2220-9167-437e-800f-5c53a09c88e8Cited by top-tier papers5
- Recursion in Recursion: Two-Level Nested Recursion for Length Generalization with ScalabilityJishnu Ray Chowdhury, Cornelia CarageaNeurIPS 2023 · 7 citations
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- Banyan: Improved Representation Learning with Explicit StructureMattia Opper, N. SiddharthICML 2025
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