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1
Optimality Theory: Constraint Interaction in Generative Grammar ...
Smolensky, Paul; Prince, Alan S.. - : Rutgers University, 2022
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Compositional processing emerges in neural networks solving math problems
In: Proceedings of the Annual Meeting of the Cognitive Science Society, vol 43, iss 43 (2021)
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3
Infinite use of finite means? Evaluating the generalization of center embedding learned from an artificial grammar
In: Proceedings of the Annual Meeting of the Cognitive Science Society, vol 43, iss 43 (2021)
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4
Compositional Processing Emerges in Neural Networks Solving Math Problems ...
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Distributed neural encoding of binding to thematic roles ...
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Infinite use of finite means? Evaluating the generalization of center embedding learned from an artificial grammar ...
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7
Compositional processing emerges in neural networks solving math problems ...
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8
How much do language models copy from their training data? Evaluating linguistic novelty in text generation using RAVEN ...
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9
Compositional Processing Emerges in Neural Networks Solving Math Problems
In: Cogsci (2021)
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10
Emergent Gestural Scores in a Recurrent Neural Network Model of Vowel Harmony
In: Proceedings of the Society for Computation in Linguistics (2021)
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11
Testing for Grammatical Category Abstraction in Neural Language Models
In: Proceedings of the Society for Computation in Linguistics (2021)
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12
Universal linguistic inductive biases via meta-learning ...
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13
Tensor Product Decomposition Networks: Uncovering Representations of Structure Learned by Neural Networks
In: Proceedings of the Society for Computation in Linguistics (2020)
Abstract: We introduce an analysis technique for understanding compositional structure present in the vector representations used by neural networks. The inner workings of neural networks are notoriously difficult to understand, and in particular it is far from clear how they manage to perform remarkably well on tasks that depend on compositional structure even though they use continuous vector representations with no obvious compositional structure. Using our analysis technique, we show that the representations of these models can be closely approximated by Tensor Product Representations, a type of interpretable structure that lends significant insight into the workings of these hard-to-interpret models.
Keyword: compositionality; Computational Linguistics; neural networks; symbolic structure; tensor product representations
URL: https://scholarworks.umass.edu/scil/vol3/iss1/55
https://scholarworks.umass.edu/cgi/viewcontent.cgi?article=1130&context=scil
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14
Learning a gradient grammar of French liaison
In: Proceedings of the Annual Meetings on Phonology; Proceedings of the 2019 Annual Meeting on Phonology ; 2377-3324 (2020)
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15
RNNs Implicitly Implement Tensor Product Representations
In: International Conference on Learning Representations ; ICLR 2019 - International Conference on Learning Representations ; https://hal.archives-ouvertes.fr/hal-02274498 ; ICLR 2019 - International Conference on Learning Representations, May 2019, New Orleans, United States (2019)
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16
Quantum Language Processing ...
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17
Transient blend states and discrete agreement-driven errors in sentence production
In: Proceedings of the Society for Computation in Linguistics (2019)
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18
Augmentic Compositional Models for Knowledge Base Completion Using Gradient Representations
In: Proceedings of the Society for Computation in Linguistics (2019)
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19
Augmenting Compositional Models for Knowledge Base Completion Using Gradient Representations ...
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20
A Simple Recurrent Unit with Reduced Tensor Product Representations ...
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