1990

Finding Structure in Time

Jeffrey L. Elman

citations

Cite Score

90

AI summary

This paper introduces a recurrent neural network model with context units, demonstrating its ability to learn temporal dependencies in tasks ranging from a temporal XOR problem to discovering syntactic and semantic categories in natural language. The model leverages distributed representations and context to capture intricate temporal structures, achieving promising results.

Main Contributions

  • Introduced a simple recurrent network architecture with context units for learning temporal dependencies.
  • Demonstrated the model's ability to solve a temporal version of the XOR problem.
  • Showed the model can discover syntactic and semantic categories in natural language data, learning word-order constraints.
  • Showed that the model can learn internal representations that are sensitive to temporal context, allowing for generalizations across classes of items.
  • The model can extract statistical regularities of words that may be used as a cue to the boundaries of linguistic units.

Abstract

Time underlies many interesting human behaviors. Thus, the question of how to represent time in connectionist models is very important. One approach is to represent time implicitly by its effects on processing rather than explicitly (as in a spatial representation). The current report develops a proposal along these lines first described by Jordan (1986) which involves the use of recurrent links in order to provide networks with a dynamic memory. In this approach, hidden unit patterns are fed back to themselves; the internal representations which develop thus reflect task demands in the context of prior internal states. A set of simulations is reported which range from relatively simple problems (temporal version of XOR) to discovering syntactic/semantic features for words. The networks are able to learn interesting internal representations which incorporate task demands with memory demands; indeed, in this approach the notion of memory is inextricably bound up with task processing. These representations reveal a rich structure, which allows them to be highly context-dependent, while also expressing generalizations across classes of items. These representations suggest a method for representing lexical categories and the type/token distinction.

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