Frames: a corpus for adding memory to goal-oriented dialogue systems

نویسندگان

  • Layla El Asri
  • Hannes Schulz
  • Shikhar Sharma
  • Jeremie Zumer
  • Justin Harris
  • Emery Fine
  • Rahul Mehrotra
  • Kaheer Suleman
چکیده

This paper presents the Frames dataset1, a corpus of 1369 human-human dialogues with an average of 15 turns per dialogue. We developed this dataset to study the role of memory in goal-oriented dialogue systems. Based on Frames, we introduce a task called frame tracking, which extends state tracking to a setting where several states are tracked simultaneously. We propose a baseline model for this task. We show that Frames can also be used to study memory in dialogue management and information presentation through natural language generation.

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تاریخ انتشار 2017