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The Ubuntu Dialogue Corpus: A Large Dataset for Research in Unstructured Multi-Turn Dialogue Systems

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This paper introduces the Ubuntu Dialogue Corpus, a dataset containing almost 1 million multi-turn dialogues, with a total of over 7 million utterances and 100 million words. This provides a unique resource for research into building dialogue managers based on neural language models that can make use of large amounts of unlabeled data. The dataset has both the multi-turn property of conversations in the Dialog State Tracking Challenge datasets, and the unstructured nature of interactions from microblog services such as Twitter. We also describe two neural learning architectures suitable for analyzing this dataset, and provide benchmark performance on the task of selecting the best next response.

Ryan Lowe, Nissan Pow, Iulian Serban, Joelle Pineau• 2015

Related benchmarks

TaskDatasetResultRank
Multi-turn Response SelectionUbuntu Dialogue Corpus V1 (test)
R10@163.8
102
Response SelectionDouban Conversation Corpus (test)
MAP0.485
94
Response SelectionE-commerce (test)
Recall@1 (R10)0.365
81
Multi-turn Response SelectionE-commerce Dialogue Corpus (test)
R@1 (Top 10 Set)36.5
70
Multi-turn Response SelectionDouban Conversation Corpus
MAP48.5
67
Multi-turn Response SelectionUbuntu Corpus
Recall@1 (R10)63.8
65
Response SelectionUbuntu (test)
Recall@1 (Top 10)0.638
58
Dialogue Response SelectionUbuntu (test)
R@1 (R10)0.638
18
Response RankingUbuntu Dialog Corpus v1 (test)
Recall@1 (1/2)89.8
16
Multi-turn Response SelectionUbuntu Dialogue Corpus V1
Recall@1 (Pool 10)60.4
14
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