Deep Neural Networks for Query Expansion using Word Embeddings
November 08, 2018 Β· Declared Dead Β· π European Conference on Information Retrieval
"No code URL or promise found in abstract"
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Authors
Ayyoob Imani, Amir Vakili, Ali Montazer, Azadeh Shakery
arXiv ID
1811.03514
Category
cs.IR: Information Retrieval
Cross-listed
cs.CL
Citations
44
Venue
European Conference on Information Retrieval
Last Checked
4 months ago
Abstract
Query expansion is a method for alleviating the vocabulary mismatch problem present in information retrieval tasks. Previous works have shown that terms selected for query expansion by traditional methods such as pseudo-relevance feedback are not always helpful to the retrieval process. In this paper, we show that this is also true for more recently proposed embedding-based query expansion methods. We then introduce an artificial neural network classifier to predict the usefulness of query expansion terms. This classifier uses term word embeddings as inputs. We perform experiments on four TREC newswire and web collections show that using terms selected by the classifier for expansion significantly improves retrieval performance when compared to competitive baselines. The results are also shown to be more robust than the baselines.
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