JOURNAL ARTICLE

An Auto-Associative Neural Network for Information Retrieval

G. DesjardinsR. ProulxR. Godin

Year: 2006 Journal:   The 2006 IEEE International Joint Conference on Neural Network Proceedings Pages: 3492-3498

Abstract

Neural network is an important paradigm that has received little attention from the community of researchers in information retrieval, especially the auto-associative neural networks. These networks are capable of discovering patterns of terms among documents. We propose an auto-associative neural network to model the classification and to perform the matching task The unique layer network is trained with the documents of the collection and then used to recall the most relevant documents to specific queries. Our model has been tested on a TREC sub-collection. The results are compared against the vector space model, The experiment shows higher level of global precision and recall. The recall-precision curves show an important improvement on the precisions for the low levels of recall, which indicates a faster retrieval of the first relevant documents. This strength of the auto-associative neural network makes it an attractive model in information retrieval for general collections.

Keywords:
Computer science Associative property Artificial neural network Recall Artificial intelligence Task (project management) Vector space model Precision and recall Content-addressable memory Matching (statistics) Information retrieval Machine learning

Metrics

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Cited By
0.00
FWCI (Field Weighted Citation Impact)
0
Refs
0.39
Citation Normalized Percentile
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Topics

Neural Networks and Applications
Physical Sciences →  Computer Science →  Artificial Intelligence
Image Processing and 3D Reconstruction
Physical Sciences →  Computer Science →  Computer Vision and Pattern Recognition
Image Retrieval and Classification Techniques
Physical Sciences →  Computer Science →  Computer Vision and Pattern Recognition

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