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Papers/HDLTex: Hierarchical Deep Learning for Text Classification

HDLTex: Hierarchical Deep Learning for Text Classification

Kamran Kowsari, Donald E. Brown, Mojtaba Heidarysafa, Kiana Jafari Meimandi, Matthew S. Gerber, Laura E. Barnes

2017-09-24Text ClassificationMulti-class ClassificationDocument Classificationtext-classificationDeep LearningGeneral ClassificationClassification
PaperPDFCodeCodeCode(official)

Abstract

The continually increasing number of documents produced each year necessitates ever improving information processing methods for searching, retrieving, and organizing text. Central to these information processing methods is document classification, which has become an important application for supervised learning. Recently the performance of these traditional classifiers has degraded as the number of documents has increased. This is because along with this growth in the number of documents has come an increase in the number of categories. This paper approaches this problem differently from current document classification methods that view the problem as multi-class classification. Instead we perform hierarchical classification using an approach we call Hierarchical Deep Learning for Text classification (HDLTex). HDLTex employs stacks of deep learning architectures to provide specialized understanding at each level of the document hierarchy.

Results

TaskDatasetMetricValueModel
Text ClassificationWOS-5736Accuracy90.93HDLTex
Text ClassificationWOS-46985Accuracy76.58HDLTex
Text ClassificationWOS-11967Accuracy86.07HDLTex
Document ClassificationWOS-5736Accuracy90.93HDLTex
Document ClassificationWOS-46985Accuracy76.58HDLTex
Document ClassificationWOS-11967Accuracy86.07HDLTex
ClassificationWOS-5736Accuracy90.93HDLTex
ClassificationWOS-46985Accuracy76.58HDLTex
ClassificationWOS-11967Accuracy86.07HDLTex

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