An Online Variational Inference and Ensemble Based Multi-label Classifier for Data Streams

Thi Thu Thuy Nguyen, Tien Thanh Nguyen, Alan Wee‐Chung Liew, Shilin Wang, Tiancai Liang, Yongjiang Hu · 2019

Recently, multi-label classification algorithms have been increasingly required by a diversity of applications, such as text categorization, web, and social media mining. In particular, these applications often have streams of data coming continuously, and require learning and predicting done on-the-fly. In this paper, we introduce a scalable online variational inference based ensemble method for classifying multi-label data, where random projections are used to create the ensemble system. As a second-order generative method, the proposed classifier can effectively exploit the underlying structure of the data during learning. Experiments on several real-world datasets demonstrate the superior performance of our new method over several well-known methods in the literature.

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