Expertini Research Research
Artificial Intelligence And Data Science PDF Available DOI: 10.1109/ACCESS.2020.3042757 Non-peer-reviewed Preprint

Reference-Based Sequence Classification

Zengyou He, Guangyao Xu, Chaohua Sheng, Bo Xu, Quan Zou  ยท  Published 2019-05-17

Abstract

Sequence classification is an important data mining task in many real world applications. Over the past few decades, many sequence classification methods have been proposed from different aspects. In particular, the pattern-based method is one of the most important and widely studied sequence classification methods in the literature. In this paper, we present a reference-based sequence classification framework, which can unify existing pattern-based sequence classification methods under the same umbrella. More importantly, this framework can be used as a general platform for developing new sequence classification algorithms. By utilizing this framework as a tool, we propose new sequence classification algorithms that are quite different from existing solutions. Experimental results show that new methods developed under the proposed framework are capable of achieving comparable classification accuracy to those state-of-the-art sequence classification algorithms.
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