Attribute weighted Naive Bayes classification based on a Space Search Optimization algorithm

Chenxu Hong, Li Chen, Honghao Zhang*, Wei Huang

*Corresponding author for this work

Research output: Chapter in Book/Report/Conference proceedingConference contributionpeer-review

Abstract

Naive Bayes (NB) is an effective classification method. Due to its good performance, it is widely used to graphics and text classification problems in real-world applications. In this study, we propose an efficient improved model called space search optimization algorithm attribute weighted naive Bayes (SSOA-WNB), which combines attribute weighting method and a space search optimization algorithm (SSOA) method. In SSOA-WNB, the attribute weight is added to the naive Bayes classification formula, and the posterior probability is estimated by the attribute weighting method. To learn the attribute weight, we single out the SSOA method to estimate the weight matrix of the attribute value. We conducted a series of experiments on UCI benchmark data sets. The experimental results show that compared with the traditional NB method and some of the latest advanced algorithms, SSOA-WNB is significantly better than the compared well-known methods in terms of classification accuracy.

Original languageEnglish
Title of host publicationISCTT 2021 - 6th International Conference on Information Science, Computer Technology and Transportation
EditorsTao Zhang
PublisherVDE VERLAG GMBH
Pages87-92
Number of pages6
ISBN (Electronic)9783800757282
Publication statusPublished - 2022
Externally publishedYes
Event2021 6th International Conference on Information Science, Computer Technology and Transportation, ISCTT 2021 - Xishuangbanna, Virtual, China
Duration: 26 Nov 202128 Nov 2021

Publication series

NameISCTT 2021 - 6th International Conference on Information Science, Computer Technology and Transportation

Conference

Conference2021 6th International Conference on Information Science, Computer Technology and Transportation, ISCTT 2021
Country/TerritoryChina
CityXishuangbanna, Virtual
Period26/11/2128/11/21

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