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Multi-classifier classification of spam email on an ubiquitous multi-core architecture

机译:泛滥的多核架构上垃圾邮件的多分类器分类

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摘要

This paper presents an innovative fusion based multi-classifier email classification on a ubiquitous multi-core architecture. Many approaches use text-based single classifiers or multiple weakly trained classifiers to identify spam messages from a large email corpus. We build upon our previous work on multi-core by apply our ubiquitous multi-core framework to run our fusion based multi-classifier architecture. By running each classifier process in parallel within their dedicated core, we greatly improve the performance of our proposed multi-classifier based filtering system. Our proposed architecture also provides a safeguard of user mailbox from different malicious attacks. Our experimental results show that we achieved an average of 30% speedup at the average cost of 1.4 ms. We also reduced the instance of false positive, which is one of the key challenges in spam filtering system, and increases email classification accuracy substantially compared with single classification techniques.
机译:本文提出了一种创新的基于融合的多分类器电子邮件分类,该分类基于无处不在的多核体系结构。许多方法使用基于文本的单个分类器或多个训练有素的分类器来识别来自大型电子邮件语料库的垃圾邮件。我们通过应用无处不在的多核框架来运行我们基于融合的多分类器架构,从而在以前的多核工作基础上进行构建。通过在各自的专用内核中并行运行每个分类器进程,我们极大地提高了我们提出的基于多分类器的过滤系统的性能。我们提出的体系结构还可以保护用户邮箱免受各种恶意攻击。我们的实验结果表明,我们以1.4 ms的平均成本实现了平均30%的加速。我们还减少了误报的情况,这是垃圾邮件过滤系统的主要挑战之一,并且与单一分类技术相比,可以大大提高电子邮件分类的准确性。

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