2020
DOI: 10.18280/rces.070403
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Performance Evaluation of Email Spam Text Classification Using Deep Neural Networks

Abstract: Spam in email box is received because of advertising, collecting personal information, or to indulge malware through websites or scripts. Most often, spammers send junk mail with an intention of committing email fraud. Today spam mail accounts for 45% of all email and hence there is an ever-increasing need to build efficient spam filters to identify and block spam mail. However, notably today’s spam filters in use are built using traditional approaches such as statistical and content-based techniques. These te… Show more

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Cited by 7 publications
(3 citation statements)
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“…In addition to the aforementioned studies, LSTM and RNNbased approaches have also been applied to various real-world applications of text classification. In the study [14], the authors proposed a spam message classification system based on an LSTM network. The system achieved a high accuracy rate in detecting spam messages.…”
Section: Related Workmentioning
confidence: 99%
“…In addition to the aforementioned studies, LSTM and RNNbased approaches have also been applied to various real-world applications of text classification. In the study [14], the authors proposed a spam message classification system based on an LSTM network. The system achieved a high accuracy rate in detecting spam messages.…”
Section: Related Workmentioning
confidence: 99%
“…News is an important communication medium used to help people understand current events and grasp social development trends. Its content is mainly presented in text, which is the text form that people are most exposed to in daily life [3]. Text classification technology has become a research hotspot and core technology in the fields of text mining, information retrieval and information supervision.…”
Section: Introductionmentioning
confidence: 99%
“…In recent years, deep learning techniques have gained significant attention in various fields such as Pattern Recognition [1][2][3][4][5][6][7][8][9], Medical Imaging, Video Analysis, driver drowsiness detection [10,11], video analysis, Spam detection [12], Healthcare, Clustering [13] and many more. One of the popular techniques is transfer learning, which allows the pretrained models to be used for a new set of tasks with minimal training data.…”
Section: Introductionmentioning
confidence: 99%