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Natural Language Processing Based Advanced Method of Unnecessary Video Detection

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dc.contributor.author Moon, Nazmun Nessa
dc.contributor.author Salehin, Imrus
dc.contributor.author Parvin, Masuma
dc.contributor.author Hasan, Md. Mehedi
dc.contributor.author Talha, Iftakhar Mohammad
dc.contributor.author Debnath, Susanta Chandra
dc.contributor.author Nur, Fernaz Narin
dc.contributor.author Saifuzzaman, Mohd.
dc.date.accessioned 2022-03-12T09:46:02Z
dc.date.available 2022-03-12T09:46:02Z
dc.date.issued 2021
dc.identifier.uri http://dspace.daffodilvarsity.edu.bd:8080/handle/123456789/7457
dc.description.abstract In this study we have described the process of identifying unnecessary video using an advanced combined method of natural language processing and machine learning. The system also includes a framework that contains analytics databases and which helps to find statistical accuracy and can detect, accept or reject unnecessary and unethical video content. In our video detection system, we extract text data from video content in two steps, first from video to MPEG-1 audio layer 3 (MP3) and then from MP3 to WAV format. We have used the text part of natural language processing to analyze and prepare the data set. We use both Naive Bayes and logistic regression classification algorithms in this detection system to determine the best accuracy for our system. In our research, our video MP4 data has converted to plain text data using the python advance library function. This brief study discusses the identification of unauthorized, unsocial, unnecessary, unfinished, and malicious videos when using oral video record data. By analyzing our data sets through this advanced model, we can decide which videos should be accepted or rejected for the further actions. en_US
dc.language.iso en_US en_US
dc.publisher International Journal of Electrical and Computer Engineering en_US
dc.subject Accuracy rate en_US
dc.subject Detection approach en_US
dc.subject Naive bayes en_US
dc.subject Natural language processing en_US
dc.subject Text chunk approach en_US
dc.title Natural Language Processing Based Advanced Method of Unnecessary Video Detection en_US
dc.type Article en_US


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