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      Detection of Slang Words in e-Data using semi-Supervised Learning

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          Abstract

          The proposed algorithmic approach deals with finding the sense of a word in an electronic data. Now a day,in different communication mediums like internet, mobile services etc. people use few words, which are slang in nature. This approach detects those abusive words using supervised learning procedure. But in the real life scenario, the slang words are not used in complete word forms always. Most of the times, those words are used in different abbreviated forms like sounds alike forms, taboo morphemes etc. This proposed approach can detect those abbreviated forms also using semi supervised learning procedure. Using the synset and concept analysis of the text, the probability of a suspicious word to be a slang word is also evaluated.

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          An Adapted Lesk Algorithm for Word Sense Disambiguation Using WordNet

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            A portrait of the Semantic Web in action

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              Synonymous Paraphrasing Using WordNet and Internet

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                Author and article information

                Journal
                2015-11-19
                Article
                10.5121/ijaia.2013.4504
                1702.04241
                fec2241b-6760-4451-a448-fa7ef3860df7

                http://arxiv.org/licenses/nonexclusive-distrib/1.0/

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                Custom metadata
                13 pages in International Journal of Artificial Intelligence & Applications (IJAIA), Vol. 4, No. 5, September 2013
                cs.CL

                Theoretical computer science
                Theoretical computer science

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