Privacy preserving data mining based on geometrical data transformation method (GDTM) and k-means clustering algorithm
In current era of sharing unlimited digital information via the network, protecting the privacy of information is crucial even during the data mining process due to a high possibility of the information security risks such as being abused or leakage. Such problems motivate the research in Privacy Pr...
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International Journal of Innovative Computing (IJIC)
2018
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my.utm.821602019-11-06T03:51:14Z http://eprints.utm.my/id/eprint/82160/ Privacy preserving data mining based on geometrical data transformation method (GDTM) and k-means clustering algorithm Sirat @ Md. Siraj, Maheyzah Ithnin, Norafida Kutty Mammi, Hazinah Mat Din, Mazura Jamadi, Nur Athirah QA75 Electronic computers. Computer science In current era of sharing unlimited digital information via the network, protecting the privacy of information is crucial even during the data mining process due to a high possibility of the information security risks such as being abused or leakage. Such problems motivate the research in Privacy Preserving Data Mining (PPDM) and it became one of the newest trends. Therefore, this papers reviews the related works in terms of issues, approaches, techniques, performance quantification as well as thorough discussions on pros and cons of previous researches. We also propose an improved PPDM that applying Geometrical Data Transformation Method (GDTM) and K-Means Clustering Algorithm for optimum accuracy of mining and zero data loss while preserving the privacy of information. International Journal of Innovative Computing (IJIC) 2018 Article PeerReviewed Sirat @ Md. Siraj, Maheyzah and Ithnin, Norafida and Kutty Mammi, Hazinah and Mat Din, Mazura and Jamadi, Nur Athirah (2018) Privacy preserving data mining based on geometrical data transformation method (GDTM) and k-means clustering algorithm. International Journal of Innovative Computing (IJIC), 8 (2). pp. 1-7. ISSN 2180-4370 https://doi.org/10.11113/ijic.v8n2.174 DOI: 10.11113/ijic.v8n2.174 |
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QA75 Electronic computers. Computer science Sirat @ Md. Siraj, Maheyzah Ithnin, Norafida Kutty Mammi, Hazinah Mat Din, Mazura Jamadi, Nur Athirah Privacy preserving data mining based on geometrical data transformation method (GDTM) and k-means clustering algorithm |
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In current era of sharing unlimited digital information via the network, protecting the privacy of information is crucial even during the data mining process due to a high possibility of the information security risks such as being abused or leakage. Such problems motivate the research in Privacy Preserving Data Mining (PPDM) and it became one of the newest trends. Therefore, this papers reviews the related works in terms of issues, approaches, techniques, performance quantification as well as thorough discussions on pros and cons of previous researches. We also propose an improved PPDM that applying Geometrical Data Transformation Method (GDTM) and K-Means Clustering Algorithm for optimum accuracy of mining and zero data loss while preserving the privacy of information. |
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Article |
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Sirat @ Md. Siraj, Maheyzah Ithnin, Norafida Kutty Mammi, Hazinah Mat Din, Mazura Jamadi, Nur Athirah |
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Sirat @ Md. Siraj, Maheyzah Ithnin, Norafida Kutty Mammi, Hazinah Mat Din, Mazura Jamadi, Nur Athirah |
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Sirat @ Md. Siraj, Maheyzah |
title |
Privacy preserving data mining based on geometrical data transformation method (GDTM) and k-means clustering algorithm |
title_short |
Privacy preserving data mining based on geometrical data transformation method (GDTM) and k-means clustering algorithm |
title_full |
Privacy preserving data mining based on geometrical data transformation method (GDTM) and k-means clustering algorithm |
title_fullStr |
Privacy preserving data mining based on geometrical data transformation method (GDTM) and k-means clustering algorithm |
title_full_unstemmed |
Privacy preserving data mining based on geometrical data transformation method (GDTM) and k-means clustering algorithm |
title_sort |
privacy preserving data mining based on geometrical data transformation method (gdtm) and k-means clustering algorithm |
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International Journal of Innovative Computing (IJIC) |
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2018 |
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http://eprints.utm.my/id/eprint/82160/ https://doi.org/10.11113/ijic.v8n2.174 |
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