Introduction of Implementation Of Direct and Indirect Discrimination Rules for Prevention Of Larger Data in Data Mining

March 2017
Vol-3, Issue-2
Paper ID: 4010
ISSN: 2395-4396
Downloads: 0

Abstract & Details

Research Area
computer science and engineering
Keywords
Antidiscrimination data mining direct and indirect discrimination prevention
Abstract
Abstract: Data mining is most necessary technology for extracting useful knowledge and valuable data in large collection of information. There having some negative social aspects about data processing such as invasion, potential privacy, and potential discrimination. The latter consist of affair or unequally treating people on the basis of their cast, religion or specific community. Automatic knowledge collection and data processing techniques such as classification rule mining have paved the way to making automated decision, like loan granting or denial, insurance or premium computation etc. If the given data sets having with discriminatory (sensitive) attributes like gender, race, religion, community, etc .For this reason, antidiscrimination techniques including discrimination discovery and prevention are introduce in data processing .Discrimination either direct or indirect .Here ,we tried for solution to prevent discrimination in data processing and will try to bring new techniques applicable for direct and indirect discrimination prevention separately at the same time. We discussed how to clean training data sets and outsourced data sets in such a way that direct/indirect discriminatory decision rules are converted to non discriminatory classification rule. Also we bring new metrics to gauge the utility of planned approaches and compare these approaches. The proposed techniques are effective at removing direct/indirect discrimination biases in the original data sets while preserving data quality.

Author Information

# Name Institute / Affiliation
1 Ashwini Gote PIET
2 Shrikant Zade Asst.prof,PIET

How to Cite

Use the following formats to cite this article in your research.

APA Style
Gote, Ashwini & Zade, Shrikant (2017). Introduction of Implementation Of Direct and Indirect Discrimination Rules for Prevention Of Larger Data in Data Mining. International Journal of Advance Research and Innovative Ideas In Education, 3(2), 237-239.
MLA Style
Gote, Ashwini, and Shrikant Zade. "Introduction of Implementation Of Direct and Indirect Discrimination Rules for Prevention Of Larger Data in Data Mining." International Journal of Advance Research and Innovative Ideas In Education, vol. 3, no. 2, 2017, pp. 237-239.
IEEE Style
Ashwini Gote and Shrikant Zade, "Introduction of Implementation Of Direct and Indirect Discrimination Rules for Prevention Of Larger Data in Data Mining," International Journal of Advance Research and Innovative Ideas In Education, vol. 3, no. 2, pp. 237-239, 2017.
Vancouver Style
Gote Ashwini, Zade Shrikant. Introduction of Implementation Of Direct and Indirect Discrimination Rules for Prevention Of Larger Data in Data Mining. International Journal of Advance Research and Innovative Ideas In Education. 2017;3(2):237-239.
Harvard Style
Gote, Ashwini & Zade, Shrikant (2017) 'Introduction of Implementation Of Direct and Indirect Discrimination Rules for Prevention Of Larger Data in Data Mining', International Journal of Advance Research and Innovative Ideas In Education, 3(2), pp. 237-239.
Chicago Style
Gote, Ashwini and Shrikant Zade. "Introduction of Implementation Of Direct and Indirect Discrimination Rules for Prevention Of Larger Data in Data Mining." International Journal of Advance Research and Innovative Ideas In Education 3, no. 2 (2017): 237-239.
Turabian Style
Gote, Ashwini and Shrikant Zade. "Introduction of Implementation Of Direct and Indirect Discrimination Rules for Prevention Of Larger Data in Data Mining." International Journal of Advance Research and Innovative Ideas In Education 3, no. 2 (2017): 237-239.

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