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Support Vector Machines for Differential Prediction.

Publication ,  Conference
Kuusisto, F; Santos Costa, V; Nassif, H; Burnside, E; Page, D; Shavlik, J
Published in: Machine learning and knowledge discovery in databases : European Conference, ECML PKDD ... : proceedings. ECML PKDD (Conference)
January 2014

Machine learning is continually being applied to a growing set of fields, including the social sciences, business, and medicine. Some fields present problems that are not easily addressed using standard machine learning approaches and, in particular, there is growing interest in differential prediction. In this type of task we are interested in producing a classifier that specifically characterizes a subgroup of interest by maximizing the difference in predictive performance for some outcome between subgroups in a population. We discuss adapting maximum margin classifiers for differential prediction. We first introduce multiple approaches that do not affect the key properties of maximum margin classifiers, but which also do not directly attempt to optimize a standard measure of differential prediction. We next propose a model that directly optimizes a standard measure in this field, the uplift measure. We evaluate our models on real data from two medical applications and show excellent results.

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Published In

Machine learning and knowledge discovery in databases : European Conference, ECML PKDD ... : proceedings. ECML PKDD (Conference)

DOI

Publication Date

January 2014

Volume

8725

Start / End Page

50 / 65

Related Subject Headings

  • Artificial Intelligence & Image Processing
  • 46 Information and computing sciences
 

Citation

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Kuusisto, F., Santos Costa, V., Nassif, H., Burnside, E., Page, D., & Shavlik, J. (2014). Support Vector Machines for Differential Prediction. In Machine learning and knowledge discovery in databases : European Conference, ECML PKDD ... : proceedings. ECML PKDD (Conference) (Vol. 8725, pp. 50–65). https://doi.org/10.1007/978-3-662-44851-9_4
Kuusisto, Finn, Vitor Santos Costa, Houssam Nassif, Elizabeth Burnside, David Page, and Jude Shavlik. “Support Vector Machines for Differential Prediction.” In Machine Learning and Knowledge Discovery in Databases : European Conference, ECML PKDD ... : Proceedings. ECML PKDD (Conference), 8725:50–65, 2014. https://doi.org/10.1007/978-3-662-44851-9_4.
Kuusisto F, Santos Costa V, Nassif H, Burnside E, Page D, Shavlik J. Support Vector Machines for Differential Prediction. In: Machine learning and knowledge discovery in databases : European Conference, ECML PKDD . : proceedings ECML PKDD (Conference). 2014. p. 50–65.
Kuusisto, Finn, et al. “Support Vector Machines for Differential Prediction.Machine Learning and Knowledge Discovery in Databases : European Conference, ECML PKDD ... : Proceedings. ECML PKDD (Conference), vol. 8725, 2014, pp. 50–65. Epmc, doi:10.1007/978-3-662-44851-9_4.
Kuusisto F, Santos Costa V, Nassif H, Burnside E, Page D, Shavlik J. Support Vector Machines for Differential Prediction. Machine learning and knowledge discovery in databases : European Conference, ECML PKDD . : proceedings ECML PKDD (Conference). 2014. p. 50–65.

Published In

Machine learning and knowledge discovery in databases : European Conference, ECML PKDD ... : proceedings. ECML PKDD (Conference)

DOI

Publication Date

January 2014

Volume

8725

Start / End Page

50 / 65

Related Subject Headings

  • Artificial Intelligence & Image Processing
  • 46 Information and computing sciences