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Graphical Multi-Task Learning

File(s)
graphical.pdf (156.49 KB)
Permanent Link(s)
https://hdl.handle.net/1813/11580
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Computing and Information Science Technical Reports
Author
Sheldon, Daniel
Abstract

We investigate the problem of learning multiple tasks that are related according to a network structure, using the multi-task kernel framework proposed by Evgeniou, Micchelli and Pontil. Our method combines a graphical task kernel with an arbitrary base kernel.We demonstrate its effectiveness on a real ecological application that inspired this work.

Sponsorship
NSF Award No. 0514429, AFOSR Award No. FA9550-07-1-0124
Date Issued
2008-10-31T20:34:49Z
Keywords
Multi-Task Learning
•
Networks
Type
report

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