Unsupervised and Transfer Learning Challenge

*==> PHASE 1: UNSUPERVISED LEARNING CHALLENGE <==*
* http://clopinet.com/ul*

Do you believe that it is possible to LEARN from unlabeled data
Representations of Similarity Measures that will then fare well in
supervised learning tasks?
Now is your chance to prove it: you have 50 days to work on 5 unsupervised
learning task from large real world databases.
Labeling data is not only expensive, it is tedious. When it comes to your
own personal data it is also something you do not want to outsource. To help
us tagging fast our personal pictures, videos, and documents, we need
systems that can learn with very few training examples. The question is
whether we can exploit similar data (labeled with different types of labels
or completely unlabeled) to improve data preprocessing.
There will be prizes and publication opportunities at ICML, IJCNN, and in
JMLR W&CP.
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