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@@ -4,6 +4,7 @@
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2. [Neural Networks and Deep Learning](http://neuralnetworksanddeeplearning.com/) by Michael Nielsen (Dec 2014)
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3. [Deep Learning](http://research.microsoft.com/pubs/209355/DeepLearning-NowPublishing-Vol7-SIG-039.pdf) by Microsoft Research (2013)
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4. [Deep Learning Tutorial](http://deeplearning.net/tutorial/deeplearning.pdf) by LISA lab, University of Montreal (Jan 6 2015)
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+5. [An introduction to genetic algorithms](https://svn-d1.mpi-inf.mpg.de/AG1/MultiCoreLab/papers/ebook-fuzzy-mitchell-99.pdf)
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### Courses
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@@ -55,6 +56,7 @@ Recognition](http://nlp.stanford.edu/~socherr/pa4_ner.pdf) [zip](http://nlp.stan
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4. [A Deep Learning Tutorial: From Perceptrons to Deep Networks](http://www.toptal.com/machine-learning/an-introduction-to-deep-learning-from-perceptrons-to-deep-networks)
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5. [Deep Learning from the Bottom up](http://www.metacademy.org/roadmaps/rgrosse/deep_learning)
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6. [Theano Tutorial](http://deeplearning.net/tutorial/deeplearning.pdf)
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+7. [Neural Networks for Matlab](http://uk.mathworks.com/help/pdf_doc/nnet/nnet_ug.pdf)
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@@ -64,6 +66,7 @@ Recognition](http://nlp.stanford.edu/~socherr/pa4_ner.pdf) [zip](http://nlp.stan
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1. [deeplearning.net](http://deeplearning.net/)
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2. [deeplearning.stanford.edu](http://deeplearning.stanford.edu/)
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3. [nlp.stanford.edu](http://nlp.stanford.edu/)
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+4. [ai-junkie.com](http://www.ai-junkie.com/ann/evolved/nnt1.html)
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### Datasets
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@@ -74,6 +77,8 @@ Recognition](http://nlp.stanford.edu/~socherr/pa4_ner.pdf) [zip](http://nlp.stan
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5. [Tiny Images](http://groups.csail.mit.edu/vision/TinyImages/) 80 Million tiny images6.
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6. [Flickr Data](http://yahoolabs.tumblr.com/post/89783581601/one-hundred-million-creative-commons-flickr-images) 100 Million Yahoo dataset
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7. [Berkeley Segmentation Dataset 500](http://www.eecs.berkeley.edu/Research/Projects/CS/vision/bsds/)
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+8. [UC Irvine Machine Learning Repository](http://archive.ics.uci.edu/ml/)
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### Frameworks
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