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BibTeX

Classical Machine Learning
@article{MLReview,
title={Supervised machine learning: A review of classification techniques},
author={Kotsiantis, Sotiris B and Zaharakis, I and Pintelas, P},
journal={Emerging artificial intelligence applications in computer engineering},
volume={160},
pages={3--24},
year={2007}
}
@techreport{knn,
title={Discriminatory analysis-nonparametric discrimination: consistency properties},
author={Fix, Evelyn and Hodges Jr, Joseph L},
year={1951},
institution={California Univ Berkeley}
}
@article{svm,
title={Support-vector networks},
author={Cortes, Corinna and Vapnik, Vladimir},
journal={Machine learning},
volume={20},
number={3},
pages={273--297},
year={1995},
publisher={Springer}
}
@inproceedings{svmnonlinear,
title={A training algorithm for optimal margin classifiers},
author={Boser, Bernhard E and Guyon, Isabelle M and Vapnik, Vladimir N},
booktitle={Proceedings of the fifth annual workshop on Computational learning theory},
pages={144--152},
year={1992},
organization={ACM}
}
@article{naivebayes,
title={Idiot's Bayes—not so stupid after all?},
author={Hand, David J and Yu, Keming},
journal={International statistical review},
volume={69},
number={3},
pages={385--398},
year={2001},
publisher={Wiley Online Library}
}
@article{randomforest,
title={Classification and regression by randomForest},
author={Liaw, Andy and Wiener, Matthew and others},
journal={R news},
volume={2},
number={3},
pages={18--22},
year={2002}
}
Neural Networks
@article{lenet,
title={Gradient-based learning applied to document recognition},
author={LeCun, Yann and Bottou, L{\'e}on and Bengio, Yoshua and Haffner, Patrick},
journal={Proceedings of the IEEE},
volume={86},
number={11},
pages={2278--2324},
year={1998},
publisher={IEEE}
}
@inproceedings{alexnet,
title={Imagenet classification with deep convolutional neural networks},
author={Krizhevsky, Alex and Sutskever, Ilya and Hinton, Geoffrey E},
booktitle={Advances in neural information processing systems},
pages={1097--1105},
year={2012}
}
@inproceedings{lenetVSalexnet,
title={On the Performance of GoogLeNet and AlexNet Applied to Sketches.},
author={Ballester, Pedro and de Ara{\'u}jo, Ricardo Matsumura},
booktitle={AAAI},
pages={1124--1128},
year={2016}
}
@article{deepNN,
title = "A survey of deep neural network architectures and their applications",
journal = "Neurocomputing",
volume = "234",
pages = "11 - 26",
year = "2017",
issn = "0925-2312",
doi = "https://doi.org/10.1016/j.neucom.2016.12.038",
url = "http://www.sciencedirect.com/science/article/pii/S0925231216315533",
author = "Weibo Liu and Zidong Wang and Xiaohui Liu and Nianyin Zeng and Yurong Liu and Fuad E. Alsaadi",
keywords = "Autoencoder, Convolutional neural network, Deep learning, Deep belief network, Restricted Boltzmann machine"
}
MISC
@misc{openData,
title={Open Database License (ODbL) v1.0},
url={https://opendatacommons.org/licenses/odbl/1.0/},
journal={Open Data Commons},
year={2018},
month={Feb}
}
@incollection{NIPS2012_4824,
title = {ImageNet Classification with Deep Convolutional Neural Networks},
author = {Alex Krizhevsky and Sutskever, Ilya and Hinton, Geoffrey E},
booktitle = {Advances in Neural Information Processing Systems 25},
editor = {F. Pereira and C. J. C. Burges and L. Bottou and K. Q. Weinberger},
pages = {1097--1105},
year = {2012},
publisher = {Curran Associates, Inc.},
url = {http://papers.nips.cc/paper/4824-imagenet-classification-with-deep-convolutional-neural-networks.pdf}
}
@ARTICLE{726791,
author={Y. Lecun and L. Bottou and Y. Bengio and P. Haffner},
journal={Proceedings of the IEEE},
title={Gradient-based learning applied to document recognition},
year={1998},
volume={86},
number={11},
pages={2278-2324},
keywords={backpropagation;convolution;multilayer perceptrons;optical character recognition;2D shape variability;GTN;back-propagation;cheque reading;complex decision surface synthesis;convolutional neural network character recognizers;document recognition;document recognition systems;field extraction;gradient based learning technique;gradient-based learning;graph transformer networks;handwritten character recognition;handwritten digit recognition task;high-dimensional patterns;language modeling;multilayer neural networks;multimodule systems;performance measure minimization;segmentation recognition;Character recognition;Feature extraction;Hidden Markov models;Machine learning;Multi-layer neural network;Neural networks;Optical character recognition software;Optical computing;Pattern recognition;Principal component analysis},
doi={10.1109/5.726791},
ISSN={0018-9219},
month={Nov},}