ArtificialIntelligenceArticles
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Models, Inference & Algorithms (MIA) is a new Broad initiative to support learning and collaboration across the interface of biology and mathematics /statistics / machine learning https://goo.gl/adw5aQ
One NLP model to rule them all

Hierarchical Multi-Task Learning model. SOTA on several NLP tasks Demo: https://huggingface.co/hmtl/
Code: https://github.com/huggingface/hmtl/tree/master/demo
andrew ng : Deep learning for chest radiograph diagnosis: A retrospective comparison of the CheXNeXt algorithm to practicing radiologists
paper : https://goo.gl/xMigX3 or https://goo.gl/VBVhzx
Efficiently measuring a quantum device using machine learning

paper : https://arxiv.org/abs/1810.10042 #ArtificialInteligence #QuantumPhysics #Research #Physics #MachineLearning
If an eye doctor looked at a retinal photo, the chance of getting gender correct would be 50-50.
But deep learning training led to an AUC of 0.97 https://www.nature.com/articles/s41551-018-0195-0
Yandex Data School: Course in Natural Language Processing

Github Course by Russian Search Giant
* lectures
* seminars
* home assignments

https://github.com/yandexdataschool/nlp_course
Generating a Training Dataset for Land Cover Classification to Advance Global Development. https://arxiv.org/abs/1811.07998
Predicting Diabetes Disease Evolution Using Financial Records and Recurrent Neural Networks https://arxiv.org/abs/1811.09350
DeepMasterPrints: Generating MasterPrints for Dictionary Attacks via Latent Variable Evolution"

Bontrager et al.: https://arxiv.org/abs/1705.07386
Do Better ImageNet Models Transfer Better?

By Simon Kornblith, Jonathon Shlens, Quoc V. Le: https://arxiv.org/abs/1805.08974

#ComputerVision #PatternRecognition #MachineLearning
Explainable cardiac pathology classification on cine MRI with motion characterization https://arxiv.org/abs/1811.03433
Measuring the Effects of Data Parallelism on Neural Network Training

Important paper from Google on large batch optimization. They do impressively careful experiments measuring # iterations needed to achieve target validation error at various batch sizes. The main "surprise" is the lack of surprises.


https://arxiv.org/abs/1811.03600 @ArtificialIntelligenceArticles
Statistical physics of liquid brains

Paper by Jordi Pinero and Ricard Sole: https://www.biorxiv.org/content/biorxiv/early/2018/11/26/478412.full.pdf

#Brains #Evolution #Physics
Visualizing the Loss Landscape of Neural Nets

PyTorch code by Tom Goldstein: https://github.com/tomgoldstein/loss-landscape

#pytorch #neuralnetworks #machinelearning #deeplearning
Dive into Deep Learning

Jupyter Notebooks, PDF, and website, all generated from one source.

By Zhang et al.: https://www.diveintodeeplearning.org/

#machinelearning #deeplearning #artificialintellige