Data Science by ODS.ai 🦜
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First Telegram Data Science channel. Covering all technical and popular staff about anything related to Data Science: AI, Big Data, Machine Learning, Statistics, general Math and the applications of former. To reach editors contact: @malev
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Best probability visualisations ever. If you struggling with basic Probability Theory concepts, or just want to review them, this site is the best for understanding/refreshing.

http://students.brown.edu/seeing-theory/
Another on-demand-GPU cloud solution:

http://floydhub.com
An article about using #cv to predict car manufacturer, political views and average household based on Google's Street View

https://arxiv.org/pdf/1702.06683.pdf
Deep Image Matting

Image background segmentation.

https://arxiv.org/pdf/1703.03872.pdf

#cv #deeplearning
Visual aesthetics are very personal, often subconscious, and hard to express.  In a world with an overload of photographic content, a lot of time and effort is spent manually curating photographs, and it’s often hard to separate the good images from the visual noise. The question we put forward at EyeEm is: can a machine learn personalized aesthetics embodied in a set of chosen photos, and recreate them in a different set?


https://devblogs.nvidia.com/parallelforall/personalized-aesthetics-machine-learning/

#cv #deeplearning
Unsupervised sentiment neuron which learns an excellent representation of sentiment, despite being trained only to predict the next character in the text of Amazon reviews.


https://blog.openai.com/unsupervised-sentiment-neuron/

#nlp #sentiment #openai
Google released a tool for drawing search, which is a nice attempt to get some hype from recent pix2pix architecture demo.

Basically now you can draw a doodle and let Google search for similar pictures.

https://www.blog.google/topics/machine-learning/fast-drawing-everyone/
T-SNE visualization by Vadim Markovtsev
Jonker-Volgenant Algorithm + t-SNE = Super Powers: https://blog.sourced.tech/post/lapjv/

#tsne #visualization