Difference between revisions of "Machine Learning Experiments"

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*Mackenzie Adrian, [https://mitpress.mit.edu/books/machine-learners Machine Learners:Archaeology of a Data Practice], MIT Press, 2017
*Mackenzie Adrian, [https://mitpress.mit.edu/books/machine-learners Machine Learners:Archaeology of a Data Practice], MIT Press, 2017
*[https://github.com/eltiffster/authorFunction The Author Function: Imitating Grant Allen with Queer Writing Machines](2017) by Tiffany Chan (with source code)
*[https://github.com/eltiffster/authorFunction The Author Function: Imitating Grant Allen with Queer Writing Machines](2017) by Tiffany Chan (with source code)
*Cox,  Geoff.  [https://unthinking.photography/themes/machine-vision/ways-of-machine-seeing Ways of machine seeing].  Unthinking Photography,  2016.


==Technical explanation on Machine Learning==
==Technical explanation on Machine Learning==

Revision as of 23:49, 24 January 2018

Introduction to Machine Learning

Cultural matters with Machine Learning

Technical explanation on Machine Learning

RNN focus

Neural Network

Examples with source code

Text related

  • Chinese receipt OCR using Tensorflow | SpikeFlow (Blog | Github)
  • Recurrentjs by Andrej Karpathy, mainly for text training. "Sentences are input data and the networks are trained to predict the next character in a sentence." + his interview on why javascript and machine learning.
  • Re-appropriation of Recurrentjs by UCL Creative Hub

Image related

Sound related

Projects

Text related

Artworks

Exhibition

Workshop

Demo/Experimental Projects

Learning resource

Teaching Machine Learning

Experiments/Tests

  • Running spam data with RecurrentJS in a local browser (Winnie)
Running spam data with RecurrentJS
  • Running a jpg file with ConvNetJS in a local browser (Winnie)
Learning a jpg file with ConvNetJS
  • Running a PNG file with Synaptic.js in a local browser (Winnie)
Learning a png file with Synaptic
  • Running a customized neural network in a local browser (Winnie)
Learning XOR with Synaptic