Essence
AutoDiff DAG constructor, built on numpy and Cython. A Neural Turing Machine and DeepQ agent run on it. Clean code for educational purpose.
Install / Use
/learn @thtrieu/EssenceREADME
What I cannot create, I do not understand - Richard Feynman
essence
A directed acyclic computational graph builder, built from scratch on numpy and C, including auto-differentiation.
This was not just another deep learning library, its minimal code base was supposed to demonstrate how to:
- Build neural net modules.
- Put the modules together.
- Efficiently compute gradients from this design.
Demos
-
mnist-mlp.py: Depth-2 multi layer perceptron, with ReLU and Dropout; 95.3% on MNIST. -
lenet-bn.py: LeNet with Batch Normalization on first layer, 97% on MNIST. -
lstm-embed.py: LSTM on word embeddings for Vietnamese Question classification + Dropout + L2 weight decay. 85% on test set and 98% on training set (overfit). -
turing-copy.py: A neural turing machine with LSTM controller. Test result on copy task length 70:

visual-answer.py. Visual question answering with pretrained weight from VGG16 and a stack of 3 basic LSTMs, on Glove word2vec.
Q: What is the animal in the picture? . A: cat
Q: Is there any person in the picture? . A: no
Q: What is the cat doing? . A: sitting
Q: Where is the cat sitting on? . A: floor
Q: What is the cat color? . A: white
Q: Is the cat smiling? . A: yes
dqn-cartpole.py: A classic solved with DQN, with experience replay and target network ofcourse. (Illustration below is one-take)
TODO: Memory network and GAN, for that I need to improve my speed of im2col and gemm for conv module first.
License
GPL 3.0 (see License in this repo)
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