This repository contains machine learning models implemented in TensorFlow. The models are maintained by their respective authors. To propose a model for inclusion, please submit a pull request.

Neal Wu 727418e4ae One more tiny change 9 lat temu
.github dc7791d01c Create ISSUE_TEMPLATE.md (#124) 9 lat temu
autoencoder 31f1af580a Changed deprecated tf.initialize_all_variables() to tf.global_variables_initializer() 9 lat temu
compression 5d981d57c5 Fix division changing dtype to float in python3 9 lat temu
differential_privacy 31f1af580a Changed deprecated tf.initialize_all_variables() to tf.global_variables_initializer() 9 lat temu
im2txt dad7dcbda1 Updated concat_v2 to concat for 1.0 compatibility 9 lat temu
inception 31f1af580a Changed deprecated tf.initialize_all_variables() to tf.global_variables_initializer() 9 lat temu
lm_1b fdc4ce37a4 Fix README 9 lat temu
namignizer 31f1af580a Changed deprecated tf.initialize_all_variables() to tf.global_variables_initializer() 9 lat temu
neural_gpu 31f1af580a Changed deprecated tf.initialize_all_variables() to tf.global_variables_initializer() 9 lat temu
neural_programmer 31f1af580a Changed deprecated tf.initialize_all_variables() to tf.global_variables_initializer() 9 lat temu
next_frame_prediction ba986cfcb0 Add cross conv model for next frame prediction. 9 lat temu
real_nvp e871d29598 Real NVP code 9 lat temu
resnet 64254ad355 Modify the README to reflect changes 9 lat temu
slim 9baf6eac0b Merge pull request #1040 from aselle/inception_v2 9 lat temu
street 31f1af580a Changed deprecated tf.initialize_all_variables() to tf.global_variables_initializer() 9 lat temu
swivel 66900a72d5 Update swivel to TFr1.0 9 lat temu
syntaxnet 87a8abd4d3 Sync SyntaxNet with TensorFlow r1.0 (#1062) 9 lat temu
textsum f1e8ff7c0f Update data.py 9 lat temu
transformer 31f1af580a Changed deprecated tf.initialize_all_variables() to tf.global_variables_initializer() 9 lat temu
tutorials 6344793996 Update concat_v2 to be concat to match 1.0 final 9 lat temu
video_prediction 31f1af580a Changed deprecated tf.initialize_all_variables() to tf.global_variables_initializer() 9 lat temu
.gitignore 3e6caf5ff0 Add a .gitignore file. (#164) 9 lat temu
.gitmodules 32ab5a58dd Adding SyntaxNet to tensorflow/models (#63) 9 lat temu
AUTHORS 41c52d60fe Spatial Transformer model 10 lat temu
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README.md 727418e4ae One more tiny change 9 lat temu
WORKSPACE ac0829fa2b Consolidate privacy/ and differential_privacy/. 9 lat temu

README.md

TensorFlow Models

This repository contains machine learning models implemented in TensorFlow. The models are maintained by their respective authors.

To propose a model for inclusion please submit a pull request.

Models

  • autoencoder: various autoencoders.
  • compression: compressing and decompressing images using a pre-trained Residual GRU network.
  • differential_privacy: privacy-preserving student models from multiple teachers.
  • im2txt: image-to-text neural network for image captioning.
  • inception: deep convolutional networks for computer vision.
  • learning_to_remember_rare_events: a large-scale life-long memory module for use in deep learning.
  • lm_1b: language modeling on the one billion word benchmark.
  • namignizer: recognize and generate names.
  • neural_gpu: highly parallel neural computer.
  • neural_programmer: neural network augmented with logic and mathematic operations.
  • next_frame_prediction: probabilistic future frame synthesis via cross convolutional networks.
  • real_nvp: density estimation using real-valued non-volume preserving (real NVP) transformations.
  • resnet: deep and wide residual networks.
  • slim: image classification models in TF-Slim.
  • street: identify the name of a street (in France) from an image using a Deep RNN.
  • swivel: the Swivel algorithm for generating word embeddings.
  • syntaxnet: neural models of natural language syntax.
  • textsum: sequence-to-sequence with attention model for text summarization.
  • transformer: spatial transformer network, which allows the spatial manipulation of data within the network.
  • tutorials: models described in the TensorFlow tutorials.
  • video_prediction: predicting future video frames with neural advection.