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Soumith Chintala
Facebook AI
an ecosystem for deep learning
What is PyTorch?
Ndarray library
with GPU support
automatic differentiation
engine
gradient based
optimization package
Deep Learning
Reinforcement Learning
Numpy-alternative
Utilities
(data loading, etc.)
ndarray library
•np.ndarray <-> torch.Tensor
•200+ operations, similar to numpy
•very fast acceleration on NVIDIA GPUs
ndarray library
Numpy PyTorch
ndarray / Tensor library
ndarray / Tensor library
ndarray / Tensor library
ndarray / Tensor library
NumPy bridge
NumPy bridge
Zero memory-copy
very efficient
NumPy bridge
NumPy bridge
Seamless GPU Tensors
Neural Networks
Neural Networks
Neural Networks
Optimization package
SGD, Adagrad, RMSProp, LBFGS, etc.
Distributed PyTorch
• MPI style distributed communication
• Broadcast Tensors to other nodes
• Reduce Tensors among nodes
- for example: sum gradients among all nodes
Distributed Data Parallel
for epoch in range(max_epochs):
for data, target in enumerate(training_data):
output = model(data)
loss = F.nll_loss(output, target)
loss.backward()
optimizer.step()
Distributed Data Parallel
for epoch in range(max_epochs):
for data, target in enumerate(training_data):
output = model(data)
model = nn.DistributedDataParallel(model)
loss = F.nll_loss(output, target)
loss.backward()
optimizer.step()
P Y T O R C H 1 . 0
Distributed Training Performance – ResNet101
0
1
2
3
4
5
6
7
8
9
1 Node (8 GPUs) 2 Nodes (16 GPUs) 4 Nodes (32 GPUs) 8 Nodes (64 GPUs)
Speedups
ResNet-101 on NVIDIA V100 GPUs
100 Gbit TCP 4 x 100Gbit Infiniband Ideal Speedup
Use via DataBricks MLFlow
•mlflow.pytorch
- saves and loads models
•More resources:
- https://docs.databricks.com/spark/latest/mllib/mlflow-pytorch.html
- https://www.mlflow.org/docs/latest/models.html
Ecosystem
• Use the entire Python ecosystem at your will
Ecosystem
• Use the entire Python ecosystem at your will
• Including SciPy, Scikit-Learn, etc.
Ecosystem
• Use the entire Python ecosystem at your will
• Including SciPy, Scikit-Learn, etc.
Ecosystem
• A shared model-zoo:
Ecosystem
•Probabilistic Programming
http://pyro.ai/
github.com/probtorch/probtorch
Ecosystem
•Gaussian Processes
https://github.com/cornellius-gp/gpytorch
Ecosystem
•Machine Translation
https://github.com/OpenNMT/OpenNMT-py https://github.com/facebookresearch/fairseq-py
Ecosystem
•AllenNLP http://allennlp.org/
Ecosystem
•AllenNLP
• State-of-the-art models for comprehension, Q&A,
various other NLP tasks
http://allennlp.org/
Ecosystem
•AllenNLP
• State-of-the-art models for comprehension, Q&A,
various other NLP tasks
http://allennlp.org/
Ecosystem
•AllenNLP
• State-of-the-art models for comprehension, Q&A,
various other NLP tasks
http://allennlp.org/
fast.ai 1.0
• High-level library on PyTorch: http://docs.fast.ai
fast.ai 1.0
• High-level library on PyTorch: http://docs.fast.ai
• Built by Jeremy Howard, Rachel Thomas and many
community members
fast.ai 1.0
• High-level library on PyTorch: http://docs.fast.ai
• Built by Jeremy Howard, Rachel Thomas and many
community members
• an online course accompanies the library
fast.ai 1.0
• High-level library on PyTorch: http://docs.fast.ai
• Built by Jeremy Howard, Rachel Thomas and many
community members
• an online course accompanies the library
• Read more at http://www.fast.ai/2018/10/02/fastai-ai/
fast.ai 1.0
• state-of-the-art models in few lines
fast.ai 1.0
• state-of-the-art models in few lines
• fine-tune on your own data
fast.ai 1.0
• state-of-the-art models in few lines
• fine-tune on your own data
data = data_from_imagefolder(Path('data/dogscats'),
ds_tfms=get_transforms(), tfms=imagenet_norm, size=224)
learn = ConvLearner(data, tvm.resnet34, metrics=accuracy)
learn.fit_one_cycle(6)
learn.unfreeze()
learn.fit_one_cycle(4, slice(1e-5,3e-4))
Near State-of-the-art Image Classifiers
fast.ai 1.0
Models and Transforms for Tabular Data
• state-of-the-art models in few lines
• fine-tune on your own data
https://pytorch.org
With ❤ from

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