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Minjie Wang 6f9ae8d61e [Doc] main doc page update and contribute guide (#336)
* reorg the doc mainpage

* contribute guide
2019-01-04 17:02:37 -05:00

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.. _tutorials4-index:
Old (new) wines in new bottle
=============================
* **Capsule** `[paper] <https://arxiv.org/abs/1710.09829>`__ `[tutorial]
<4_old_wines/2_capsule.html>`__ `[code]
<https://github.com/dmlc/dgl/tree/master/examples/pytorch/capsule>`__:
this new computer vision model has two key ideas -- enhancing the feature
representation in a vector form (instead of a scalar) called *capsule*, and
replacing max-pooling with dynamic routing. The idea of dynamic routing is to
integrate a lower level capsule to one (or several) of a higher level one
with non-parametric message-passing. We show how the later can be nicely
implemented with DGL APIs.
* **Transformer** `[paper] <https://arxiv.org/abs/1706.03762>`__ `[tutorial] <4_old_wines/7_transformer.html>`__
`[code] <https://github.com/dmlc/dgl/tree/master/examples/pytorch/transformer>`__ and **Universal Transformer**
`[paper] <https://arxiv.org/abs/1807.03819>`__ `[tutorial] <4_old_wines/7_transformer.html>`__
`[code] <https://github.com/dmlc/dgl/tree/master/examples/pytorch/transformer/modules/act.py>`__:
these two models replace RNN with several layers of multi-head attention to
encode and discover structures among tokens of a sentence. These attention
mechanisms can similarly formulated as graph operations with
message-passing.