Study the paper
Attention Is All You Need
Lessons, visuals, quizzes, flashcards, and resources—organized in teaching order.
Comprehensive Assessment
Research and implementation context
Supplementary context
Research and implementation context
Research lineage
Notable related work, not a complete survey
Predecessors
Deep Residual Learning for Image Recognition
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Adam: A Method for Stochastic Optimization
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Long Short-Term Memory
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Successors
Weaver: Kronecker product approximations of spatiotemporal attention for traffic network forecasting
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TDFormer: A novel triple decoupled transformer for accurate multi-step wind power forecasting
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Automatic prompt generation via reinforcement learning guided contrastive purification for label-free SAM segmentation
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Implementation code map
Static paths for orientation only. DeepStudy does not clone, install, build, or execute repository content.
Official repository
tensorflow/tensor2tensor
Library of deep learning models and datasets designed to make deep learning more accessible and accelerate ML research.
- .travis.ymlHigh confidence
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- floyd.ymlHigh confidence
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- README.mdHigh confidence
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- .gitignoreLow confidence
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- AUTHORSLow confidence
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- CONTRIBUTING.mdLow confidence
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- floyd_requirements.txtLow confidence
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- ISSUE_TEMPLATE.mdLow confidence
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- LICENSELow confidence
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- pylintrcLow confidence
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- setup.pyLow confidence
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- .travis.ymlHigh confidence
Community repository
AyoOdumark/Attention-is-all-you-need
https://https://arxiv.org/abs/1706.03762
- src/__init__.pyMedium confidence
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- src/attention.pyMedium confidence
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- src/tokenization.pyMedium confidence
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- src/transformer.pyMedium confidence
Static medium-confidence entry point identified from the default-branch tree.
- src/__init__.pyMedium confidence