ONNX Runtime: cross-platform, high performance ML inferencing and training accelerator
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Atanas Dimitrov 9d06e1bfa4
Label encoder fusion (#19761)
### Description
Created a new `LabelEncoderFusion` pass. This is useful in model that
result from automatic conversion tools related to data-science:
sometimes the produced model contains consecutive `LabelEncoder`-s.
To merge 2 `LabelEncoder`-s the optimizer propagates the outputs of the
first encoder through the second one.


### Motivation and Context
This enhances the capabilities of the `onnxruntime::optimizer` by fusing
consecutive `LabelEncoder` nodes.


### Fusion examples
```
Applying fusion
node1: (a,C) (b,B) (c,A) -> Default: _Unused
node2: (A,1) (B,2) (C,3) -> Default: -1
fused: (a,3) (b,2) (c,1) -> Default: -1
Applying fusion
node1: (a,C) (b,B) (c,A) -> Default: D
node2: (A,a) (B,b) (C,c) (D,d) -> Default: default
fused: (a,c) (b,b) (c,a) -> Default: d
Applying fusion
node1: (a,0) (b,1) (c,2) -> Default: -1
node2: (2,a) (1,b) (0,c) -> Default: default
fused: (a,c) (b,b) (c,a) -> Default: default
Applying fusion
node1: (a,3) (b,2) (c,1) -> Default: -1
node2: (1,a) (2,b) (3,c) -> Default: d
fused: (a,c) (b,b) (c,a) -> Default: d
```

---------

Co-authored-by: Justin Chu <justinchuby@users.noreply.github.com>
2024-04-01 09:41:10 -07:00
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objectivec [objc] Add check for ORTValue being a tensor in ORTValue methods that should only be used with tensors. (#19946) 2024-03-18 08:54:24 -07:00
onnxruntime Label encoder fusion (#19761) 2024-04-01 09:41:10 -07:00
orttraining Fix transformer layer detection for recompute (#20106) 2024-03-29 17:44:38 +08:00
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ONNX Runtime is a cross-platform inference and training machine-learning accelerator.

ONNX Runtime inference can enable faster customer experiences and lower costs, supporting models from deep learning frameworks such as PyTorch and TensorFlow/Keras as well as classical machine learning libraries such as scikit-learn, LightGBM, XGBoost, etc. ONNX Runtime is compatible with different hardware, drivers, and operating systems, and provides optimal performance by leveraging hardware accelerators where applicable alongside graph optimizations and transforms. Learn more →

ONNX Runtime training can accelerate the model training time on multi-node NVIDIA GPUs for transformer models with a one-line addition for existing PyTorch training scripts. Learn more →

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License

This project is licensed under the MIT License.