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Results on system thu
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yangkai2002 committed Nov 3, 2024
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TBD
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| Model | Scenario | Accuracy | Throughput | Latency (in ms) |
|---------------------|------------|-----------------------|--------------|-------------------|
| stable-diffusion-xl | offline | (16.67928, 235.25334) | 1.399 | - |
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{
"starting_weights_filename": "https://github.com/mlcommons/cm4mlops/blob/main/script/get-ml-model-stable-diffusion/_cm.json#L174",
"retraining": "no",
"input_data_types": "int32",
"weight_data_types": "int8",
"weight_transformations": "quantization, affine fusion"
}
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This experiment is generated using the [MLCommons Collective Mind automation framework (CM)](https://github.com/mlcommons/cm4mlops).

*Check [CM MLPerf docs](https://docs.mlcommons.org/inference) for more details.*

## Host platform

* OS version: Linux-6.1.0-11-amd64-x86_64-with-glibc2.29
* CPU version: x86_64
* Python version: 3.8.10 (default, Sep 11 2024, 16:02:53)
[GCC 9.4.0]
* MLCommons CM version: 3.3.3

## CM Run Command

See [CM installation guide](https://docs.mlcommons.org/inference/install/).

```bash
pip install -U cmind

cm rm cache -f

cm pull repo mlcommons@cm4mlops --checkout=fa46c07b3e162bc193e3fd85ae6ebbfabae75225

cm run script \
--tags=run-mlperf,inference,_r4.1-dev,_short,_scc24-base \
--model=sdxl \
--implementation=nvidia \
--framework=tensorrt \
--category=datacenter \
--scenario=Offline \
--execution_mode=test \
--device=cuda \
--quiet
```
*Note that if you want to use the [latest automation recipes](https://docs.mlcommons.org/inference) for MLPerf (CM scripts),
you should simply reload mlcommons@cm4mlops without checkout and clean CM cache as follows:*

```bash
cm rm repo mlcommons@cm4mlops
cm pull repo mlcommons@cm4mlops
cm rm cache -f

```

## Results

Platform: 9f7dcf9a6c28-nvidia_original-gpu-tensorrt-vdefault-scc24-base

Model Precision: int8

### Accuracy Results
`CLIP_SCORE`: `16.67928`, Required accuracy for closed division `>= 31.68632` and `<= 31.81332`
`FID_SCORE`: `235.25334`, Required accuracy for closed division `>= 23.01086` and `<= 23.95008`

### Performance Results
`Samples per second`: `1.39895`
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