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45fc927f
编写于
12月 16, 2021
作者:
G
gaotingquan
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docs/en/algorithm_introduction/ImageNet_models_en.md
docs/en/algorithm_introduction/ImageNet_models_en.md
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docs/en/models/models_intro_en.md
docs/en/models/models_intro_en.md
+9
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docs/zh_CN/algorithm_introduction/ImageNet_models.md
docs/zh_CN/algorithm_introduction/ImageNet_models.md
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docs/zh_CN/models/models_intro.md
docs/zh_CN/models/models_intro.md
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未找到文件。
docs/en/algorithm_introduction/ImageNet_models_en.md
浏览文件 @
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@@ -8,17 +8,21 @@ Based on the ImageNet-1k classification dataset, the 35 classification network s
Curves of accuracy to the inference time of common server-side models are shown as follows.
![](
../../images/models/V100_benchmark/v100.fp32.bs1.main_fps_top1_s.png
)
<div
align=
"center"
>
<img
src=
"../../images/models/V100_benchmark/v100.fp32.bs1.main_fps_top1_s.png"
width=
"800"
>
</div>
Curves of accuracy to the inference time
and storage size
of common mobile-side models are shown as follows.
Curves of accuracy to the inference time of common mobile-side models are shown as follows.
![](
../../images/models/mobile_arm_storage.png
)
![](
../../images/models/mobile_arm_top1.png
)
<div
align=
"center"
>
<img
src=
"../../images/models/mobile_arm_top1.png"
width=
"800"
>
</div>
Curves of accuracy to the inference time of some VisionTransformer models are shown as follows.
![](
../../images/models/V100_benchmark/v100.fp32.bs1.visiontransformer.png
)
<div
align=
"center"
>
<img
src=
"../../images/models/V100_benchmark/v100.fp32.bs1.visiontransformer.png"
width=
"800"
>
</div>
<a
name=
"SSLD_pretrained_series"
></a>
### SSLD pretrained models
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docs/en/models/models_intro_en.md
浏览文件 @
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@@ -23,11 +23,17 @@ python tools/infer/predict.py \
--batch_size
=
1
```
![](
../../images/models/V100_benchmark/v100.fp32.bs1.main_fps_top1_s.png
)
<div
align=
"center"
>
<img
src=
"../../images/models/V100_benchmark/v100.fp32.bs1.main_fps_top1_s.png"
width=
"800"
>
</div>
![](
../../images/models/mobile_arm_top1.png
)
<div
align=
"center"
>
<img
src=
"../../images/models/mobile_arm_top1.png"
width=
"800"
>
</div>
![](
../../images/models/V100_benchmark/v100.fp32.bs1.visiontransformer.png
)
<div
align=
"center"
>
<img
src=
"../../images/models/V100_benchmark/v100.fp32.bs1.visiontransformer.png"
width=
"800"
>
</div>
> If you think this document is helpful to you, welcome to give a star to our project:[https://github.com/PaddlePaddle/PaddleClas](https://github.com/PaddlePaddle/PaddleClas)
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docs/zh_CN/algorithm_introduction/ImageNet_models.md
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@@ -44,17 +44,21 @@
常见服务器端模型的精度指标与其预测耗时的变化曲线如下图所示。
![](
../../images/models/V100_benchmark/v100.fp32.bs1.main_fps_top1_s.png
)
<div
align=
"center"
>
<img
src=
"../../images/models/V100_benchmark/v100.fp32.bs1.main_fps_top1_s.png"
width=
"800"
>
</div>
常见移动端模型的精度指标与其预测耗时
、模型存储大小
的变化曲线如下图所示。
常见移动端模型的精度指标与其预测耗时的变化曲线如下图所示。
![](
../../images/models/mobile_arm_storage.png
)
![](
../../images/models/mobile_arm_top1.png
)
<div
align=
"center"
>
<img
src=
"../../images/models/mobile_arm_top1.png"
width=
"800"
>
</div>
部分VisionTransformer模型的精度指标与其预测耗时的变化曲线如下图所示。
![](
../../images/models/V100_benchmark/v100.fp32.bs1.visiontransformer.png
)
<div
align=
"center"
>
<img
src=
"../../images/models/V100_benchmark/v100.fp32.bs1.visiontransformer.png"
width=
"800"
>
</div>
<a
name=
"2"
></a>
...
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docs/zh_CN/models/models_intro.md
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@@ -20,12 +20,17 @@
*
Intel CPU 的评估环境基于 Intel(R) Xeon(R) Gold 6148。
*
GPU 评估环境基于 V100 和 TensorRT。
<div
align=
"center"
>
<img
src=
"../../images/models/V100_benchmark/v100.fp32.bs1.main_fps_top1_s.png"
width=
"800"
>
</div>
![](
../../images/models/V100_benchmark/v100.fp32.bs1.main_fps_top1_s.png
)
<div
align=
"center"
>
<img
src=
"../../images/models/mobile_arm_top1.png"
width=
"800"
>
</div>
![](
../../images/models/mobile_arm_top1.png
)
![](
../../images/models/V100_benchmark/v100.fp32.bs1.visiontransformer.png
)
<div
align=
"center"
>
<img
src=
"../../images/models/V100_benchmark/v100.fp32.bs1.visiontransformer.png"
width=
"800"
>
</div>
> 如果您觉得此文档对您有帮助,欢迎 star 我们的项目:[https://github.com/PaddlePaddle/PaddleClas](https://github.com/PaddlePaddle/PaddleClas)
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