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---
license: apache-2.0
pretty_name: evaluate metrics
tags:
- github-stars
---

# evaluate metrics

This dataset contains metrics about the huggingface/evaluate package.

Number of repositories in the dataset: 106
Number of packages in the dataset: 3

## Package dependents

This contains the data available in the [used-by](https://github.com/huggingface/evaluate/network/dependents)
tab on GitHub.

### Package & Repository star count

This section shows the package and repository star count, individually. 


Package             |  Repository
:-------------------------:|:-------------------------:
![evaluate-dependent package star count](./evaluate-dependents/resolve/main/evaluate-dependent_package_star_count.png)  |  ![evaluate-dependent repository star count](./evaluate-dependents/resolve/main/evaluate-dependent_repository_star_count.png)

There are 1 packages that have more than 1000 stars.

There are 2 repositories that have more than 1000 stars.


The top 10 in each category are the following:

*Package*

[huggingface/accelerate](https://github.com/huggingface/accelerate): 2884

[fcakyon/video-transformers](https://github.com/fcakyon/video-transformers): 4

[entelecheia/ekorpkit](https://github.com/entelecheia/ekorpkit): 2

*Repository*

[huggingface/transformers](https://github.com/huggingface/transformers): 70481

[huggingface/accelerate](https://github.com/huggingface/accelerate): 2884

[huggingface/evaluate](https://github.com/huggingface/evaluate): 878

[pytorch/benchmark](https://github.com/pytorch/benchmark): 406

[imhuay/studies](https://github.com/imhuay/studies): 161

[AIRC-KETI/ke-t5](https://github.com/AIRC-KETI/ke-t5): 128

[Jaseci-Labs/jaseci](https://github.com/Jaseci-Labs/jaseci): 32

[philschmid/optimum-static-quantization](https://github.com/philschmid/optimum-static-quantization): 20

[hms-dbmi/scw](https://github.com/hms-dbmi/scw): 19

[philschmid/optimum-transformers-optimizations](https://github.com/philschmid/optimum-transformers-optimizations): 15

[girafe-ai/msai-python](https://github.com/girafe-ai/msai-python): 15

[lewtun/dl4phys](https://github.com/lewtun/dl4phys): 15


### Package & Repository fork count

This section shows the package and repository fork count, individually. 

Package             |  Repository
:-------------------------:|:-------------------------:
![evaluate-dependent package forks count](./evaluate-dependents/resolve/main/evaluate-dependent_package_forks_count.png)  |  ![evaluate-dependent repository forks count](./evaluate-dependents/resolve/main/evaluate-dependent_repository_forks_count.png)

There are 1 packages that have more than 200 forks.

There are 2 repositories that have more than 200 forks.


The top 10 in each category are the following:

*Package*

[huggingface/accelerate](https://github.com/huggingface/accelerate): 224

[fcakyon/video-transformers](https://github.com/fcakyon/video-transformers): 0

[entelecheia/ekorpkit](https://github.com/entelecheia/ekorpkit): 0

*Repository*

[huggingface/transformers](https://github.com/huggingface/transformers): 16157

[huggingface/accelerate](https://github.com/huggingface/accelerate): 224

[pytorch/benchmark](https://github.com/pytorch/benchmark): 131

[Jaseci-Labs/jaseci](https://github.com/Jaseci-Labs/jaseci): 67

[huggingface/evaluate](https://github.com/huggingface/evaluate): 48

[imhuay/studies](https://github.com/imhuay/studies): 42

[AIRC-KETI/ke-t5](https://github.com/AIRC-KETI/ke-t5): 14

[girafe-ai/msai-python](https://github.com/girafe-ai/msai-python): 14

[hms-dbmi/scw](https://github.com/hms-dbmi/scw): 11

[kili-technology/automl](https://github.com/kili-technology/automl): 5

[whatofit/LevelWordWithFreq](https://github.com/whatofit/LevelWordWithFreq): 5