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---
pretty_name: Evaluation run of google/gemma-2-2b
dataset_summary: "Dataset automatically created during the evaluation run of model\
\ [google/gemma-2-2b](https://huggingface.co/google/gemma-2-2b)\nThe dataset is\
\ composed of 0 configuration(s), each one corresponding to one of the evaluated\
\ task.\n\nThe dataset has been created from 2 run(s). Each run can be found as\
\ a specific split in each configuration, the split being named using the timestamp\
\ of the run.The \"train\" split is always pointing to the latest results.\n\nAn\
\ additional configuration \"results\" store all the aggregated results of the run.\n\
\nTo load the details from a run, you can for instance do the following:\n```python\n\
from datasets import load_dataset\ndata = load_dataset(\n\t\"richmondsin/hellaswag_ca_results\"\
,\n\tname=\"google__gemma-2-2b__hellaswag_ca\",\n\tsplit=\"latest\"\n)\n```\n\n\
## Latest results\n\nThese are the [latest results from run 2024-12-06T12-16-52.742991](https://huggingface.co/datasets/richmondsin/hellaswag_ca_results/blob/main/google/gemma-2-2b/results_2024-12-06T12-16-52.742991.json)\
\ (note that there might be results for other tasks in the repos if successive evals\
\ didn't cover the same tasks. You find each in the results and the \"latest\" split\
\ for each eval):\n\n```python\n{\n \"all\": {\n \"hellaswag_ca\": {\n\
\ \"alias\": \"hellaswag_ca\",\n \"acc,none\": 0.38627679016447913,\n\
\ \"acc_stderr,none\": 0.006276383747452178,\n \"acc_norm,none\"\
: 0.5024090380461871,\n \"acc_norm_stderr,none\": 0.006445236705818744\n\
\ }\n },\n \"hellaswag_ca\": {\n \"alias\": \"hellaswag_ca\"\
,\n \"acc,none\": 0.38627679016447913,\n \"acc_stderr,none\": 0.006276383747452178,\n\
\ \"acc_norm,none\": 0.5024090380461871,\n \"acc_norm_stderr,none\"\
: 0.006445236705818744\n }\n}\n```"
repo_url: https://huggingface.co/google/gemma-2-2b
leaderboard_url: ''
point_of_contact: ''
configs:
- config_name: google__gemma-2-2b__hellaswag_ca
data_files:
- split: 2024_12_06T12_16_52.742991
path:
- '**/samples_hellaswag_ca_2024-12-06T12-16-52.742991.jsonl'
- split: latest
path:
- '**/samples_hellaswag_ca_2024-12-06T12-16-52.742991.jsonl'
---
# Dataset Card for Evaluation run of google/gemma-2-2b
<!-- Provide a quick summary of the dataset. -->
Dataset automatically created during the evaluation run of model [google/gemma-2-2b](https://huggingface.co/google/gemma-2-2b)
The dataset is composed of 0 configuration(s), each one corresponding to one of the evaluated task.
The dataset has been created from 2 run(s). Each run can be found as a specific split in each configuration, the split being named using the timestamp of the run.The "train" split is always pointing to the latest results.
An additional configuration "results" store all the aggregated results of the run.
To load the details from a run, you can for instance do the following:
```python
from datasets import load_dataset
data = load_dataset(
"richmondsin/hellaswag_ca_results",
name="google__gemma-2-2b__hellaswag_ca",
split="latest"
)
```
## Latest results
These are the [latest results from run 2024-12-06T12-16-52.742991](https://huggingface.co/datasets/richmondsin/hellaswag_ca_results/blob/main/google/gemma-2-2b/results_2024-12-06T12-16-52.742991.json) (note that there might be results for other tasks in the repos if successive evals didn't cover the same tasks. You find each in the results and the "latest" split for each eval):
```python
{
"all": {
"hellaswag_ca": {
"alias": "hellaswag_ca",
"acc,none": 0.38627679016447913,
"acc_stderr,none": 0.006276383747452178,
"acc_norm,none": 0.5024090380461871,
"acc_norm_stderr,none": 0.006445236705818744
}
},
"hellaswag_ca": {
"alias": "hellaswag_ca",
"acc,none": 0.38627679016447913,
"acc_stderr,none": 0.006276383747452178,
"acc_norm,none": 0.5024090380461871,
"acc_norm_stderr,none": 0.006445236705818744
}
}
```
## Dataset Details
### Dataset Description
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#### Personal and Sensitive Information
<!-- State whether the dataset contains data that might be considered personal, sensitive, or private (e.g., data that reveals addresses, uniquely identifiable names or aliases, racial or ethnic origins, sexual orientations, religious beliefs, political opinions, financial or health data, etc.). If efforts were made to anonymize the data, describe the anonymization process. -->
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### Recommendations
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Users should be made aware of the risks, biases and limitations of the dataset. More information needed for further recommendations.
## Citation [optional]
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