Datasets:
Languages:
English
Size:
1K<n<10K
ArXiv:
Tags:
iiw
imageinwords
image-descriptions
image-captions
detailed-descriptions
hyper-detailed-descriptions
License:
Update README.md
Browse files
README.md
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@@ -52,8 +52,115 @@ dataset = load_dataset("google/imageinwords", token="YOUR_HF_ACCESS_TOKEN", name
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<li><a href="https://huggingface.co/spaces/google/imageinwords-explorer">Dataset-Explorer</a></li>
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<li><a href="https://huggingface.co/spaces/google/imageinwords-explorer">Dataset-Explorer</a></li>
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## Dataset Description
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- **Homepage:** https://google.github.io/imageinwords/
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- **Point of Contact:** iiw-dataset@google.com
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### Dataset Summary
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ImageInWords (IIW), a carefully designed human-in-the-loop annotation framework for curating hyper-detailed image descriptions and a new dataset resulting from this process.
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We validate the framework through evaluations focused on the quality of the dataset and its utility for fine-tuning with considerations for readability, comprehensiveness, specificity, hallucinations, and human-likeness.
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This Data Card describes a mixture of human annotated and machine generated data intended to help create and capture rich, hyper-detailed image descriptions.
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IIW dataset has two parts: human annotations and model outputs. The main purposes of this dataset are:
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(1) to provide samples from SoTA human authored outputs to promote discussion on annotation guidelines to further improve the quality
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(2) to provide human SxS results and model outputs to promote development of automatic metrics to mimic human SxS judgements.
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### Supported Tasks
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Text-to-Image, Image-to-Text, Object Detection
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### Languages
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English
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## Dataset Structure
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### Data Instances
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### Data Fields
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IIW:
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- `image/key`
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- `image/url`
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- `IIW`: Human generated image description
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- `IIW-P5B`: Machine generated image description
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- `iiw-human-sxs-gpt4v` and `iiw-human-sxs-iiw-p5b`: human SxS metrics
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- metrics/Comprehensiveness
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- metrics/Specificity
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- metrics/Hallucination
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- metrics/First few line(s) as tldr
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- metrics/Human Like
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DCI:
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- `image`
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- `image/url`
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- `ex_id`
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- `IIW`: Human generated image description
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- `metrics/Comprehensiveness`
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- `metrics/Specificity`
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- `metrics/Hallucination`
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- `metrics/First few line(s) as tldr`
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- `metrics/Human Like`
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DOCCI:
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- `image`
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- `image/url`
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- `image/thumbnail_url`
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- `IIW`: Human generated image description
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- `DOCCI`: Image description from DOCCI
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- `metrics/Comprehensiveness`
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- `metrics/Specificity`
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- `metrics/Hallucination`
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- `metrics/First few line(s) as tldr`
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- `metrics/Human Like`
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LocNar:
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- `image/key`
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- `image/url`
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- `IIW-P5B`: Machine generated image description
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CM3600:
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- `image/key`
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- `image/url`
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- `IIW-P5B`: Machine generated image description
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Please note that all fields are string.
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### Data Splits
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Dataset | Size
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---| ---:
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IIW | 400
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DCI | 112
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DOCCI | 100
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LocNar | 1000
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CS3600 | 1000
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### Annotations
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#### Annotation process
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Some text descriptions were written by human annotators and some were generated by machine models.
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The metrics are all from human SxS.
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### Personal and Sensitive Information
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The images that were used for the descriptions and the machine generated text descriptions are checked (by algorithmic methods and manual inspection) for S/PII, pornographic content, and violence and any we found may contain such information have been filtered.
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We asked that human annotators use an objective and respectful language for the image descriptions.
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### Licensing Information
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CC BY 4.0
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### Citation Information
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```
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@inproceedings{Garg2024IIW,
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author = {Roopal Garg and Andrea Burns and Burcu Karagol Ayan and Yonatan Bitton and Ceslee Montgomery and Yasumasa Onoe and Andrew Bunner and Ranjay Krishna and Jason Baldridge and Radu Soricut},
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title = {{ImageInWords: Unlocking Hyper-Detailed Image Descriptions}},
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booktitle = {arXiv},
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year = {2024}
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```
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