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diff --git a/README.md b/README.md
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----
-annotations_creators:
-- expert-generated
-- crowdsourced
-- found
-language:
-- en
-language_creators:
-- crowdsourced
-- expert-generated
-license:
-- cc-by-4.0
-multilinguality:
-- monolingual
-pretty_name: newyorker_caption_contest
-size_categories:
-- 1K<n<10K
-source_datasets:
-- original
-tags:
-- humor
-- caption contest
-- new yorker
-task_categories:
-- image-to-text
-- multiple-choice
-- text-classification
-- text-generation
-- visual-question-answering
-- other
-- text2text-generation
-task_ids:
-- multi-class-classification
-- language-modeling
-- visual-question-answering
-- explanation-generation
----
-
-# Dataset Card for New Yorker Caption Contest Benchmarks
-
-## Table of Contents
-- [Table of Contents](#table-of-contents)
-- [Dataset Description](#dataset-description)
-  - [Dataset Summary](#dataset-summary)
-  - [Supported Tasks and Leaderboards](#supported-tasks-and-leaderboards)
-  - [Languages](#languages)
-- [Dataset Structure](#dataset-structure)
-  - [Data Instances](#data-instances)
-  - [Data Fields](#data-fields)
-  - [Data Splits](#data-splits)
-- [Dataset Creation](#dataset-creation)
-  - [Curation Rationale](#curation-rationale)
-  - [Source Data](#source-data)
-  - [Annotations](#annotations)
-  - [Personal and Sensitive Information](#personal-and-sensitive-information)
-- [Considerations for Using the Data](#considerations-for-using-the-data)
-  - [Social Impact of Dataset](#social-impact-of-dataset)
-  - [Discussion of Biases](#discussion-of-biases)
-  - [Other Known Limitations](#other-known-limitations)
-- [Additional Information](#additional-information)
-  - [Dataset Curators](#dataset-curators)
-  - [Licensing Information](#licensing-information)
-  - [Citation Information](#citation-information)
-  - [Contributions](#contributions)
-
-## Dataset Description
-
-- **Homepage:** [capcon.dev](https://www.capcon.dev)
-- **Repository:** [https://github.com/jmhessel/caption_contest_corpus](https://github.com/jmhessel/caption_contest_corpus)
-- **Paper:** [Do Androids Laugh at Electric Sheep? Humor "Understanding" Benchmarks from The New Yorker Caption Contest](https://arxiv.org/abs/2209.06293)
-- **Leaderboard:** No official leaderboard (yet).
-- **Point of Contact:** jackh@allenai.org
-
-### Dataset Summary
-
-Data from:
-[Do Androids Laugh at Electric Sheep? Humor "Understanding" Benchmarks from The New Yorker Caption Contest](https://arxiv.org/abs/2209.06293)
-
-```
-@article{hessel2022androids,
-  title={Do Androids Laugh at Electric Sheep? Humor "Understanding" Benchmarks from The New Yorker Caption Contest},
-  author={Hessel, Jack and Marasovi{\'c}, Ana and Hwang, Jena D and Lee, Lillian and Da, Jeff and Zellers, Rowan and Mankoff, Robert and Choi, Yejin},
-  journal={arXiv preprint arXiv:2209.06293},
-  year={2022}
-}
-```
-
-If you use this dataset, we would appreciate you citing our work, but also -- several other papers that we build this corpus upon. See [Citation Information](#citation-information).
-
-We challenge AI models to "demonstrate understanding" of the
-sophisticated multimodal humor of The New Yorker Caption Contest.
-Concretely, we develop three carefully circumscribed tasks for which
-it suffices (but is not necessary) to grasp potentially complex and
-unexpected relationships between image and caption, and similarly
-complex and unexpected allusions to the wide varieties of human
-experience.
-
-
-### Supported Tasks and Leaderboards
-
-Three tasks are supported:
-
-- "Matching:" a model must recognize a caption written about a cartoon (vs. options that were not);
-- "Quality ranking:" a model must evaluate the quality of a caption by scoring it more highly than a lower quality option from the same contest;
-- "Explanation:" a model must explain why a given joke is funny.
-
-There are no official leaderboards (yet).
-
-### Languages
-
-English
-
-## Dataset Structure
-
-Here's an example instance from Matching:
-```
-{'caption_choices': ['Tell me about your childhood very quickly.',
-                     "Believe me . . . it's what's UNDER the ground that's "
-                     'most interesting.',
-                     "Stop me if you've heard this one.",
-                     'I have trouble saying no.',
-                     'Yes, I see the train but I think we can beat it.'],
- 'contest_number': 49,
- 'entities': ['https://en.wikipedia.org/wiki/Rule_of_three_(writing)',
-              'https://en.wikipedia.org/wiki/Bar_joke',
-              'https://en.wikipedia.org/wiki/Religious_institute'],
- 'from_description': 'scene: a bar description: Two priests and a rabbi are '
-                     'walking into a bar, as the bartender and another patron '
-                     'look on. The bartender talks on the phone while looking '
-                     'skeptically at the incoming crew. uncanny: The scene '
-                     'depicts a very stereotypical "bar joke" that would be '
-                     'unlikely to be encountered in real life; the skepticism '
-                     'of the bartender suggests that he is aware he is seeing '
-                     'this trope, and is explaining it to someone on the '
-                     'phone. entities: Rule_of_three_(writing), Bar_joke, '
-                     'Religious_institute. choices A: Tell me about your '
-                     "childhood very quickly. B: Believe me . . . it's what's "
-                     "UNDER the ground that's most interesting. C: Stop me if "
-                     "you've heard this one. D: I have trouble saying no. E: "
-                     'Yes, I see the train but I think we can beat it.',
- 'image': <PIL.JpegImagePlugin.JpegImageFile image mode=L size=323x231 at 0x7F34F283E9D0>,
- 'image_description': 'Two priests and a rabbi are walking into a bar, as the '
-                      'bartender and another patron look on. The bartender '
-                      'talks on the phone while looking skeptically at the '
-                      'incoming crew.',
- 'image_location': 'a bar',
- 'image_uncanny_description': 'The scene depicts a very stereotypical "bar '
-                              'joke" that would be unlikely to be encountered '
-                              'in real life; the skepticism of the bartender '
-                              'suggests that he is aware he is seeing this '
-                              'trope, and is explaining it to someone on the '
-                              'phone.',
- 'instance_id': '21125bb8787b4e7e82aa3b0a1cba1571',
- 'label': 'C',
- 'n_tokens_label': 1,
- 'questions': ['What is the bartender saying on the phone in response to the '
-               'living, breathing, stereotypical bar joke that is unfolding?']}
-```
-
-The label "C" indicates that the 3rd choice in the `caption_choices` is correct.
-
-Here's an example instance from Ranking (in the from pixels setting --- though, this is also available in the from description setting)
-```
-{'caption_choices': ['I guess I misunderstood when you said long bike ride.',
-                     'Does your divorce lawyer have any other cool ideas?'],
- 'contest_number': 582,
- 'image': <PIL.JpegImagePlugin.JpegImageFile image mode=L size=600x414 at 0x7F8FF9F96610>,
- 'instance_id': 'dd1c214a1ca3404aa4e582c9ce50795a',
- 'label': 'A',
- 'n_tokens_label': 1,
- 'winner_source': 'official_winner'}
-```
-the label indicates that the first caption choice ("A", here) in the `caption_choices` list was more highly rated.
-
-
-Here's an example instance from Explanation:
-```
-{'caption_choices': 'The classics can be so intimidating.',
- 'contest_number': 752,
- 'entities': ['https://en.wikipedia.org/wiki/Literature',
-              'https://en.wikipedia.org/wiki/Solicitor'],
- 'from_description': 'scene: a road description: Two people are walking down a '
-                     'path. A number of giant books have surrounded them. '
-                     'uncanny: There are book people in this world. entities: '
-                     'Literature, Solicitor. caption: The classics can be so '
-                     'intimidating.',
- 'image': <PIL.JpegImagePlugin.JpegImageFile image mode=L size=800x706 at 0x7F90003D0BB0>,
- 'image_description': 'Two people are walking down a path. A number of giant '
-                      'books have surrounded them.',
- 'image_location': 'a road',
- 'image_uncanny_description': 'There are book people in this world.',
- 'instance_id': 'eef9baf450e2fab19b96facc128adf80',
- 'label': 'A play on the word intimidating --- usually if the classics (i.e., '
-          'classic novels) were to be intimidating, this would mean that they '
-          'are intimidating to read due to their length, complexity, etc. But '
-          'here, they are surrounded by anthropomorphic books which look '
-          'physically intimidating, i.e., they are intimidating because they '
-          'may try to beat up these people.',
- 'n_tokens_label': 59,
- 'questions': ['What do the books want?']}
-```
-The label is an explanation of the joke, which serves as the autoregressive target.
-
-### Data Instances
-
-See above
-
-### Data Fields
-
-See above
-
-### Data Splits
-
-Data splits can be accessed as:
-```
-from datasets import load_dataset
-dset = load_dataset("newyorker_caption_contest", "matching")
-dset = load_dataset("newyorker_caption_contest", "ranking")
-dset = load_dataset("newyorker_caption_contest", "explanation")
-```
-
-Or, in the from pixels setting, e.g.,
-```
-from datasets import load_dataset
-dset = load_dataset("newyorker_caption_contest", "ranking_from_pixels")
-```
-
-Because the dataset is small, we reported in 5-fold cross-validation setting initially. The default splits are split 0. You can access the other splits, e.g.:
-
-```
-from datasets import load_dataset
-
-# the 4th data split
-dset = load_dataset("newyorker_caption_contest", "explanation_4")
-```
-
-## Dataset Creation
-
-Full details are in the paper.
-
-### Curation Rationale
-
-See the paper for rationale/motivation.
-
-### Source Data
-
-See citation below. We combined 3 sources of data, and added significant annotations of our own.
-
-#### Initial Data Collection and Normalization
-
-Full details are in the paper.
-
-#### Who are the source language producers?
-
-We paid crowdworkers $15/hr to annotate the corpus.
-In addition, significant annotation efforts were conducted by the authors of this work.
-
-### Annotations
-
-Full details are in the paper.
-
-#### Annotation process
-
-Full details are in the paper.
-
-#### Who are the annotators?
-
-A mix of crowdworks and authors of this paper.
-
-### Personal and Sensitive Information
-
-Has been redacted from the dataset. Images are published in the New Yorker already.
-
-## Considerations for Using the Data
-
-### Social Impact of Dataset
-
-It's plausible that humor could perpetuate negative stereotypes. The jokes in this corpus are a mix of crowdsourced entries that are highly rated, and ones published in the new yorker.
-
-### Discussion of Biases
-
-Humor is subjective, and some of the jokes may be considered offensive. The images may contain adult themes and minor cartoon nudity.
-
-### Other Known Limitations
-
-More details are in the paper
-
-## Additional Information
-
-### Dataset Curators
-
-The dataset was curated by researchers at AI2
-
-### Licensing Information
-
-The annotations we provide are CC-BY-4.0. See www.capcon.dev for more info.
-
-### Citation Information
-
-
-```
-@article{hessel2022androids,
-  title={Do Androids Laugh at Electric Sheep? Humor "Understanding" Benchmarks from The New Yorker Caption Contest},
-  author={Hessel, Jack and Marasovi{\'c}, Ana and Hwang, Jena D and Lee, Lillian and Da, Jeff and Zellers, Rowan and Mankoff, Robert and Choi, Yejin},
-  journal={arXiv preprint arXiv:2209.06293},
-  year={2022}
-}
-```
-
-Our data contributions are:
-
-- The cartoon-level annotations;
-- The joke explanations;
-- and the framing of the tasks
-
-We release these data we contribute under CC-BY (see DATASET_LICENSE). If you find this data useful in your work, in addition to citing our contributions, please also cite the following, from which the cartoons/captions in our corpus are derived:
-
-```
-@misc{newyorkernextmldataset,
-  author={Jain, Lalit  and Jamieson, Kevin and Mankoff, Robert and Nowak, Robert and Sievert, Scott},
-  title={The {N}ew {Y}orker Cartoon Caption Contest Dataset},
-  year={2020},
-  url={https://nextml.github.io/caption-contest-data/}
-}
-
-@inproceedings{radev-etal-2016-humor,
-  title = "Humor in Collective Discourse: Unsupervised Funniness Detection in The {New Yorker} Cartoon Caption Contest",
-  author = "Radev, Dragomir  and
-      Stent, Amanda  and
-      Tetreault, Joel  and
-      Pappu, Aasish  and
-      Iliakopoulou, Aikaterini  and
-      Chanfreau, Agustin  and
-      de Juan, Paloma  and
-      Vallmitjana, Jordi  and
-      Jaimes, Alejandro  and
-      Jha, Rahul  and
-      Mankoff, Robert",
-  booktitle = "LREC",
-  year = "2016",
-}
-
-@inproceedings{shahaf2015inside,
-  title={Inside jokes: Identifying humorous cartoon captions},
-  author={Shahaf, Dafna and Horvitz, Eric and Mankoff, Robert},
-  booktitle={KDD},
-  year={2015},
-}
-```
\ No newline at end of file
diff --git a/dataset_infos.json b/dataset_infos.json
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--- a/dataset_infos.json
+++ /dev/null
@@ -1 +0,0 @@
-{"matching": {"description": "There are 3 caption contest tasks, described in the paper. In the Matching multiple choice task, models must recognize a caption written about a cartoon (vs. options that were not). In the Quality Ranking task, models must evaluate the quality\nof that caption by scoring it more highly than a lower quality option from the same contest. In the Explanation Generation task, models must explain why the joke is funny.\nYou are given a cartoon and 5 captions. Only one of the captions was truly written about the cartoon. You must select it.\n", "citation": "@article{hessel2022androids,\n  title={Do Androids Laugh at Electric Sheep? Humor\" Understanding\" Benchmarks from The New Yorker Caption Contest},\n  author={Hessel, Jack and Marasovi{'c}, Ana and Hwang, Jena D and Lee, Lillian and Da, Jeff and Zellers, Rowan and Mankoff, Robert and Choi, Yejin},\n  journal={arXiv preprint arXiv:2209.06293},\n  year={2022}\n}\n\nwww.capcon.dev\n\nOur data contributions are:\n\n- The cartoon-level annotations;\n- The joke explanations;\n- and the framing of the tasks\nWe release these data we contribute under CC-BY (see DATASET_LICENSE).\n\nIf you find this data useful in your work, in addition to citing our contributions, please also cite the following, from which the cartoons/captions in our corpus are derived:\n\n@misc{newyorkernextmldataset,\n  author={Jain, Lalit  and Jamieson, Kevin and Mankoff, Robert and Nowak, Robert and Sievert, Scott},\n  title={The {N}ew {Y}orker Cartoon Caption Contest Dataset},\n  year={2020},\n  url={https://nextml.github.io/caption-contest-data/}\n}\n\n@inproceedings{radev-etal-2016-humor,\n  title = \"Humor in Collective Discourse: Unsupervised Funniness Detection in The {New Yorker} Cartoon Caption Contest\",\n  author = \"Radev, Dragomir  and\n      Stent, Amanda  and\n      Tetreault, Joel  and\n      Pappu, Aasish  and\n      Iliakopoulou, Aikaterini  and\n      Chanfreau, Agustin  and\n      de Juan, Paloma  and\n      Vallmitjana, Jordi  and\n      Jaimes, Alejandro  and\n      Jha, Rahul  and\n      Mankoff, Robert\",\n  booktitle = \"LREC\",\n  year = \"2016\",\n}\n\n@inproceedings{shahaf2015inside,\n  title={Inside jokes: Identifying humorous cartoon captions},\n  author={Shahaf, Dafna and Horvitz, Eric and Mankoff, Robert},\n  booktitle={KDD},\n  year={2015},\n}\n", "homepage": "www.capcon.dev", "license": "", "features": {"image": {"decode": true, "id": null, "_type": "Image"}, "contest_number": {"dtype": "int32", "id": null, "_type": "Value"}, "image_location": {"dtype": "string", "id": null, "_type": "Value"}, "image_description": {"dtype": "string", "id": null, "_type": "Value"}, "image_uncanny_description": {"dtype": "string", "id": null, "_type": "Value"}, "entities": {"feature": {"dtype": "string", "id": null, "_type": "Value"}, "length": -1, "id": null, "_type": "Sequence"}, "questions": {"feature": {"dtype": "string", "id": null, "_type": "Value"}, "length": -1, "id": null, "_type": "Sequence"}, "caption_choices": {"feature": {"dtype": "string", "id": null, "_type": "Value"}, "length": -1, "id": null, "_type": "Sequence"}, "from_description": {"dtype": "string", "id": null, "_type": "Value"}, "label": {"dtype": "string", "id": null, "_type": "Value"}, "n_tokens_label": {"dtype": "int32", "id": null, "_type": "Value"}, "instance_id": {"dtype": "string", "id": null, "_type": "Value"}}, "post_processed": null, "supervised_keys": null, "task_templates": null, "builder_name": "newyorker_caption_contest", "config_name": "matching", "version": {"version_str": "1.0.0", "description": null, "major": 1, "minor": 0, "patch": 0}, "splits": {"train": {"name": "train", "num_bytes": 13544991, "num_examples": 9792, "dataset_name": "newyorker_caption_contest"}, "validation": {"name": "validation", "num_bytes": 687342, "num_examples": 531, "dataset_name": "newyorker_caption_contest"}, "test": {"name": "test", "num_bytes": 687942, "num_examples": 528, "dataset_name": "newyorker_caption_contest"}}, "download_checksums": {"https://storage.googleapis.com/ai2-jack-public/caption_contest_data_public/huggingface_hub/v1.0/matching.zip": {"num_bytes": 3374031, "checksum": "e854c62b8802802fecacc437c3cae2f62b1bbc55683898090720ba88c1d93233"}, "https://storage.googleapis.com/ai2-jack-public/caption_contest_data_public/all_contest_images.zip": {"num_bytes": 39523209, "checksum": "741527b4ef7198d16cee42ae74eacbe239bcc7377f8b86811c27d627fdc77748"}}, "download_size": 42897240, "post_processing_size": null, "dataset_size": 14920275, "size_in_bytes": 57817515}, "matching_from_pixels": {"description": "There are 3 caption contest tasks, described in the paper. In the Matching multiple choice task, models must recognize a caption written about a cartoon (vs. options that were not). In the Quality Ranking task, models must evaluate the quality\nof that caption by scoring it more highly than a lower quality option from the same contest. In the Explanation Generation task, models must explain why the joke is funny.\nYou are given a cartoon and 5 captions. Only one of the captions was truly written about the cartoon. You must select it.\n", "citation": "@article{hessel2022androids,\n  title={Do Androids Laugh at Electric Sheep? Humor\" Understanding\" Benchmarks from The New Yorker Caption Contest},\n  author={Hessel, Jack and Marasovi{'c}, Ana and Hwang, Jena D and Lee, Lillian and Da, Jeff and Zellers, Rowan and Mankoff, Robert and Choi, Yejin},\n  journal={arXiv preprint arXiv:2209.06293},\n  year={2022}\n}\n\nwww.capcon.dev\n\nOur data contributions are:\n\n- The cartoon-level annotations;\n- The joke explanations;\n- and the framing of the tasks\nWe release these data we contribute under CC-BY (see DATASET_LICENSE).\n\nIf you find this data useful in your work, in addition to citing our contributions, please also cite the following, from which the cartoons/captions in our corpus are derived:\n\n@misc{newyorkernextmldataset,\n  author={Jain, Lalit  and Jamieson, Kevin and Mankoff, Robert and Nowak, Robert and Sievert, Scott},\n  title={The {N}ew {Y}orker Cartoon Caption Contest Dataset},\n  year={2020},\n  url={https://nextml.github.io/caption-contest-data/}\n}\n\n@inproceedings{radev-etal-2016-humor,\n  title = \"Humor in Collective Discourse: Unsupervised Funniness Detection in The {New Yorker} Cartoon Caption Contest\",\n  author = \"Radev, Dragomir  and\n      Stent, Amanda  and\n      Tetreault, Joel  and\n      Pappu, Aasish  and\n      Iliakopoulou, Aikaterini  and\n      Chanfreau, Agustin  and\n      de Juan, Paloma  and\n      Vallmitjana, Jordi  and\n      Jaimes, Alejandro  and\n      Jha, Rahul  and\n      Mankoff, Robert\",\n  booktitle = \"LREC\",\n  year = \"2016\",\n}\n\n@inproceedings{shahaf2015inside,\n  title={Inside jokes: Identifying humorous cartoon captions},\n  author={Shahaf, Dafna and Horvitz, Eric and Mankoff, Robert},\n  booktitle={KDD},\n  year={2015},\n}\n", "homepage": "www.capcon.dev", "license": "", "features": {"image": {"decode": true, "id": null, "_type": "Image"}, "contest_number": {"dtype": "int32", "id": null, "_type": "Value"}, "caption_choices": {"feature": {"dtype": "string", "id": null, "_type": "Value"}, "length": -1, "id": null, "_type": "Sequence"}, "label": {"dtype": "string", "id": null, "_type": "Value"}, "n_tokens_label": {"dtype": "int32", "id": null, "_type": "Value"}, "instance_id": {"dtype": "string", "id": null, "_type": "Value"}}, "post_processed": null, "supervised_keys": null, "task_templates": null, "builder_name": "newyorker_caption_contest", "config_name": "matching_from_pixels", "version": {"version_str": "1.0.0", "description": null, "major": 1, "minor": 0, "patch": 0}, "splits": {"train": {"name": "train", "num_bytes": 762740, "num_examples": 1632, "dataset_name": "newyorker_caption_contest"}, "validation": {"name": "validation", "num_bytes": 244136, "num_examples": 531, "dataset_name": "newyorker_caption_contest"}, "test": {"name": "test", "num_bytes": 243528, "num_examples": 528, "dataset_name": "newyorker_caption_contest"}}, "download_checksums": {"https://storage.googleapis.com/ai2-jack-public/caption_contest_data_public/huggingface_hub/v1.0/matching_from_pixels.zip": {"num_bytes": 307725, "checksum": "0ae2d1c3a2ddfc0873ef993247b1c184ade37ef2f72fb59984116d1696577bb1"}, "https://storage.googleapis.com/ai2-jack-public/caption_contest_data_public/all_contest_images.zip": {"num_bytes": 39523209, "checksum": "741527b4ef7198d16cee42ae74eacbe239bcc7377f8b86811c27d627fdc77748"}}, "download_size": 39830934, "post_processing_size": null, "dataset_size": 1250404, "size_in_bytes": 41081338}, "ranking": {"description": "There are 3 caption contest tasks, described in the paper. In the Matching multiple choice task, models must recognize a caption written about a cartoon (vs. options that were not). In the Quality Ranking task, models must evaluate the quality\nof that caption by scoring it more highly than a lower quality option from the same contest. In the Explanation Generation task, models must explain why the joke is funny.\nYou are given a cartoon and 2 captions. One of the captions was selected by crowd voting or New Yorker editors as high quality. You must select it.\n", "citation": "@article{hessel2022androids,\n  title={Do Androids Laugh at Electric Sheep? Humor\" Understanding\" Benchmarks from The New Yorker Caption Contest},\n  author={Hessel, Jack and Marasovi{'c}, Ana and Hwang, Jena D and Lee, Lillian and Da, Jeff and Zellers, Rowan and Mankoff, Robert and Choi, Yejin},\n  journal={arXiv preprint arXiv:2209.06293},\n  year={2022}\n}\n\nwww.capcon.dev\n\nOur data contributions are:\n\n- The cartoon-level annotations;\n- The joke explanations;\n- and the framing of the tasks\nWe release these data we contribute under CC-BY (see DATASET_LICENSE).\n\nIf you find this data useful in your work, in addition to citing our contributions, please also cite the following, from which the cartoons/captions in our corpus are derived:\n\n@misc{newyorkernextmldataset,\n  author={Jain, Lalit  and Jamieson, Kevin and Mankoff, Robert and Nowak, Robert and Sievert, Scott},\n  title={The {N}ew {Y}orker Cartoon Caption Contest Dataset},\n  year={2020},\n  url={https://nextml.github.io/caption-contest-data/}\n}\n\n@inproceedings{radev-etal-2016-humor,\n  title = \"Humor in Collective Discourse: Unsupervised Funniness Detection in The {New Yorker} Cartoon Caption Contest\",\n  author = \"Radev, Dragomir  and\n      Stent, Amanda  and\n      Tetreault, Joel  and\n      Pappu, Aasish  and\n      Iliakopoulou, Aikaterini  and\n      Chanfreau, Agustin  and\n      de Juan, Paloma  and\n      Vallmitjana, Jordi  and\n      Jaimes, Alejandro  and\n      Jha, Rahul  and\n      Mankoff, Robert\",\n  booktitle = \"LREC\",\n  year = \"2016\",\n}\n\n@inproceedings{shahaf2015inside,\n  title={Inside jokes: Identifying humorous cartoon captions},\n  author={Shahaf, Dafna and Horvitz, Eric and Mankoff, Robert},\n  booktitle={KDD},\n  year={2015},\n}\n", "homepage": "www.capcon.dev", "license": "", "features": {"image": {"decode": true, "id": null, "_type": "Image"}, "contest_number": {"dtype": "int32", "id": null, "_type": "Value"}, "image_location": {"dtype": "string", "id": null, "_type": "Value"}, "image_description": {"dtype": "string", "id": null, "_type": "Value"}, "image_uncanny_description": {"dtype": "string", "id": null, "_type": "Value"}, "entities": {"feature": {"dtype": "string", "id": null, "_type": "Value"}, "length": -1, "id": null, "_type": "Sequence"}, "questions": {"feature": {"dtype": "string", "id": null, "_type": "Value"}, "length": -1, "id": null, "_type": "Sequence"}, "caption_choices": {"feature": {"dtype": "string", "id": null, "_type": "Value"}, "length": -1, "id": null, "_type": "Sequence"}, "from_description": {"dtype": "string", "id": null, "_type": "Value"}, "winner_source": {"dtype": "string", "id": null, "_type": "Value"}, "label": {"dtype": "string", "id": null, "_type": "Value"}, "n_tokens_label": {"dtype": "int32", "id": null, "_type": "Value"}, "instance_id": {"dtype": "string", "id": null, "_type": "Value"}}, "post_processed": null, "supervised_keys": null, "task_templates": null, "builder_name": "newyorker_caption_contest", "config_name": "ranking", "version": {"version_str": "1.0.0", "description": null, "major": 1, "minor": 0, "patch": 0}, "splits": {"train": {"name": "train", "num_bytes": 10503648, "num_examples": 9576, "dataset_name": "newyorker_caption_contest"}, "validation": {"name": "validation", "num_bytes": 516533, "num_examples": 507, "dataset_name": "newyorker_caption_contest"}, "test": {"name": "test", "num_bytes": 527159, "num_examples": 513, "dataset_name": "newyorker_caption_contest"}}, "download_checksums": {"https://storage.googleapis.com/ai2-jack-public/caption_contest_data_public/huggingface_hub/v1.0/ranking.zip": {"num_bytes": 2440380, "checksum": "d100c437d7f77c5582b1cf3b73a2c9111e3870e323a6ac40ce6be434c1091829"}, "https://storage.googleapis.com/ai2-jack-public/caption_contest_data_public/all_contest_images.zip": {"num_bytes": 39523209, "checksum": "741527b4ef7198d16cee42ae74eacbe239bcc7377f8b86811c27d627fdc77748"}}, "download_size": 41963589, "post_processing_size": null, "dataset_size": 11547340, "size_in_bytes": 53510929}, "ranking_from_pixels": {"description": "There are 3 caption contest tasks, described in the paper. In the Matching multiple choice task, models must recognize a caption written about a cartoon (vs. options that were not). In the Quality Ranking task, models must evaluate the quality\nof that caption by scoring it more highly than a lower quality option from the same contest. In the Explanation Generation task, models must explain why the joke is funny.\nYou are given a cartoon and 2 captions. One of the captions was selected by crowd voting or New Yorker editors as high quality. You must select it.\n", "citation": "@article{hessel2022androids,\n  title={Do Androids Laugh at Electric Sheep? Humor\" Understanding\" Benchmarks from The New Yorker Caption Contest},\n  author={Hessel, Jack and Marasovi{'c}, Ana and Hwang, Jena D and Lee, Lillian and Da, Jeff and Zellers, Rowan and Mankoff, Robert and Choi, Yejin},\n  journal={arXiv preprint arXiv:2209.06293},\n  year={2022}\n}\n\nwww.capcon.dev\n\nOur data contributions are:\n\n- The cartoon-level annotations;\n- The joke explanations;\n- and the framing of the tasks\nWe release these data we contribute under CC-BY (see DATASET_LICENSE).\n\nIf you find this data useful in your work, in addition to citing our contributions, please also cite the following, from which the cartoons/captions in our corpus are derived:\n\n@misc{newyorkernextmldataset,\n  author={Jain, Lalit  and Jamieson, Kevin and Mankoff, Robert and Nowak, Robert and Sievert, Scott},\n  title={The {N}ew {Y}orker Cartoon Caption Contest Dataset},\n  year={2020},\n  url={https://nextml.github.io/caption-contest-data/}\n}\n\n@inproceedings{radev-etal-2016-humor,\n  title = \"Humor in Collective Discourse: Unsupervised Funniness Detection in The {New Yorker} Cartoon Caption Contest\",\n  author = \"Radev, Dragomir  and\n      Stent, Amanda  and\n      Tetreault, Joel  and\n      Pappu, Aasish  and\n      Iliakopoulou, Aikaterini  and\n      Chanfreau, Agustin  and\n      de Juan, Paloma  and\n      Vallmitjana, Jordi  and\n      Jaimes, Alejandro  and\n      Jha, Rahul  and\n      Mankoff, Robert\",\n  booktitle = \"LREC\",\n  year = \"2016\",\n}\n\n@inproceedings{shahaf2015inside,\n  title={Inside jokes: Identifying humorous cartoon captions},\n  author={Shahaf, Dafna and Horvitz, Eric and Mankoff, Robert},\n  booktitle={KDD},\n  year={2015},\n}\n", "homepage": "www.capcon.dev", "license": "", "features": {"image": {"decode": true, "id": null, "_type": "Image"}, "contest_number": {"dtype": "int32", "id": null, "_type": "Value"}, "caption_choices": {"feature": {"dtype": "string", "id": null, "_type": "Value"}, "length": -1, "id": null, "_type": "Sequence"}, "winner_source": {"dtype": "string", "id": null, "_type": "Value"}, "label": {"dtype": "string", "id": null, "_type": "Value"}, "n_tokens_label": {"dtype": "int32", "id": null, "_type": "Value"}, "instance_id": {"dtype": "string", "id": null, "_type": "Value"}}, "post_processed": null, "supervised_keys": null, "task_templates": null, "builder_name": "newyorker_caption_contest", "config_name": "ranking_from_pixels", "version": {"version_str": "1.0.0", "description": null, "major": 1, "minor": 0, "patch": 0}, "splits": {"train": {"name": "train", "num_bytes": 531704, "num_examples": 1596, "dataset_name": "newyorker_caption_contest"}, "validation": {"name": "validation", "num_bytes": 167378, "num_examples": 506, "dataset_name": "newyorker_caption_contest"}, "test": {"name": "test", "num_bytes": 169649, "num_examples": 513, "dataset_name": "newyorker_caption_contest"}}, "download_checksums": {"https://storage.googleapis.com/ai2-jack-public/caption_contest_data_public/huggingface_hub/v1.0/ranking_from_pixels.zip": {"num_bytes": 203854, "checksum": "6afb6dd49b9558091ce09e4dea0d09a101049bd59ed6d26567cfa3401e60682c"}, "https://storage.googleapis.com/ai2-jack-public/caption_contest_data_public/all_contest_images.zip": {"num_bytes": 39523209, "checksum": "741527b4ef7198d16cee42ae74eacbe239bcc7377f8b86811c27d627fdc77748"}}, "download_size": 39727063, "post_processing_size": null, "dataset_size": 868731, "size_in_bytes": 40595794}, "explanation": {"description": "There are 3 caption contest tasks, described in the paper. In the Matching multiple choice task, models must recognize a caption written about a cartoon (vs. options that were not). In the Quality Ranking task, models must evaluate the quality\nof that caption by scoring it more highly than a lower quality option from the same contest. In the Explanation Generation task, models must explain why the joke is funny.\nYou are given a cartoon and a caption that was written about it. You must autoregressively generate a joke explanation.\n", "citation": "@article{hessel2022androids,\n  title={Do Androids Laugh at Electric Sheep? Humor\" Understanding\" Benchmarks from The New Yorker Caption Contest},\n  author={Hessel, Jack and Marasovi{'c}, Ana and Hwang, Jena D and Lee, Lillian and Da, Jeff and Zellers, Rowan and Mankoff, Robert and Choi, Yejin},\n  journal={arXiv preprint arXiv:2209.06293},\n  year={2022}\n}\n\nwww.capcon.dev\n\nOur data contributions are:\n\n- The cartoon-level annotations;\n- The joke explanations;\n- and the framing of the tasks\nWe release these data we contribute under CC-BY (see DATASET_LICENSE).\n\nIf you find this data useful in your work, in addition to citing our contributions, please also cite the following, from which the cartoons/captions in our corpus are derived:\n\n@misc{newyorkernextmldataset,\n  author={Jain, Lalit  and Jamieson, Kevin and Mankoff, Robert and Nowak, Robert and Sievert, Scott},\n  title={The {N}ew {Y}orker Cartoon Caption Contest Dataset},\n  year={2020},\n  url={https://nextml.github.io/caption-contest-data/}\n}\n\n@inproceedings{radev-etal-2016-humor,\n  title = \"Humor in Collective Discourse: Unsupervised Funniness Detection in The {New Yorker} Cartoon Caption Contest\",\n  author = \"Radev, Dragomir  and\n      Stent, Amanda  and\n      Tetreault, Joel  and\n      Pappu, Aasish  and\n      Iliakopoulou, Aikaterini  and\n      Chanfreau, Agustin  and\n      de Juan, Paloma  and\n      Vallmitjana, Jordi  and\n      Jaimes, Alejandro  and\n      Jha, Rahul  and\n      Mankoff, Robert\",\n  booktitle = \"LREC\",\n  year = \"2016\",\n}\n\n@inproceedings{shahaf2015inside,\n  title={Inside jokes: Identifying humorous cartoon captions},\n  author={Shahaf, Dafna and Horvitz, Eric and Mankoff, Robert},\n  booktitle={KDD},\n  year={2015},\n}\n", "homepage": "www.capcon.dev", "license": "", "features": {"image": {"decode": true, "id": null, "_type": "Image"}, "contest_number": {"dtype": "int32", "id": null, "_type": "Value"}, "image_location": {"dtype": "string", "id": null, "_type": "Value"}, "image_description": {"dtype": "string", "id": null, "_type": "Value"}, "image_uncanny_description": {"dtype": "string", "id": null, "_type": "Value"}, "entities": {"feature": {"dtype": "string", "id": null, "_type": "Value"}, "length": -1, "id": null, "_type": "Sequence"}, "questions": {"feature": {"dtype": "string", "id": null, "_type": "Value"}, "length": -1, "id": null, "_type": "Sequence"}, "caption_choices": {"dtype": "string", "id": null, "_type": "Value"}, "from_description": {"dtype": "string", "id": null, "_type": "Value"}, "label": {"dtype": "string", "id": null, "_type": "Value"}, "n_tokens_label": {"dtype": "int32", "id": null, "_type": "Value"}, "instance_id": {"dtype": "string", "id": null, "_type": "Value"}}, "post_processed": null, "supervised_keys": null, "task_templates": null, "builder_name": "newyorker_caption_contest", "config_name": "explanation", "version": {"version_str": "1.0.0", "description": null, "major": 1, "minor": 0, "patch": 0}, "splits": {"train": {"name": "train", "num_bytes": 3074876, "num_examples": 2340, "dataset_name": "newyorker_caption_contest"}, "validation": {"name": "validation", "num_bytes": 160986, "num_examples": 130, "dataset_name": "newyorker_caption_contest"}, "test": {"name": "test", "num_bytes": 162089, "num_examples": 131, "dataset_name": "newyorker_caption_contest"}}, "download_checksums": {"https://storage.googleapis.com/ai2-jack-public/caption_contest_data_public/huggingface_hub/v1.0/explanation.zip": {"num_bytes": 856934, "checksum": "7b4b8428887febaaa320c1e01a5271709c7db7a65aeb3c262d6a68b7d9f5f11f"}, "https://storage.googleapis.com/ai2-jack-public/caption_contest_data_public/all_contest_images.zip": {"num_bytes": 39523209, "checksum": "741527b4ef7198d16cee42ae74eacbe239bcc7377f8b86811c27d627fdc77748"}}, "download_size": 40380143, "post_processing_size": null, "dataset_size": 3397951, "size_in_bytes": 43778094}, "explanation_from_pixels": {"description": "There are 3 caption contest tasks, described in the paper. In the Matching multiple choice task, models must recognize a caption written about a cartoon (vs. options that were not). In the Quality Ranking task, models must evaluate the quality\nof that caption by scoring it more highly than a lower quality option from the same contest. In the Explanation Generation task, models must explain why the joke is funny.\nYou are given a cartoon and a caption that was written about it. You must autoregressively generate a joke explanation.\n", "citation": "@article{hessel2022androids,\n  title={Do Androids Laugh at Electric Sheep? Humor\" Understanding\" Benchmarks from The New Yorker Caption Contest},\n  author={Hessel, Jack and Marasovi{'c}, Ana and Hwang, Jena D and Lee, Lillian and Da, Jeff and Zellers, Rowan and Mankoff, Robert and Choi, Yejin},\n  journal={arXiv preprint arXiv:2209.06293},\n  year={2022}\n}\n\nwww.capcon.dev\n\nOur data contributions are:\n\n- The cartoon-level annotations;\n- The joke explanations;\n- and the framing of the tasks\nWe release these data we contribute under CC-BY (see DATASET_LICENSE).\n\nIf you find this data useful in your work, in addition to citing our contributions, please also cite the following, from which the cartoons/captions in our corpus are derived:\n\n@misc{newyorkernextmldataset,\n  author={Jain, Lalit  and Jamieson, Kevin and Mankoff, Robert and Nowak, Robert and Sievert, Scott},\n  title={The {N}ew {Y}orker Cartoon Caption Contest Dataset},\n  year={2020},\n  url={https://nextml.github.io/caption-contest-data/}\n}\n\n@inproceedings{radev-etal-2016-humor,\n  title = \"Humor in Collective Discourse: Unsupervised Funniness Detection in The {New Yorker} Cartoon Caption Contest\",\n  author = \"Radev, Dragomir  and\n      Stent, Amanda  and\n      Tetreault, Joel  and\n      Pappu, Aasish  and\n      Iliakopoulou, Aikaterini  and\n      Chanfreau, Agustin  and\n      de Juan, Paloma  and\n      Vallmitjana, Jordi  and\n      Jaimes, Alejandro  and\n      Jha, Rahul  and\n      Mankoff, Robert\",\n  booktitle = \"LREC\",\n  year = \"2016\",\n}\n\n@inproceedings{shahaf2015inside,\n  title={Inside jokes: Identifying humorous cartoon captions},\n  author={Shahaf, Dafna and Horvitz, Eric and Mankoff, Robert},\n  booktitle={KDD},\n  year={2015},\n}\n", "homepage": "www.capcon.dev", "license": "", "features": {"image": {"decode": true, "id": null, "_type": "Image"}, "contest_number": {"dtype": "int32", "id": null, "_type": "Value"}, "caption_choices": {"dtype": "string", "id": null, "_type": "Value"}, "label": {"dtype": "string", "id": null, "_type": "Value"}, "n_tokens_label": {"dtype": "int32", "id": null, "_type": "Value"}, "instance_id": {"dtype": "string", "id": null, "_type": "Value"}}, "post_processed": null, "supervised_keys": null, "task_templates": null, "builder_name": "newyorker_caption_contest", "config_name": "explanation_from_pixels", "version": {"version_str": "1.0.0", "description": null, "major": 1, "minor": 0, "patch": 0}, "splits": {"train": {"name": "train", "num_bytes": 235831, "num_examples": 390, "dataset_name": "newyorker_caption_contest"}, "validation": {"name": "validation", "num_bytes": 77283, "num_examples": 130, "dataset_name": "newyorker_caption_contest"}, "test": {"name": "test", "num_bytes": 77448, "num_examples": 131, "dataset_name": "newyorker_caption_contest"}}, "download_checksums": {"https://storage.googleapis.com/ai2-jack-public/caption_contest_data_public/huggingface_hub/v1.0/explanation_from_pixels.zip": {"num_bytes": 122918, "checksum": "1c9c3a65bd255c7bccfbf394b266c781bb3762b4a318c5cff8f3da0bfeea75a7"}, "https://storage.googleapis.com/ai2-jack-public/caption_contest_data_public/all_contest_images.zip": {"num_bytes": 39523209, "checksum": "741527b4ef7198d16cee42ae74eacbe239bcc7377f8b86811c27d627fdc77748"}}, "download_size": 39646127, "post_processing_size": null, "dataset_size": 390562, "size_in_bytes": 40036689}, "matching_1": {"description": "There are 3 caption contest tasks, described in the paper. In the Matching multiple choice task, models must recognize a caption written about a cartoon (vs. options that were not). In the Quality Ranking task, models must evaluate the quality\nof that caption by scoring it more highly than a lower quality option from the same contest. In the Explanation Generation task, models must explain why the joke is funny.\nYou are given a cartoon and 5 captions. Only one of the captions was truly written about the cartoon. You must select it.\n", "citation": "@article{hessel2022androids,\n  title={Do Androids Laugh at Electric Sheep? Humor\" Understanding\" Benchmarks from The New Yorker Caption Contest},\n  author={Hessel, Jack and Marasovi{'c}, Ana and Hwang, Jena D and Lee, Lillian and Da, Jeff and Zellers, Rowan and Mankoff, Robert and Choi, Yejin},\n  journal={arXiv preprint arXiv:2209.06293},\n  year={2022}\n}\n\nwww.capcon.dev\n\nOur data contributions are:\n\n- The cartoon-level annotations;\n- The joke explanations;\n- and the framing of the tasks\nWe release these data we contribute under CC-BY (see DATASET_LICENSE).\n\nIf you find this data useful in your work, in addition to citing our contributions, please also cite the following, from which the cartoons/captions in our corpus are derived:\n\n@misc{newyorkernextmldataset,\n  author={Jain, Lalit  and Jamieson, Kevin and Mankoff, Robert and Nowak, Robert and Sievert, Scott},\n  title={The {N}ew {Y}orker Cartoon Caption Contest Dataset},\n  year={2020},\n  url={https://nextml.github.io/caption-contest-data/}\n}\n\n@inproceedings{radev-etal-2016-humor,\n  title = \"Humor in Collective Discourse: Unsupervised Funniness Detection in The {New Yorker} Cartoon Caption Contest\",\n  author = \"Radev, Dragomir  and\n      Stent, Amanda  and\n      Tetreault, Joel  and\n      Pappu, Aasish  and\n      Iliakopoulou, Aikaterini  and\n      Chanfreau, Agustin  and\n      de Juan, Paloma  and\n      Vallmitjana, Jordi  and\n      Jaimes, Alejandro  and\n      Jha, Rahul  and\n      Mankoff, Robert\",\n  booktitle = \"LREC\",\n  year = \"2016\",\n}\n\n@inproceedings{shahaf2015inside,\n  title={Inside jokes: Identifying humorous cartoon captions},\n  author={Shahaf, Dafna and Horvitz, Eric and Mankoff, Robert},\n  booktitle={KDD},\n  year={2015},\n}\n", "homepage": "www.capcon.dev", "license": "", "features": {"image": {"decode": true, "id": null, "_type": "Image"}, "contest_number": {"dtype": "int32", "id": null, "_type": "Value"}, "image_location": {"dtype": "string", "id": null, "_type": "Value"}, "image_description": {"dtype": "string", "id": null, "_type": "Value"}, "image_uncanny_description": {"dtype": "string", "id": null, "_type": "Value"}, "entities": {"feature": {"dtype": "string", "id": null, "_type": "Value"}, "length": -1, "id": null, "_type": "Sequence"}, "questions": {"feature": {"dtype": "string", "id": null, "_type": "Value"}, "length": -1, "id": null, "_type": "Sequence"}, "caption_choices": {"feature": {"dtype": "string", "id": null, "_type": "Value"}, "length": -1, "id": null, "_type": "Sequence"}, "from_description": {"dtype": "string", "id": null, "_type": "Value"}, "label": {"dtype": "string", "id": null, "_type": "Value"}, "n_tokens_label": {"dtype": "int32", "id": null, "_type": "Value"}, "instance_id": {"dtype": "string", "id": null, "_type": "Value"}}, "post_processed": null, "supervised_keys": null, "task_templates": null, "builder_name": "newyorker_caption_contest", "config_name": "matching_1", "version": {"version_str": "1.0.0", "description": null, "major": 1, "minor": 0, "patch": 0}, "splits": {"train": {"name": "train", "num_bytes": 13371152, "num_examples": 9684, "dataset_name": "newyorker_caption_contest"}, "validation": {"name": "validation", "num_bytes": 708793, "num_examples": 546, "dataset_name": "newyorker_caption_contest"}, "test": {"name": "test", "num_bytes": 687342, "num_examples": 531, "dataset_name": "newyorker_caption_contest"}}, "download_checksums": {"https://storage.googleapis.com/ai2-jack-public/caption_contest_data_public/huggingface_hub/v1.0/matching_1.zip": {"num_bytes": 3338401, "checksum": "9c0e4d60efda7aee8d68d3d8e042c473de8ad10f41f0dcfaeda0ba3d408b1a50"}, "https://storage.googleapis.com/ai2-jack-public/caption_contest_data_public/all_contest_images.zip": {"num_bytes": 39523209, "checksum": "741527b4ef7198d16cee42ae74eacbe239bcc7377f8b86811c27d627fdc77748"}}, "download_size": 42861610, "post_processing_size": null, "dataset_size": 14767287, "size_in_bytes": 57628897}, "matching_from_pixels_1": {"description": "There are 3 caption contest tasks, described in the paper. In the Matching multiple choice task, models must recognize a caption written about a cartoon (vs. options that were not). In the Quality Ranking task, models must evaluate the quality\nof that caption by scoring it more highly than a lower quality option from the same contest. In the Explanation Generation task, models must explain why the joke is funny.\nYou are given a cartoon and 5 captions. Only one of the captions was truly written about the cartoon. You must select it.\n", "citation": "@article{hessel2022androids,\n  title={Do Androids Laugh at Electric Sheep? Humor\" Understanding\" Benchmarks from The New Yorker Caption Contest},\n  author={Hessel, Jack and Marasovi{'c}, Ana and Hwang, Jena D and Lee, Lillian and Da, Jeff and Zellers, Rowan and Mankoff, Robert and Choi, Yejin},\n  journal={arXiv preprint arXiv:2209.06293},\n  year={2022}\n}\n\nwww.capcon.dev\n\nOur data contributions are:\n\n- The cartoon-level annotations;\n- The joke explanations;\n- and the framing of the tasks\nWe release these data we contribute under CC-BY (see DATASET_LICENSE).\n\nIf you find this data useful in your work, in addition to citing our contributions, please also cite the following, from which the cartoons/captions in our corpus are derived:\n\n@misc{newyorkernextmldataset,\n  author={Jain, Lalit  and Jamieson, Kevin and Mankoff, Robert and Nowak, Robert and Sievert, Scott},\n  title={The {N}ew {Y}orker Cartoon Caption Contest Dataset},\n  year={2020},\n  url={https://nextml.github.io/caption-contest-data/}\n}\n\n@inproceedings{radev-etal-2016-humor,\n  title = \"Humor in Collective Discourse: Unsupervised Funniness Detection in The {New Yorker} Cartoon Caption Contest\",\n  author = \"Radev, Dragomir  and\n      Stent, Amanda  and\n      Tetreault, Joel  and\n      Pappu, Aasish  and\n      Iliakopoulou, Aikaterini  and\n      Chanfreau, Agustin  and\n      de Juan, Paloma  and\n      Vallmitjana, Jordi  and\n      Jaimes, Alejandro  and\n      Jha, Rahul  and\n      Mankoff, Robert\",\n  booktitle = \"LREC\",\n  year = \"2016\",\n}\n\n@inproceedings{shahaf2015inside,\n  title={Inside jokes: Identifying humorous cartoon captions},\n  author={Shahaf, Dafna and Horvitz, Eric and Mankoff, Robert},\n  booktitle={KDD},\n  year={2015},\n}\n", "homepage": "www.capcon.dev", "license": "", "features": {"image": {"decode": true, "id": null, "_type": "Image"}, "contest_number": {"dtype": "int32", "id": null, "_type": "Value"}, "caption_choices": {"feature": {"dtype": "string", "id": null, "_type": "Value"}, "length": -1, "id": null, "_type": "Sequence"}, "label": {"dtype": "string", "id": null, "_type": "Value"}, "n_tokens_label": {"dtype": "int32", "id": null, "_type": "Value"}, "instance_id": {"dtype": "string", "id": null, "_type": "Value"}}, "post_processed": null, "supervised_keys": null, "task_templates": null, "builder_name": "newyorker_caption_contest", "config_name": "matching_from_pixels_1", "version": {"version_str": "1.0.0", "description": null, "major": 1, "minor": 0, "patch": 0}, "splits": {"train": {"name": "train", "num_bytes": 753277, "num_examples": 1614, "dataset_name": "newyorker_caption_contest"}, "validation": {"name": "validation", "num_bytes": 252992, "num_examples": 546, "dataset_name": "newyorker_caption_contest"}, "test": {"name": "test", "num_bytes": 244136, "num_examples": 531, "dataset_name": "newyorker_caption_contest"}}, "download_checksums": {"https://storage.googleapis.com/ai2-jack-public/caption_contest_data_public/huggingface_hub/v1.0/matching_from_pixels_1.zip": {"num_bytes": 309284, "checksum": "2f475c11773b733d3c1c21a618a656fd403af0a1bff460db317fd8137ce1676d"}, "https://storage.googleapis.com/ai2-jack-public/caption_contest_data_public/all_contest_images.zip": {"num_bytes": 39523209, "checksum": "741527b4ef7198d16cee42ae74eacbe239bcc7377f8b86811c27d627fdc77748"}}, "download_size": 39832493, "post_processing_size": null, "dataset_size": 1250405, "size_in_bytes": 41082898}, "ranking_1": {"description": "There are 3 caption contest tasks, described in the paper. In the Matching multiple choice task, models must recognize a caption written about a cartoon (vs. options that were not). In the Quality Ranking task, models must evaluate the quality\nof that caption by scoring it more highly than a lower quality option from the same contest. In the Explanation Generation task, models must explain why the joke is funny.\nYou are given a cartoon and 2 captions. One of the captions was selected by crowd voting or New Yorker editors as high quality. You must select it.\n", "citation": "@article{hessel2022androids,\n  title={Do Androids Laugh at Electric Sheep? Humor\" Understanding\" Benchmarks from The New Yorker Caption Contest},\n  author={Hessel, Jack and Marasovi{'c}, Ana and Hwang, Jena D and Lee, Lillian and Da, Jeff and Zellers, Rowan and Mankoff, Robert and Choi, Yejin},\n  journal={arXiv preprint arXiv:2209.06293},\n  year={2022}\n}\n\nwww.capcon.dev\n\nOur data contributions are:\n\n- The cartoon-level annotations;\n- The joke explanations;\n- and the framing of the tasks\nWe release these data we contribute under CC-BY (see DATASET_LICENSE).\n\nIf you find this data useful in your work, in addition to citing our contributions, please also cite the following, from which the cartoons/captions in our corpus are derived:\n\n@misc{newyorkernextmldataset,\n  author={Jain, Lalit  and Jamieson, Kevin and Mankoff, Robert and Nowak, Robert and Sievert, Scott},\n  title={The {N}ew {Y}orker Cartoon Caption Contest Dataset},\n  year={2020},\n  url={https://nextml.github.io/caption-contest-data/}\n}\n\n@inproceedings{radev-etal-2016-humor,\n  title = \"Humor in Collective Discourse: Unsupervised Funniness Detection in The {New Yorker} Cartoon Caption Contest\",\n  author = \"Radev, Dragomir  and\n      Stent, Amanda  and\n      Tetreault, Joel  and\n      Pappu, Aasish  and\n      Iliakopoulou, Aikaterini  and\n      Chanfreau, Agustin  and\n      de Juan, Paloma  and\n      Vallmitjana, Jordi  and\n      Jaimes, Alejandro  and\n      Jha, Rahul  and\n      Mankoff, Robert\",\n  booktitle = \"LREC\",\n  year = \"2016\",\n}\n\n@inproceedings{shahaf2015inside,\n  title={Inside jokes: Identifying humorous cartoon captions},\n  author={Shahaf, Dafna and Horvitz, Eric and Mankoff, Robert},\n  booktitle={KDD},\n  year={2015},\n}\n", "homepage": "www.capcon.dev", "license": "", "features": {"image": {"decode": true, "id": null, "_type": "Image"}, "contest_number": {"dtype": "int32", "id": null, "_type": "Value"}, "image_location": {"dtype": "string", "id": null, "_type": "Value"}, "image_description": {"dtype": "string", "id": null, "_type": "Value"}, "image_uncanny_description": {"dtype": "string", "id": null, "_type": "Value"}, "entities": {"feature": {"dtype": "string", "id": null, "_type": "Value"}, "length": -1, "id": null, "_type": "Sequence"}, "questions": {"feature": {"dtype": "string", "id": null, "_type": "Value"}, "length": -1, "id": null, "_type": "Sequence"}, "caption_choices": {"feature": {"dtype": "string", "id": null, "_type": "Value"}, "length": -1, "id": null, "_type": "Sequence"}, "from_description": {"dtype": "string", "id": null, "_type": "Value"}, "winner_source": {"dtype": "string", "id": null, "_type": "Value"}, "label": {"dtype": "string", "id": null, "_type": "Value"}, "n_tokens_label": {"dtype": "int32", "id": null, "_type": "Value"}, "instance_id": {"dtype": "string", "id": null, "_type": "Value"}}, "post_processed": null, "supervised_keys": null, "task_templates": null, "builder_name": "newyorker_caption_contest", "config_name": "ranking_1", "version": {"version_str": "1.0.0", "description": null, "major": 1, "minor": 0, "patch": 0}, "splits": {"train": {"name": "train", "num_bytes": 10360371, "num_examples": 9450, "dataset_name": "newyorker_caption_contest"}, "validation": {"name": "validation", "num_bytes": 544050, "num_examples": 534, "dataset_name": "newyorker_caption_contest"}, "test": {"name": "test", "num_bytes": 516533, "num_examples": 507, "dataset_name": "newyorker_caption_contest"}}, "download_checksums": {"https://storage.googleapis.com/ai2-jack-public/caption_contest_data_public/huggingface_hub/v1.0/ranking_1.zip": {"num_bytes": 2415555, "checksum": "06858a8a18bdc6e5787ab4621f4d7b17939081cfb6240ee4dd896c678cc79ca1"}, "https://storage.googleapis.com/ai2-jack-public/caption_contest_data_public/all_contest_images.zip": {"num_bytes": 39523209, "checksum": "741527b4ef7198d16cee42ae74eacbe239bcc7377f8b86811c27d627fdc77748"}}, "download_size": 41938764, "post_processing_size": null, "dataset_size": 11420954, "size_in_bytes": 53359718}, "ranking_from_pixels_1": {"description": "There are 3 caption contest tasks, described in the paper. In the Matching multiple choice task, models must recognize a caption written about a cartoon (vs. options that were not). In the Quality Ranking task, models must evaluate the quality\nof that caption by scoring it more highly than a lower quality option from the same contest. In the Explanation Generation task, models must explain why the joke is funny.\nYou are given a cartoon and 2 captions. One of the captions was selected by crowd voting or New Yorker editors as high quality. You must select it.\n", "citation": "@article{hessel2022androids,\n  title={Do Androids Laugh at Electric Sheep? Humor\" Understanding\" Benchmarks from The New Yorker Caption Contest},\n  author={Hessel, Jack and Marasovi{'c}, Ana and Hwang, Jena D and Lee, Lillian and Da, Jeff and Zellers, Rowan and Mankoff, Robert and Choi, Yejin},\n  journal={arXiv preprint arXiv:2209.06293},\n  year={2022}\n}\n\nwww.capcon.dev\n\nOur data contributions are:\n\n- The cartoon-level annotations;\n- The joke explanations;\n- and the framing of the tasks\nWe release these data we contribute under CC-BY (see DATASET_LICENSE).\n\nIf you find this data useful in your work, in addition to citing our contributions, please also cite the following, from which the cartoons/captions in our corpus are derived:\n\n@misc{newyorkernextmldataset,\n  author={Jain, Lalit  and Jamieson, Kevin and Mankoff, Robert and Nowak, Robert and Sievert, Scott},\n  title={The {N}ew {Y}orker Cartoon Caption Contest Dataset},\n  year={2020},\n  url={https://nextml.github.io/caption-contest-data/}\n}\n\n@inproceedings{radev-etal-2016-humor,\n  title = \"Humor in Collective Discourse: Unsupervised Funniness Detection in The {New Yorker} Cartoon Caption Contest\",\n  author = \"Radev, Dragomir  and\n      Stent, Amanda  and\n      Tetreault, Joel  and\n      Pappu, Aasish  and\n      Iliakopoulou, Aikaterini  and\n      Chanfreau, Agustin  and\n      de Juan, Paloma  and\n      Vallmitjana, Jordi  and\n      Jaimes, Alejandro  and\n      Jha, Rahul  and\n      Mankoff, Robert\",\n  booktitle = \"LREC\",\n  year = \"2016\",\n}\n\n@inproceedings{shahaf2015inside,\n  title={Inside jokes: Identifying humorous cartoon captions},\n  author={Shahaf, Dafna and Horvitz, Eric and Mankoff, Robert},\n  booktitle={KDD},\n  year={2015},\n}\n", "homepage": "www.capcon.dev", "license": "", "features": {"image": {"decode": true, "id": null, "_type": "Image"}, "contest_number": {"dtype": "int32", "id": null, "_type": "Value"}, "caption_choices": {"feature": {"dtype": "string", "id": null, "_type": "Value"}, "length": -1, "id": null, "_type": "Sequence"}, "winner_source": {"dtype": "string", "id": null, "_type": "Value"}, "label": {"dtype": "string", "id": null, "_type": "Value"}, "n_tokens_label": {"dtype": "int32", "id": null, "_type": "Value"}, "instance_id": {"dtype": "string", "id": null, "_type": "Value"}}, "post_processed": null, "supervised_keys": null, "task_templates": null, "builder_name": "newyorker_caption_contest", "config_name": "ranking_from_pixels_1", "version": {"version_str": "1.0.0", "description": null, "major": 1, "minor": 0, "patch": 0}, "splits": {"train": {"name": "train", "num_bytes": 524392, "num_examples": 1575, "dataset_name": "newyorker_caption_contest"}, "validation": {"name": "validation", "num_bytes": 176960, "num_examples": 534, "dataset_name": "newyorker_caption_contest"}, "test": {"name": "test", "num_bytes": 167378, "num_examples": 506, "dataset_name": "newyorker_caption_contest"}}, "download_checksums": {"https://storage.googleapis.com/ai2-jack-public/caption_contest_data_public/huggingface_hub/v1.0/ranking_from_pixels_1.zip": {"num_bytes": 203613, "checksum": "8401739c8485d893bb05246424b3c0fc6b539c6e311a92a47a7ec0fb9528a6af"}, "https://storage.googleapis.com/ai2-jack-public/caption_contest_data_public/all_contest_images.zip": {"num_bytes": 39523209, "checksum": "741527b4ef7198d16cee42ae74eacbe239bcc7377f8b86811c27d627fdc77748"}}, "download_size": 39726822, "post_processing_size": null, "dataset_size": 868730, "size_in_bytes": 40595552}, "explanation_1": {"description": "There are 3 caption contest tasks, described in the paper. In the Matching multiple choice task, models must recognize a caption written about a cartoon (vs. options that were not). In the Quality Ranking task, models must evaluate the quality\nof that caption by scoring it more highly than a lower quality option from the same contest. In the Explanation Generation task, models must explain why the joke is funny.\nYou are given a cartoon and a caption that was written about it. You must autoregressively generate a joke explanation.\n", "citation": "@article{hessel2022androids,\n  title={Do Androids Laugh at Electric Sheep? Humor\" Understanding\" Benchmarks from The New Yorker Caption Contest},\n  author={Hessel, Jack and Marasovi{'c}, Ana and Hwang, Jena D and Lee, Lillian and Da, Jeff and Zellers, Rowan and Mankoff, Robert and Choi, Yejin},\n  journal={arXiv preprint arXiv:2209.06293},\n  year={2022}\n}\n\nwww.capcon.dev\n\nOur data contributions are:\n\n- The cartoon-level annotations;\n- The joke explanations;\n- and the framing of the tasks\nWe release these data we contribute under CC-BY (see DATASET_LICENSE).\n\nIf you find this data useful in your work, in addition to citing our contributions, please also cite the following, from which the cartoons/captions in our corpus are derived:\n\n@misc{newyorkernextmldataset,\n  author={Jain, Lalit  and Jamieson, Kevin and Mankoff, Robert and Nowak, Robert and Sievert, Scott},\n  title={The {N}ew {Y}orker Cartoon Caption Contest Dataset},\n  year={2020},\n  url={https://nextml.github.io/caption-contest-data/}\n}\n\n@inproceedings{radev-etal-2016-humor,\n  title = \"Humor in Collective Discourse: Unsupervised Funniness Detection in The {New Yorker} Cartoon Caption Contest\",\n  author = \"Radev, Dragomir  and\n      Stent, Amanda  and\n      Tetreault, Joel  and\n      Pappu, Aasish  and\n      Iliakopoulou, Aikaterini  and\n      Chanfreau, Agustin  and\n      de Juan, Paloma  and\n      Vallmitjana, Jordi  and\n      Jaimes, Alejandro  and\n      Jha, Rahul  and\n      Mankoff, Robert\",\n  booktitle = \"LREC\",\n  year = \"2016\",\n}\n\n@inproceedings{shahaf2015inside,\n  title={Inside jokes: Identifying humorous cartoon captions},\n  author={Shahaf, Dafna and Horvitz, Eric and Mankoff, Robert},\n  booktitle={KDD},\n  year={2015},\n}\n", "homepage": "www.capcon.dev", "license": "", "features": {"image": {"decode": true, "id": null, "_type": "Image"}, "contest_number": {"dtype": "int32", "id": null, "_type": "Value"}, "image_location": {"dtype": "string", "id": null, "_type": "Value"}, "image_description": {"dtype": "string", "id": null, "_type": "Value"}, "image_uncanny_description": {"dtype": "string", "id": null, "_type": "Value"}, "entities": {"feature": {"dtype": "string", "id": null, "_type": "Value"}, "length": -1, "id": null, "_type": "Sequence"}, "questions": {"feature": {"dtype": "string", "id": null, "_type": "Value"}, "length": -1, "id": null, "_type": "Sequence"}, "caption_choices": {"dtype": "string", "id": null, "_type": "Value"}, "from_description": {"dtype": "string", "id": null, "_type": "Value"}, "label": {"dtype": "string", "id": null, "_type": "Value"}, "n_tokens_label": {"dtype": "int32", "id": null, "_type": "Value"}, "instance_id": {"dtype": "string", "id": null, "_type": "Value"}}, "post_processed": null, "supervised_keys": null, "task_templates": null, "builder_name": "newyorker_caption_contest", "config_name": "explanation_1", "version": {"version_str": "1.0.0", "description": null, "major": 1, "minor": 0, "patch": 0}, "splits": {"train": {"name": "train", "num_bytes": 3086994, "num_examples": 2358, "dataset_name": "newyorker_caption_contest"}, "validation": {"name": "validation", "num_bytes": 158658, "num_examples": 128, "dataset_name": "newyorker_caption_contest"}, "test": {"name": "test", "num_bytes": 160986, "num_examples": 130, "dataset_name": "newyorker_caption_contest"}}, "download_checksums": {"https://storage.googleapis.com/ai2-jack-public/caption_contest_data_public/huggingface_hub/v1.0/explanation_1.zip": {"num_bytes": 861520, "checksum": "4722a0f09564f774a69199c2753d6696189e297bd8c75244e86c15432087e01c"}, "https://storage.googleapis.com/ai2-jack-public/caption_contest_data_public/all_contest_images.zip": {"num_bytes": 39523209, "checksum": "741527b4ef7198d16cee42ae74eacbe239bcc7377f8b86811c27d627fdc77748"}}, "download_size": 40384729, "post_processing_size": null, "dataset_size": 3406638, "size_in_bytes": 43791367}, "explanation_from_pixels_1": {"description": "There are 3 caption contest tasks, described in the paper. In the Matching multiple choice task, models must recognize a caption written about a cartoon (vs. options that were not). In the Quality Ranking task, models must evaluate the quality\nof that caption by scoring it more highly than a lower quality option from the same contest. In the Explanation Generation task, models must explain why the joke is funny.\nYou are given a cartoon and a caption that was written about it. You must autoregressively generate a joke explanation.\n", "citation": "@article{hessel2022androids,\n  title={Do Androids Laugh at Electric Sheep? Humor\" Understanding\" Benchmarks from The New Yorker Caption Contest},\n  author={Hessel, Jack and Marasovi{'c}, Ana and Hwang, Jena D and Lee, Lillian and Da, Jeff and Zellers, Rowan and Mankoff, Robert and Choi, Yejin},\n  journal={arXiv preprint arXiv:2209.06293},\n  year={2022}\n}\n\nwww.capcon.dev\n\nOur data contributions are:\n\n- The cartoon-level annotations;\n- The joke explanations;\n- and the framing of the tasks\nWe release these data we contribute under CC-BY (see DATASET_LICENSE).\n\nIf you find this data useful in your work, in addition to citing our contributions, please also cite the following, from which the cartoons/captions in our corpus are derived:\n\n@misc{newyorkernextmldataset,\n  author={Jain, Lalit  and Jamieson, Kevin and Mankoff, Robert and Nowak, Robert and Sievert, Scott},\n  title={The {N}ew {Y}orker Cartoon Caption Contest Dataset},\n  year={2020},\n  url={https://nextml.github.io/caption-contest-data/}\n}\n\n@inproceedings{radev-etal-2016-humor,\n  title = \"Humor in Collective Discourse: Unsupervised Funniness Detection in The {New Yorker} Cartoon Caption Contest\",\n  author = \"Radev, Dragomir  and\n      Stent, Amanda  and\n      Tetreault, Joel  and\n      Pappu, Aasish  and\n      Iliakopoulou, Aikaterini  and\n      Chanfreau, Agustin  and\n      de Juan, Paloma  and\n      Vallmitjana, Jordi  and\n      Jaimes, Alejandro  and\n      Jha, Rahul  and\n      Mankoff, Robert\",\n  booktitle = \"LREC\",\n  year = \"2016\",\n}\n\n@inproceedings{shahaf2015inside,\n  title={Inside jokes: Identifying humorous cartoon captions},\n  author={Shahaf, Dafna and Horvitz, Eric and Mankoff, Robert},\n  booktitle={KDD},\n  year={2015},\n}\n", "homepage": "www.capcon.dev", "license": "", "features": {"image": {"decode": true, "id": null, "_type": "Image"}, "contest_number": {"dtype": "int32", "id": null, "_type": "Value"}, "caption_choices": {"dtype": "string", "id": null, "_type": "Value"}, "label": {"dtype": "string", "id": null, "_type": "Value"}, "n_tokens_label": {"dtype": "int32", "id": null, "_type": "Value"}, "instance_id": {"dtype": "string", "id": null, "_type": "Value"}}, "post_processed": null, "supervised_keys": null, "task_templates": null, "builder_name": "newyorker_caption_contest", "config_name": "explanation_from_pixels_1", "version": {"version_str": "1.0.0", "description": null, "major": 1, "minor": 0, "patch": 0}, "splits": {"train": {"name": "train", "num_bytes": 235060, "num_examples": 393, "dataset_name": "newyorker_caption_contest"}, "validation": {"name": "validation", "num_bytes": 78219, "num_examples": 128, "dataset_name": "newyorker_caption_contest"}, "test": {"name": "test", "num_bytes": 77283, "num_examples": 130, "dataset_name": "newyorker_caption_contest"}}, "download_checksums": {"https://storage.googleapis.com/ai2-jack-public/caption_contest_data_public/huggingface_hub/v1.0/explanation_from_pixels_1.zip": {"num_bytes": 122627, "checksum": "0ef48fc4c94c6bbceecc87cd22848936d49ca7ac6c85ed04d141aeff4c5dd87c"}, "https://storage.googleapis.com/ai2-jack-public/caption_contest_data_public/all_contest_images.zip": {"num_bytes": 39523209, "checksum": "741527b4ef7198d16cee42ae74eacbe239bcc7377f8b86811c27d627fdc77748"}}, "download_size": 39645836, "post_processing_size": null, "dataset_size": 390562, "size_in_bytes": 40036398}, "matching_2": {"description": "There are 3 caption contest tasks, described in the paper. In the Matching multiple choice task, models must recognize a caption written about a cartoon (vs. options that were not). In the Quality Ranking task, models must evaluate the quality\nof that caption by scoring it more highly than a lower quality option from the same contest. In the Explanation Generation task, models must explain why the joke is funny.\nYou are given a cartoon and 5 captions. Only one of the captions was truly written about the cartoon. You must select it.\n", "citation": "@article{hessel2022androids,\n  title={Do Androids Laugh at Electric Sheep? Humor\" Understanding\" Benchmarks from The New Yorker Caption Contest},\n  author={Hessel, Jack and Marasovi{'c}, Ana and Hwang, Jena D and Lee, Lillian and Da, Jeff and Zellers, Rowan and Mankoff, Robert and Choi, Yejin},\n  journal={arXiv preprint arXiv:2209.06293},\n  year={2022}\n}\n\nwww.capcon.dev\n\nOur data contributions are:\n\n- The cartoon-level annotations;\n- The joke explanations;\n- and the framing of the tasks\nWe release these data we contribute under CC-BY (see DATASET_LICENSE).\n\nIf you find this data useful in your work, in addition to citing our contributions, please also cite the following, from which the cartoons/captions in our corpus are derived:\n\n@misc{newyorkernextmldataset,\n  author={Jain, Lalit  and Jamieson, Kevin and Mankoff, Robert and Nowak, Robert and Sievert, Scott},\n  title={The {N}ew {Y}orker Cartoon Caption Contest Dataset},\n  year={2020},\n  url={https://nextml.github.io/caption-contest-data/}\n}\n\n@inproceedings{radev-etal-2016-humor,\n  title = \"Humor in Collective Discourse: Unsupervised Funniness Detection in The {New Yorker} Cartoon Caption Contest\",\n  author = \"Radev, Dragomir  and\n      Stent, Amanda  and\n      Tetreault, Joel  and\n      Pappu, Aasish  and\n      Iliakopoulou, Aikaterini  and\n      Chanfreau, Agustin  and\n      de Juan, Paloma  and\n      Vallmitjana, Jordi  and\n      Jaimes, Alejandro  and\n      Jha, Rahul  and\n      Mankoff, Robert\",\n  booktitle = \"LREC\",\n  year = \"2016\",\n}\n\n@inproceedings{shahaf2015inside,\n  title={Inside jokes: Identifying humorous cartoon captions},\n  author={Shahaf, Dafna and Horvitz, Eric and Mankoff, Robert},\n  booktitle={KDD},\n  year={2015},\n}\n", "homepage": "www.capcon.dev", "license": "", "features": {"image": {"decode": true, "id": null, "_type": "Image"}, "contest_number": {"dtype": "int32", "id": null, "_type": "Value"}, "image_location": {"dtype": "string", "id": null, "_type": "Value"}, "image_description": {"dtype": "string", "id": null, "_type": "Value"}, "image_uncanny_description": {"dtype": "string", "id": null, "_type": "Value"}, "entities": {"feature": {"dtype": "string", "id": null, "_type": "Value"}, "length": -1, "id": null, "_type": "Sequence"}, "questions": {"feature": {"dtype": "string", "id": null, "_type": "Value"}, "length": -1, "id": null, "_type": "Sequence"}, "caption_choices": {"feature": {"dtype": "string", "id": null, "_type": "Value"}, "length": -1, "id": null, "_type": "Sequence"}, "from_description": {"dtype": "string", "id": null, "_type": "Value"}, "label": {"dtype": "string", "id": null, "_type": "Value"}, "n_tokens_label": {"dtype": "int32", "id": null, "_type": "Value"}, "instance_id": {"dtype": "string", "id": null, "_type": "Value"}}, "post_processed": null, "supervised_keys": null, "task_templates": null, "builder_name": "newyorker_caption_contest", "config_name": "matching_2", "version": {"version_str": "1.0.0", "description": null, "major": 1, "minor": 0, "patch": 0}, "splits": {"train": {"name": "train", "num_bytes": 13248994, "num_examples": 9630, "dataset_name": "newyorker_caption_contest"}, "validation": {"name": "validation", "num_bytes": 714032, "num_examples": 540, "dataset_name": "newyorker_caption_contest"}, "test": {"name": "test", "num_bytes": 708793, "num_examples": 546, "dataset_name": "newyorker_caption_contest"}}, "download_checksums": {"https://storage.googleapis.com/ai2-jack-public/caption_contest_data_public/huggingface_hub/v1.0/matching_2.zip": {"num_bytes": 3311397, "checksum": "85d489d20c91e6db9ee2c9f9fa5ae44802d49a740889c49dc61191ceced2635e"}, "https://storage.googleapis.com/ai2-jack-public/caption_contest_data_public/all_contest_images.zip": {"num_bytes": 39523209, "checksum": "741527b4ef7198d16cee42ae74eacbe239bcc7377f8b86811c27d627fdc77748"}}, "download_size": 42834606, "post_processing_size": null, "dataset_size": 14671819, "size_in_bytes": 57506425}, "matching_from_pixels_2": {"description": "There are 3 caption contest tasks, described in the paper. In the Matching multiple choice task, models must recognize a caption written about a cartoon (vs. options that were not). In the Quality Ranking task, models must evaluate the quality\nof that caption by scoring it more highly than a lower quality option from the same contest. In the Explanation Generation task, models must explain why the joke is funny.\nYou are given a cartoon and 5 captions. Only one of the captions was truly written about the cartoon. You must select it.\n", "citation": "@article{hessel2022androids,\n  title={Do Androids Laugh at Electric Sheep? Humor\" Understanding\" Benchmarks from The New Yorker Caption Contest},\n  author={Hessel, Jack and Marasovi{'c}, Ana and Hwang, Jena D and Lee, Lillian and Da, Jeff and Zellers, Rowan and Mankoff, Robert and Choi, Yejin},\n  journal={arXiv preprint arXiv:2209.06293},\n  year={2022}\n}\n\nwww.capcon.dev\n\nOur data contributions are:\n\n- The cartoon-level annotations;\n- The joke explanations;\n- and the framing of the tasks\nWe release these data we contribute under CC-BY (see DATASET_LICENSE).\n\nIf you find this data useful in your work, in addition to citing our contributions, please also cite the following, from which the cartoons/captions in our corpus are derived:\n\n@misc{newyorkernextmldataset,\n  author={Jain, Lalit  and Jamieson, Kevin and Mankoff, Robert and Nowak, Robert and Sievert, Scott},\n  title={The {N}ew {Y}orker Cartoon Caption Contest Dataset},\n  year={2020},\n  url={https://nextml.github.io/caption-contest-data/}\n}\n\n@inproceedings{radev-etal-2016-humor,\n  title = \"Humor in Collective Discourse: Unsupervised Funniness Detection in The {New Yorker} Cartoon Caption Contest\",\n  author = \"Radev, Dragomir  and\n      Stent, Amanda  and\n      Tetreault, Joel  and\n      Pappu, Aasish  and\n      Iliakopoulou, Aikaterini  and\n      Chanfreau, Agustin  and\n      de Juan, Paloma  and\n      Vallmitjana, Jordi  and\n      Jaimes, Alejandro  and\n      Jha, Rahul  and\n      Mankoff, Robert\",\n  booktitle = \"LREC\",\n  year = \"2016\",\n}\n\n@inproceedings{shahaf2015inside,\n  title={Inside jokes: Identifying humorous cartoon captions},\n  author={Shahaf, Dafna and Horvitz, Eric and Mankoff, Robert},\n  booktitle={KDD},\n  year={2015},\n}\n", "homepage": "www.capcon.dev", "license": "", "features": {"image": {"decode": true, "id": null, "_type": "Image"}, "contest_number": {"dtype": "int32", "id": null, "_type": "Value"}, "caption_choices": {"feature": {"dtype": "string", "id": null, "_type": "Value"}, "length": -1, "id": null, "_type": "Sequence"}, "label": {"dtype": "string", "id": null, "_type": "Value"}, "n_tokens_label": {"dtype": "int32", "id": null, "_type": "Value"}, "instance_id": {"dtype": "string", "id": null, "_type": "Value"}}, "post_processed": null, "supervised_keys": null, "task_templates": null, "builder_name": "newyorker_caption_contest", "config_name": "matching_from_pixels_2", "version": {"version_str": "1.0.0", "description": null, "major": 1, "minor": 0, "patch": 0}, "splits": {"train": {"name": "train", "num_bytes": 744559, "num_examples": 1605, "dataset_name": "newyorker_caption_contest"}, "validation": {"name": "validation", "num_bytes": 252854, "num_examples": 540, "dataset_name": "newyorker_caption_contest"}, "test": {"name": "test", "num_bytes": 252992, "num_examples": 546, "dataset_name": "newyorker_caption_contest"}}, "download_checksums": {"https://storage.googleapis.com/ai2-jack-public/caption_contest_data_public/huggingface_hub/v1.0/matching_from_pixels_2.zip": {"num_bytes": 307348, "checksum": "698de8c979f1b134647ddfac66dfecbc081e4e2f8f27fe5a4e7ec332c67e8614"}, "https://storage.googleapis.com/ai2-jack-public/caption_contest_data_public/all_contest_images.zip": {"num_bytes": 39523209, "checksum": "741527b4ef7198d16cee42ae74eacbe239bcc7377f8b86811c27d627fdc77748"}}, "download_size": 39830557, "post_processing_size": null, "dataset_size": 1250405, "size_in_bytes": 41080962}, "ranking_2": {"description": "There are 3 caption contest tasks, described in the paper. In the Matching multiple choice task, models must recognize a caption written about a cartoon (vs. options that were not). In the Quality Ranking task, models must evaluate the quality\nof that caption by scoring it more highly than a lower quality option from the same contest. In the Explanation Generation task, models must explain why the joke is funny.\nYou are given a cartoon and 2 captions. One of the captions was selected by crowd voting or New Yorker editors as high quality. You must select it.\n", "citation": "@article{hessel2022androids,\n  title={Do Androids Laugh at Electric Sheep? Humor\" Understanding\" Benchmarks from The New Yorker Caption Contest},\n  author={Hessel, Jack and Marasovi{'c}, Ana and Hwang, Jena D and Lee, Lillian and Da, Jeff and Zellers, Rowan and Mankoff, Robert and Choi, Yejin},\n  journal={arXiv preprint arXiv:2209.06293},\n  year={2022}\n}\n\nwww.capcon.dev\n\nOur data contributions are:\n\n- The cartoon-level annotations;\n- The joke explanations;\n- and the framing of the tasks\nWe release these data we contribute under CC-BY (see DATASET_LICENSE).\n\nIf you find this data useful in your work, in addition to citing our contributions, please also cite the following, from which the cartoons/captions in our corpus are derived:\n\n@misc{newyorkernextmldataset,\n  author={Jain, Lalit  and Jamieson, Kevin and Mankoff, Robert and Nowak, Robert and Sievert, Scott},\n  title={The {N}ew {Y}orker Cartoon Caption Contest Dataset},\n  year={2020},\n  url={https://nextml.github.io/caption-contest-data/}\n}\n\n@inproceedings{radev-etal-2016-humor,\n  title = \"Humor in Collective Discourse: Unsupervised Funniness Detection in The {New Yorker} Cartoon Caption Contest\",\n  author = \"Radev, Dragomir  and\n      Stent, Amanda  and\n      Tetreault, Joel  and\n      Pappu, Aasish  and\n      Iliakopoulou, Aikaterini  and\n      Chanfreau, Agustin  and\n      de Juan, Paloma  and\n      Vallmitjana, Jordi  and\n      Jaimes, Alejandro  and\n      Jha, Rahul  and\n      Mankoff, Robert\",\n  booktitle = \"LREC\",\n  year = \"2016\",\n}\n\n@inproceedings{shahaf2015inside,\n  title={Inside jokes: Identifying humorous cartoon captions},\n  author={Shahaf, Dafna and Horvitz, Eric and Mankoff, Robert},\n  booktitle={KDD},\n  year={2015},\n}\n", "homepage": "www.capcon.dev", "license": "", "features": {"image": {"decode": true, "id": null, "_type": "Image"}, "contest_number": {"dtype": "int32", "id": null, "_type": "Value"}, "image_location": {"dtype": "string", "id": null, "_type": "Value"}, "image_description": {"dtype": "string", "id": null, "_type": "Value"}, "image_uncanny_description": {"dtype": "string", "id": null, "_type": "Value"}, "entities": {"feature": {"dtype": "string", "id": null, "_type": "Value"}, "length": -1, "id": null, "_type": "Sequence"}, "questions": {"feature": {"dtype": "string", "id": null, "_type": "Value"}, "length": -1, "id": null, "_type": "Sequence"}, "caption_choices": {"feature": {"dtype": "string", "id": null, "_type": "Value"}, "length": -1, "id": null, "_type": "Sequence"}, "from_description": {"dtype": "string", "id": null, "_type": "Value"}, "winner_source": {"dtype": "string", "id": null, "_type": "Value"}, "label": {"dtype": "string", "id": null, "_type": "Value"}, "n_tokens_label": {"dtype": "int32", "id": null, "_type": "Value"}, "instance_id": {"dtype": "string", "id": null, "_type": "Value"}}, "post_processed": null, "supervised_keys": null, "task_templates": null, "builder_name": "newyorker_caption_contest", "config_name": "ranking_2", "version": {"version_str": "1.0.0", "description": null, "major": 1, "minor": 0, "patch": 0}, "splits": {"train": {"name": "train", "num_bytes": 10183446, "num_examples": 9306, "dataset_name": "newyorker_caption_contest"}, "validation": {"name": "validation", "num_bytes": 551023, "num_examples": 531, "dataset_name": "newyorker_caption_contest"}, "test": {"name": "test", "num_bytes": 544050, "num_examples": 534, "dataset_name": "newyorker_caption_contest"}}, "download_checksums": {"https://storage.googleapis.com/ai2-jack-public/caption_contest_data_public/huggingface_hub/v1.0/ranking_2.zip": {"num_bytes": 2380230, "checksum": "e125304613056eeda04690bb68b50921ea9871ca299f37c95f61624fd74fdafb"}, "https://storage.googleapis.com/ai2-jack-public/caption_contest_data_public/all_contest_images.zip": {"num_bytes": 39523209, "checksum": "741527b4ef7198d16cee42ae74eacbe239bcc7377f8b86811c27d627fdc77748"}}, "download_size": 41903439, "post_processing_size": null, "dataset_size": 11278519, "size_in_bytes": 53181958}, "ranking_from_pixels_2": {"description": "There are 3 caption contest tasks, described in the paper. In the Matching multiple choice task, models must recognize a caption written about a cartoon (vs. options that were not). In the Quality Ranking task, models must evaluate the quality\nof that caption by scoring it more highly than a lower quality option from the same contest. In the Explanation Generation task, models must explain why the joke is funny.\nYou are given a cartoon and 2 captions. One of the captions was selected by crowd voting or New Yorker editors as high quality. You must select it.\n", "citation": "@article{hessel2022androids,\n  title={Do Androids Laugh at Electric Sheep? Humor\" Understanding\" Benchmarks from The New Yorker Caption Contest},\n  author={Hessel, Jack and Marasovi{'c}, Ana and Hwang, Jena D and Lee, Lillian and Da, Jeff and Zellers, Rowan and Mankoff, Robert and Choi, Yejin},\n  journal={arXiv preprint arXiv:2209.06293},\n  year={2022}\n}\n\nwww.capcon.dev\n\nOur data contributions are:\n\n- The cartoon-level annotations;\n- The joke explanations;\n- and the framing of the tasks\nWe release these data we contribute under CC-BY (see DATASET_LICENSE).\n\nIf you find this data useful in your work, in addition to citing our contributions, please also cite the following, from which the cartoons/captions in our corpus are derived:\n\n@misc{newyorkernextmldataset,\n  author={Jain, Lalit  and Jamieson, Kevin and Mankoff, Robert and Nowak, Robert and Sievert, Scott},\n  title={The {N}ew {Y}orker Cartoon Caption Contest Dataset},\n  year={2020},\n  url={https://nextml.github.io/caption-contest-data/}\n}\n\n@inproceedings{radev-etal-2016-humor,\n  title = \"Humor in Collective Discourse: Unsupervised Funniness Detection in The {New Yorker} Cartoon Caption Contest\",\n  author = \"Radev, Dragomir  and\n      Stent, Amanda  and\n      Tetreault, Joel  and\n      Pappu, Aasish  and\n      Iliakopoulou, Aikaterini  and\n      Chanfreau, Agustin  and\n      de Juan, Paloma  and\n      Vallmitjana, Jordi  and\n      Jaimes, Alejandro  and\n      Jha, Rahul  and\n      Mankoff, Robert\",\n  booktitle = \"LREC\",\n  year = \"2016\",\n}\n\n@inproceedings{shahaf2015inside,\n  title={Inside jokes: Identifying humorous cartoon captions},\n  author={Shahaf, Dafna and Horvitz, Eric and Mankoff, Robert},\n  booktitle={KDD},\n  year={2015},\n}\n", "homepage": "www.capcon.dev", "license": "", "features": {"image": {"decode": true, "id": null, "_type": "Image"}, "contest_number": {"dtype": "int32", "id": null, "_type": "Value"}, "caption_choices": {"feature": {"dtype": "string", "id": null, "_type": "Value"}, "length": -1, "id": null, "_type": "Sequence"}, "winner_source": {"dtype": "string", "id": null, "_type": "Value"}, "label": {"dtype": "string", "id": null, "_type": "Value"}, "n_tokens_label": {"dtype": "int32", "id": null, "_type": "Value"}, "instance_id": {"dtype": "string", "id": null, "_type": "Value"}}, "post_processed": null, "supervised_keys": null, "task_templates": null, "builder_name": "newyorker_caption_contest", "config_name": "ranking_from_pixels_2", "version": {"version_str": "1.0.0", "description": null, "major": 1, "minor": 0, "patch": 0}, "splits": {"train": {"name": "train", "num_bytes": 514484, "num_examples": 1550, "dataset_name": "newyorker_caption_contest"}, "validation": {"name": "validation", "num_bytes": 177286, "num_examples": 531, "dataset_name": "newyorker_caption_contest"}, "test": {"name": "test", "num_bytes": 176960, "num_examples": 534, "dataset_name": "newyorker_caption_contest"}}, "download_checksums": {"https://storage.googleapis.com/ai2-jack-public/caption_contest_data_public/huggingface_hub/v1.0/ranking_from_pixels_2.zip": {"num_bytes": 203718, "checksum": "2949692ace6eb2162fffaff17a88898d2d608dcfdc2d04861c23ec05b87ef6c5"}, "https://storage.googleapis.com/ai2-jack-public/caption_contest_data_public/all_contest_images.zip": {"num_bytes": 39523209, "checksum": "741527b4ef7198d16cee42ae74eacbe239bcc7377f8b86811c27d627fdc77748"}}, "download_size": 39726927, "post_processing_size": null, "dataset_size": 868730, "size_in_bytes": 40595657}, "explanation_2": {"description": "There are 3 caption contest tasks, described in the paper. In the Matching multiple choice task, models must recognize a caption written about a cartoon (vs. options that were not). In the Quality Ranking task, models must evaluate the quality\nof that caption by scoring it more highly than a lower quality option from the same contest. In the Explanation Generation task, models must explain why the joke is funny.\nYou are given a cartoon and a caption that was written about it. You must autoregressively generate a joke explanation.\n", "citation": "@article{hessel2022androids,\n  title={Do Androids Laugh at Electric Sheep? Humor\" Understanding\" Benchmarks from The New Yorker Caption Contest},\n  author={Hessel, Jack and Marasovi{'c}, Ana and Hwang, Jena D and Lee, Lillian and Da, Jeff and Zellers, Rowan and Mankoff, Robert and Choi, Yejin},\n  journal={arXiv preprint arXiv:2209.06293},\n  year={2022}\n}\n\nwww.capcon.dev\n\nOur data contributions are:\n\n- The cartoon-level annotations;\n- The joke explanations;\n- and the framing of the tasks\nWe release these data we contribute under CC-BY (see DATASET_LICENSE).\n\nIf you find this data useful in your work, in addition to citing our contributions, please also cite the following, from which the cartoons/captions in our corpus are derived:\n\n@misc{newyorkernextmldataset,\n  author={Jain, Lalit  and Jamieson, Kevin and Mankoff, Robert and Nowak, Robert and Sievert, Scott},\n  title={The {N}ew {Y}orker Cartoon Caption Contest Dataset},\n  year={2020},\n  url={https://nextml.github.io/caption-contest-data/}\n}\n\n@inproceedings{radev-etal-2016-humor,\n  title = \"Humor in Collective Discourse: Unsupervised Funniness Detection in The {New Yorker} Cartoon Caption Contest\",\n  author = \"Radev, Dragomir  and\n      Stent, Amanda  and\n      Tetreault, Joel  and\n      Pappu, Aasish  and\n      Iliakopoulou, Aikaterini  and\n      Chanfreau, Agustin  and\n      de Juan, Paloma  and\n      Vallmitjana, Jordi  and\n      Jaimes, Alejandro  and\n      Jha, Rahul  and\n      Mankoff, Robert\",\n  booktitle = \"LREC\",\n  year = \"2016\",\n}\n\n@inproceedings{shahaf2015inside,\n  title={Inside jokes: Identifying humorous cartoon captions},\n  author={Shahaf, Dafna and Horvitz, Eric and Mankoff, Robert},\n  booktitle={KDD},\n  year={2015},\n}\n", "homepage": "www.capcon.dev", "license": "", "features": {"image": {"decode": true, "id": null, "_type": "Image"}, "contest_number": {"dtype": "int32", "id": null, "_type": "Value"}, "image_location": {"dtype": "string", "id": null, "_type": "Value"}, "image_description": {"dtype": "string", "id": null, "_type": "Value"}, "image_uncanny_description": {"dtype": "string", "id": null, "_type": "Value"}, "entities": {"feature": {"dtype": "string", "id": null, "_type": "Value"}, "length": -1, "id": null, "_type": "Sequence"}, "questions": {"feature": {"dtype": "string", "id": null, "_type": "Value"}, "length": -1, "id": null, "_type": "Sequence"}, "caption_choices": {"dtype": "string", "id": null, "_type": "Value"}, "from_description": {"dtype": "string", "id": null, "_type": "Value"}, "label": {"dtype": "string", "id": null, "_type": "Value"}, "n_tokens_label": {"dtype": "int32", "id": null, "_type": "Value"}, "instance_id": {"dtype": "string", "id": null, "_type": "Value"}}, "post_processed": null, "supervised_keys": null, "task_templates": null, "builder_name": "newyorker_caption_contest", "config_name": "explanation_2", "version": {"version_str": "1.0.0", "description": null, "major": 1, "minor": 0, "patch": 0}, "splits": {"train": {"name": "train", "num_bytes": 3074106, "num_examples": 2346, "dataset_name": "newyorker_caption_contest"}, "validation": {"name": "validation", "num_bytes": 163651, "num_examples": 132, "dataset_name": "newyorker_caption_contest"}, "test": {"name": "test", "num_bytes": 158658, "num_examples": 128, "dataset_name": "newyorker_caption_contest"}}, "download_checksums": {"https://storage.googleapis.com/ai2-jack-public/caption_contest_data_public/huggingface_hub/v1.0/explanation_2.zip": {"num_bytes": 861915, "checksum": "14ed5f81c51718486b10716cf9f714c756bdf0c89e50bb958c16a58b1ea09320"}, "https://storage.googleapis.com/ai2-jack-public/caption_contest_data_public/all_contest_images.zip": {"num_bytes": 39523209, "checksum": "741527b4ef7198d16cee42ae74eacbe239bcc7377f8b86811c27d627fdc77748"}}, "download_size": 40385124, "post_processing_size": null, "dataset_size": 3396415, "size_in_bytes": 43781539}, "explanation_from_pixels_2": {"description": "There are 3 caption contest tasks, described in the paper. In the Matching multiple choice task, models must recognize a caption written about a cartoon (vs. options that were not). In the Quality Ranking task, models must evaluate the quality\nof that caption by scoring it more highly than a lower quality option from the same contest. In the Explanation Generation task, models must explain why the joke is funny.\nYou are given a cartoon and a caption that was written about it. You must autoregressively generate a joke explanation.\n", "citation": "@article{hessel2022androids,\n  title={Do Androids Laugh at Electric Sheep? Humor\" Understanding\" Benchmarks from The New Yorker Caption Contest},\n  author={Hessel, Jack and Marasovi{'c}, Ana and Hwang, Jena D and Lee, Lillian and Da, Jeff and Zellers, Rowan and Mankoff, Robert and Choi, Yejin},\n  journal={arXiv preprint arXiv:2209.06293},\n  year={2022}\n}\n\nwww.capcon.dev\n\nOur data contributions are:\n\n- The cartoon-level annotations;\n- The joke explanations;\n- and the framing of the tasks\nWe release these data we contribute under CC-BY (see DATASET_LICENSE).\n\nIf you find this data useful in your work, in addition to citing our contributions, please also cite the following, from which the cartoons/captions in our corpus are derived:\n\n@misc{newyorkernextmldataset,\n  author={Jain, Lalit  and Jamieson, Kevin and Mankoff, Robert and Nowak, Robert and Sievert, Scott},\n  title={The {N}ew {Y}orker Cartoon Caption Contest Dataset},\n  year={2020},\n  url={https://nextml.github.io/caption-contest-data/}\n}\n\n@inproceedings{radev-etal-2016-humor,\n  title = \"Humor in Collective Discourse: Unsupervised Funniness Detection in The {New Yorker} Cartoon Caption Contest\",\n  author = \"Radev, Dragomir  and\n      Stent, Amanda  and\n      Tetreault, Joel  and\n      Pappu, Aasish  and\n      Iliakopoulou, Aikaterini  and\n      Chanfreau, Agustin  and\n      de Juan, Paloma  and\n      Vallmitjana, Jordi  and\n      Jaimes, Alejandro  and\n      Jha, Rahul  and\n      Mankoff, Robert\",\n  booktitle = \"LREC\",\n  year = \"2016\",\n}\n\n@inproceedings{shahaf2015inside,\n  title={Inside jokes: Identifying humorous cartoon captions},\n  author={Shahaf, Dafna and Horvitz, Eric and Mankoff, Robert},\n  booktitle={KDD},\n  year={2015},\n}\n", "homepage": "www.capcon.dev", "license": "", "features": {"image": {"decode": true, "id": null, "_type": "Image"}, "contest_number": {"dtype": "int32", "id": null, "_type": "Value"}, "caption_choices": {"dtype": "string", "id": null, "_type": "Value"}, "label": {"dtype": "string", "id": null, "_type": "Value"}, "n_tokens_label": {"dtype": "int32", "id": null, "_type": "Value"}, "instance_id": {"dtype": "string", "id": null, "_type": "Value"}}, "post_processed": null, "supervised_keys": null, "task_templates": null, "builder_name": "newyorker_caption_contest", "config_name": "explanation_from_pixels_2", "version": {"version_str": "1.0.0", "description": null, "major": 1, "minor": 0, "patch": 0}, "splits": {"train": {"name": "train", "num_bytes": 232956, "num_examples": 391, "dataset_name": "newyorker_caption_contest"}, "validation": {"name": "validation", "num_bytes": 79386, "num_examples": 132, "dataset_name": "newyorker_caption_contest"}, "test": {"name": "test", "num_bytes": 78219, "num_examples": 128, "dataset_name": "newyorker_caption_contest"}}, "download_checksums": {"https://storage.googleapis.com/ai2-jack-public/caption_contest_data_public/huggingface_hub/v1.0/explanation_from_pixels_2.zip": {"num_bytes": 122669, "checksum": "e51447c1c4a760d47c0c647fc203d96295ae06ad87166c3a6db383eaa3f7e78e"}, "https://storage.googleapis.com/ai2-jack-public/caption_contest_data_public/all_contest_images.zip": {"num_bytes": 39523209, "checksum": "741527b4ef7198d16cee42ae74eacbe239bcc7377f8b86811c27d627fdc77748"}}, "download_size": 39645878, "post_processing_size": null, "dataset_size": 390561, "size_in_bytes": 40036439}, "matching_3": {"description": "There are 3 caption contest tasks, described in the paper. In the Matching multiple choice task, models must recognize a caption written about a cartoon (vs. options that were not). In the Quality Ranking task, models must evaluate the quality\nof that caption by scoring it more highly than a lower quality option from the same contest. In the Explanation Generation task, models must explain why the joke is funny.\nYou are given a cartoon and 5 captions. Only one of the captions was truly written about the cartoon. You must select it.\n", "citation": "@article{hessel2022androids,\n  title={Do Androids Laugh at Electric Sheep? Humor\" Understanding\" Benchmarks from The New Yorker Caption Contest},\n  author={Hessel, Jack and Marasovi{'c}, Ana and Hwang, Jena D and Lee, Lillian and Da, Jeff and Zellers, Rowan and Mankoff, Robert and Choi, Yejin},\n  journal={arXiv preprint arXiv:2209.06293},\n  year={2022}\n}\n\nwww.capcon.dev\n\nOur data contributions are:\n\n- The cartoon-level annotations;\n- The joke explanations;\n- and the framing of the tasks\nWe release these data we contribute under CC-BY (see DATASET_LICENSE).\n\nIf you find this data useful in your work, in addition to citing our contributions, please also cite the following, from which the cartoons/captions in our corpus are derived:\n\n@misc{newyorkernextmldataset,\n  author={Jain, Lalit  and Jamieson, Kevin and Mankoff, Robert and Nowak, Robert and Sievert, Scott},\n  title={The {N}ew {Y}orker Cartoon Caption Contest Dataset},\n  year={2020},\n  url={https://nextml.github.io/caption-contest-data/}\n}\n\n@inproceedings{radev-etal-2016-humor,\n  title = \"Humor in Collective Discourse: Unsupervised Funniness Detection in The {New Yorker} Cartoon Caption Contest\",\n  author = \"Radev, Dragomir  and\n      Stent, Amanda  and\n      Tetreault, Joel  and\n      Pappu, Aasish  and\n      Iliakopoulou, Aikaterini  and\n      Chanfreau, Agustin  and\n      de Juan, Paloma  and\n      Vallmitjana, Jordi  and\n      Jaimes, Alejandro  and\n      Jha, Rahul  and\n      Mankoff, Robert\",\n  booktitle = \"LREC\",\n  year = \"2016\",\n}\n\n@inproceedings{shahaf2015inside,\n  title={Inside jokes: Identifying humorous cartoon captions},\n  author={Shahaf, Dafna and Horvitz, Eric and Mankoff, Robert},\n  booktitle={KDD},\n  year={2015},\n}\n", "homepage": "www.capcon.dev", "license": "", "features": {"image": {"decode": true, "id": null, "_type": "Image"}, "contest_number": {"dtype": "int32", "id": null, "_type": "Value"}, "image_location": {"dtype": "string", "id": null, "_type": "Value"}, "image_description": {"dtype": "string", "id": null, "_type": "Value"}, "image_uncanny_description": {"dtype": "string", "id": null, "_type": "Value"}, "entities": {"feature": {"dtype": "string", "id": null, "_type": "Value"}, "length": -1, "id": null, "_type": "Sequence"}, "questions": {"feature": {"dtype": "string", "id": null, "_type": "Value"}, "length": -1, "id": null, "_type": "Sequence"}, "caption_choices": {"feature": {"dtype": "string", "id": null, "_type": "Value"}, "length": -1, "id": null, "_type": "Sequence"}, "from_description": {"dtype": "string", "id": null, "_type": "Value"}, "label": {"dtype": "string", "id": null, "_type": "Value"}, "n_tokens_label": {"dtype": "int32", "id": null, "_type": "Value"}, "instance_id": {"dtype": "string", "id": null, "_type": "Value"}}, "post_processed": null, "supervised_keys": null, "task_templates": null, "builder_name": "newyorker_caption_contest", "config_name": "matching_3", "version": {"version_str": "1.0.0", "description": null, "major": 1, "minor": 0, "patch": 0}, "splits": {"train": {"name": "train", "num_bytes": 13262428, "num_examples": 9630, "dataset_name": "newyorker_caption_contest"}, "validation": {"name": "validation", "num_bytes": 706095, "num_examples": 546, "dataset_name": "newyorker_caption_contest"}, "test": {"name": "test", "num_bytes": 714032, "num_examples": 540, "dataset_name": "newyorker_caption_contest"}}, "download_checksums": {"https://storage.googleapis.com/ai2-jack-public/caption_contest_data_public/huggingface_hub/v1.0/matching_3.zip": {"num_bytes": 3307856, "checksum": "21f934f5b7db7864856878346c1a30112dbe479a594e42db2867c88e5cfe2a57"}, "https://storage.googleapis.com/ai2-jack-public/caption_contest_data_public/all_contest_images.zip": {"num_bytes": 39523209, "checksum": "741527b4ef7198d16cee42ae74eacbe239bcc7377f8b86811c27d627fdc77748"}}, "download_size": 42831065, "post_processing_size": null, "dataset_size": 14682555, "size_in_bytes": 57513620}, "matching_from_pixels_3": {"description": "There are 3 caption contest tasks, described in the paper. In the Matching multiple choice task, models must recognize a caption written about a cartoon (vs. options that were not). In the Quality Ranking task, models must evaluate the quality\nof that caption by scoring it more highly than a lower quality option from the same contest. In the Explanation Generation task, models must explain why the joke is funny.\nYou are given a cartoon and 5 captions. Only one of the captions was truly written about the cartoon. You must select it.\n", "citation": "@article{hessel2022androids,\n  title={Do Androids Laugh at Electric Sheep? Humor\" Understanding\" Benchmarks from The New Yorker Caption Contest},\n  author={Hessel, Jack and Marasovi{'c}, Ana and Hwang, Jena D and Lee, Lillian and Da, Jeff and Zellers, Rowan and Mankoff, Robert and Choi, Yejin},\n  journal={arXiv preprint arXiv:2209.06293},\n  year={2022}\n}\n\nwww.capcon.dev\n\nOur data contributions are:\n\n- The cartoon-level annotations;\n- The joke explanations;\n- and the framing of the tasks\nWe release these data we contribute under CC-BY (see DATASET_LICENSE).\n\nIf you find this data useful in your work, in addition to citing our contributions, please also cite the following, from which the cartoons/captions in our corpus are derived:\n\n@misc{newyorkernextmldataset,\n  author={Jain, Lalit  and Jamieson, Kevin and Mankoff, Robert and Nowak, Robert and Sievert, Scott},\n  title={The {N}ew {Y}orker Cartoon Caption Contest Dataset},\n  year={2020},\n  url={https://nextml.github.io/caption-contest-data/}\n}\n\n@inproceedings{radev-etal-2016-humor,\n  title = \"Humor in Collective Discourse: Unsupervised Funniness Detection in The {New Yorker} Cartoon Caption Contest\",\n  author = \"Radev, Dragomir  and\n      Stent, Amanda  and\n      Tetreault, Joel  and\n      Pappu, Aasish  and\n      Iliakopoulou, Aikaterini  and\n      Chanfreau, Agustin  and\n      de Juan, Paloma  and\n      Vallmitjana, Jordi  and\n      Jaimes, Alejandro  and\n      Jha, Rahul  and\n      Mankoff, Robert\",\n  booktitle = \"LREC\",\n  year = \"2016\",\n}\n\n@inproceedings{shahaf2015inside,\n  title={Inside jokes: Identifying humorous cartoon captions},\n  author={Shahaf, Dafna and Horvitz, Eric and Mankoff, Robert},\n  booktitle={KDD},\n  year={2015},\n}\n", "homepage": "www.capcon.dev", "license": "", "features": {"image": {"decode": true, "id": null, "_type": "Image"}, "contest_number": {"dtype": "int32", "id": null, "_type": "Value"}, "caption_choices": {"feature": {"dtype": "string", "id": null, "_type": "Value"}, "length": -1, "id": null, "_type": "Sequence"}, "label": {"dtype": "string", "id": null, "_type": "Value"}, "n_tokens_label": {"dtype": "int32", "id": null, "_type": "Value"}, "instance_id": {"dtype": "string", "id": null, "_type": "Value"}}, "post_processed": null, "supervised_keys": null, "task_templates": null, "builder_name": "newyorker_caption_contest", "config_name": "matching_from_pixels_3", "version": {"version_str": "1.0.0", "description": null, "major": 1, "minor": 0, "patch": 0}, "splits": {"train": {"name": "train", "num_bytes": 740655, "num_examples": 1605, "dataset_name": "newyorker_caption_contest"}, "validation": {"name": "validation", "num_bytes": 256896, "num_examples": 546, "dataset_name": "newyorker_caption_contest"}, "test": {"name": "test", "num_bytes": 252854, "num_examples": 540, "dataset_name": "newyorker_caption_contest"}}, "download_checksums": {"https://storage.googleapis.com/ai2-jack-public/caption_contest_data_public/huggingface_hub/v1.0/matching_from_pixels_3.zip": {"num_bytes": 308596, "checksum": "8e30f3c272550883e989fa36f0957b860b38a689dea3d6ea2fed71403feddeca"}, "https://storage.googleapis.com/ai2-jack-public/caption_contest_data_public/all_contest_images.zip": {"num_bytes": 39523209, "checksum": "741527b4ef7198d16cee42ae74eacbe239bcc7377f8b86811c27d627fdc77748"}}, "download_size": 39831805, "post_processing_size": null, "dataset_size": 1250405, "size_in_bytes": 41082210}, "ranking_3": {"description": "There are 3 caption contest tasks, described in the paper. In the Matching multiple choice task, models must recognize a caption written about a cartoon (vs. options that were not). In the Quality Ranking task, models must evaluate the quality\nof that caption by scoring it more highly than a lower quality option from the same contest. In the Explanation Generation task, models must explain why the joke is funny.\nYou are given a cartoon and 2 captions. One of the captions was selected by crowd voting or New Yorker editors as high quality. You must select it.\n", "citation": "@article{hessel2022androids,\n  title={Do Androids Laugh at Electric Sheep? Humor\" Understanding\" Benchmarks from The New Yorker Caption Contest},\n  author={Hessel, Jack and Marasovi{'c}, Ana and Hwang, Jena D and Lee, Lillian and Da, Jeff and Zellers, Rowan and Mankoff, Robert and Choi, Yejin},\n  journal={arXiv preprint arXiv:2209.06293},\n  year={2022}\n}\n\nwww.capcon.dev\n\nOur data contributions are:\n\n- The cartoon-level annotations;\n- The joke explanations;\n- and the framing of the tasks\nWe release these data we contribute under CC-BY (see DATASET_LICENSE).\n\nIf you find this data useful in your work, in addition to citing our contributions, please also cite the following, from which the cartoons/captions in our corpus are derived:\n\n@misc{newyorkernextmldataset,\n  author={Jain, Lalit  and Jamieson, Kevin and Mankoff, Robert and Nowak, Robert and Sievert, Scott},\n  title={The {N}ew {Y}orker Cartoon Caption Contest Dataset},\n  year={2020},\n  url={https://nextml.github.io/caption-contest-data/}\n}\n\n@inproceedings{radev-etal-2016-humor,\n  title = \"Humor in Collective Discourse: Unsupervised Funniness Detection in The {New Yorker} Cartoon Caption Contest\",\n  author = \"Radev, Dragomir  and\n      Stent, Amanda  and\n      Tetreault, Joel  and\n      Pappu, Aasish  and\n      Iliakopoulou, Aikaterini  and\n      Chanfreau, Agustin  and\n      de Juan, Paloma  and\n      Vallmitjana, Jordi  and\n      Jaimes, Alejandro  and\n      Jha, Rahul  and\n      Mankoff, Robert\",\n  booktitle = \"LREC\",\n  year = \"2016\",\n}\n\n@inproceedings{shahaf2015inside,\n  title={Inside jokes: Identifying humorous cartoon captions},\n  author={Shahaf, Dafna and Horvitz, Eric and Mankoff, Robert},\n  booktitle={KDD},\n  year={2015},\n}\n", "homepage": "www.capcon.dev", "license": "", "features": {"image": {"decode": true, "id": null, "_type": "Image"}, "contest_number": {"dtype": "int32", "id": null, "_type": "Value"}, "image_location": {"dtype": "string", "id": null, "_type": "Value"}, "image_description": {"dtype": "string", "id": null, "_type": "Value"}, "image_uncanny_description": {"dtype": "string", "id": null, "_type": "Value"}, "entities": {"feature": {"dtype": "string", "id": null, "_type": "Value"}, "length": -1, "id": null, "_type": "Sequence"}, "questions": {"feature": {"dtype": "string", "id": null, "_type": "Value"}, "length": -1, "id": null, "_type": "Sequence"}, "caption_choices": {"feature": {"dtype": "string", "id": null, "_type": "Value"}, "length": -1, "id": null, "_type": "Sequence"}, "from_description": {"dtype": "string", "id": null, "_type": "Value"}, "winner_source": {"dtype": "string", "id": null, "_type": "Value"}, "label": {"dtype": "string", "id": null, "_type": "Value"}, "n_tokens_label": {"dtype": "int32", "id": null, "_type": "Value"}, "instance_id": {"dtype": "string", "id": null, "_type": "Value"}}, "post_processed": null, "supervised_keys": null, "task_templates": null, "builder_name": "newyorker_caption_contest", "config_name": "ranking_3", "version": {"version_str": "1.0.0", "description": null, "major": 1, "minor": 0, "patch": 0}, "splits": {"train": {"name": "train", "num_bytes": 10257068, "num_examples": 9324, "dataset_name": "newyorker_caption_contest"}, "validation": {"name": "validation", "num_bytes": 531455, "num_examples": 531, "dataset_name": "newyorker_caption_contest"}, "test": {"name": "test", "num_bytes": 551023, "num_examples": 531, "dataset_name": "newyorker_caption_contest"}}, "download_checksums": {"https://storage.googleapis.com/ai2-jack-public/caption_contest_data_public/huggingface_hub/v1.0/ranking_3.zip": {"num_bytes": 2390643, "checksum": "f2f65f144fa70b0717b7c05efc7926e9fdbfb96f946f7ad2eb8ca4ff248826dc"}, "https://storage.googleapis.com/ai2-jack-public/caption_contest_data_public/all_contest_images.zip": {"num_bytes": 39523209, "checksum": "741527b4ef7198d16cee42ae74eacbe239bcc7377f8b86811c27d627fdc77748"}}, "download_size": 41913852, "post_processing_size": null, "dataset_size": 11339546, "size_in_bytes": 53253398}, "ranking_from_pixels_3": {"description": "There are 3 caption contest tasks, described in the paper. In the Matching multiple choice task, models must recognize a caption written about a cartoon (vs. options that were not). In the Quality Ranking task, models must evaluate the quality\nof that caption by scoring it more highly than a lower quality option from the same contest. In the Explanation Generation task, models must explain why the joke is funny.\nYou are given a cartoon and 2 captions. One of the captions was selected by crowd voting or New Yorker editors as high quality. You must select it.\n", "citation": "@article{hessel2022androids,\n  title={Do Androids Laugh at Electric Sheep? Humor\" Understanding\" Benchmarks from The New Yorker Caption Contest},\n  author={Hessel, Jack and Marasovi{'c}, Ana and Hwang, Jena D and Lee, Lillian and Da, Jeff and Zellers, Rowan and Mankoff, Robert and Choi, Yejin},\n  journal={arXiv preprint arXiv:2209.06293},\n  year={2022}\n}\n\nwww.capcon.dev\n\nOur data contributions are:\n\n- The cartoon-level annotations;\n- The joke explanations;\n- and the framing of the tasks\nWe release these data we contribute under CC-BY (see DATASET_LICENSE).\n\nIf you find this data useful in your work, in addition to citing our contributions, please also cite the following, from which the cartoons/captions in our corpus are derived:\n\n@misc{newyorkernextmldataset,\n  author={Jain, Lalit  and Jamieson, Kevin and Mankoff, Robert and Nowak, Robert and Sievert, Scott},\n  title={The {N}ew {Y}orker Cartoon Caption Contest Dataset},\n  year={2020},\n  url={https://nextml.github.io/caption-contest-data/}\n}\n\n@inproceedings{radev-etal-2016-humor,\n  title = \"Humor in Collective Discourse: Unsupervised Funniness Detection in The {New Yorker} Cartoon Caption Contest\",\n  author = \"Radev, Dragomir  and\n      Stent, Amanda  and\n      Tetreault, Joel  and\n      Pappu, Aasish  and\n      Iliakopoulou, Aikaterini  and\n      Chanfreau, Agustin  and\n      de Juan, Paloma  and\n      Vallmitjana, Jordi  and\n      Jaimes, Alejandro  and\n      Jha, Rahul  and\n      Mankoff, Robert\",\n  booktitle = \"LREC\",\n  year = \"2016\",\n}\n\n@inproceedings{shahaf2015inside,\n  title={Inside jokes: Identifying humorous cartoon captions},\n  author={Shahaf, Dafna and Horvitz, Eric and Mankoff, Robert},\n  booktitle={KDD},\n  year={2015},\n}\n", "homepage": "www.capcon.dev", "license": "", "features": {"image": {"decode": true, "id": null, "_type": "Image"}, "contest_number": {"dtype": "int32", "id": null, "_type": "Value"}, "caption_choices": {"feature": {"dtype": "string", "id": null, "_type": "Value"}, "length": -1, "id": null, "_type": "Sequence"}, "winner_source": {"dtype": "string", "id": null, "_type": "Value"}, "label": {"dtype": "string", "id": null, "_type": "Value"}, "n_tokens_label": {"dtype": "int32", "id": null, "_type": "Value"}, "instance_id": {"dtype": "string", "id": null, "_type": "Value"}}, "post_processed": null, "supervised_keys": null, "task_templates": null, "builder_name": "newyorker_caption_contest", "config_name": "ranking_from_pixels_3", "version": {"version_str": "1.0.0", "description": null, "major": 1, "minor": 0, "patch": 0}, "splits": {"train": {"name": "train", "num_bytes": 513986, "num_examples": 1553, "dataset_name": "newyorker_caption_contest"}, "validation": {"name": "validation", "num_bytes": 177459, "num_examples": 531, "dataset_name": "newyorker_caption_contest"}, "test": {"name": "test", "num_bytes": 177286, "num_examples": 531, "dataset_name": "newyorker_caption_contest"}}, "download_checksums": {"https://storage.googleapis.com/ai2-jack-public/caption_contest_data_public/huggingface_hub/v1.0/ranking_from_pixels_3.zip": {"num_bytes": 203557, "checksum": "80b1f658c19dd021f7f3f357cc39a643ec1683a022e2c81e7db2eef458824468"}, "https://storage.googleapis.com/ai2-jack-public/caption_contest_data_public/all_contest_images.zip": {"num_bytes": 39523209, "checksum": "741527b4ef7198d16cee42ae74eacbe239bcc7377f8b86811c27d627fdc77748"}}, "download_size": 39726766, "post_processing_size": null, "dataset_size": 868731, "size_in_bytes": 40595497}, "explanation_3": {"description": "There are 3 caption contest tasks, described in the paper. In the Matching multiple choice task, models must recognize a caption written about a cartoon (vs. options that were not). In the Quality Ranking task, models must evaluate the quality\nof that caption by scoring it more highly than a lower quality option from the same contest. In the Explanation Generation task, models must explain why the joke is funny.\nYou are given a cartoon and a caption that was written about it. You must autoregressively generate a joke explanation.\n", "citation": "@article{hessel2022androids,\n  title={Do Androids Laugh at Electric Sheep? Humor\" Understanding\" Benchmarks from The New Yorker Caption Contest},\n  author={Hessel, Jack and Marasovi{'c}, Ana and Hwang, Jena D and Lee, Lillian and Da, Jeff and Zellers, Rowan and Mankoff, Robert and Choi, Yejin},\n  journal={arXiv preprint arXiv:2209.06293},\n  year={2022}\n}\n\nwww.capcon.dev\n\nOur data contributions are:\n\n- The cartoon-level annotations;\n- The joke explanations;\n- and the framing of the tasks\nWe release these data we contribute under CC-BY (see DATASET_LICENSE).\n\nIf you find this data useful in your work, in addition to citing our contributions, please also cite the following, from which the cartoons/captions in our corpus are derived:\n\n@misc{newyorkernextmldataset,\n  author={Jain, Lalit  and Jamieson, Kevin and Mankoff, Robert and Nowak, Robert and Sievert, Scott},\n  title={The {N}ew {Y}orker Cartoon Caption Contest Dataset},\n  year={2020},\n  url={https://nextml.github.io/caption-contest-data/}\n}\n\n@inproceedings{radev-etal-2016-humor,\n  title = \"Humor in Collective Discourse: Unsupervised Funniness Detection in The {New Yorker} Cartoon Caption Contest\",\n  author = \"Radev, Dragomir  and\n      Stent, Amanda  and\n      Tetreault, Joel  and\n      Pappu, Aasish  and\n      Iliakopoulou, Aikaterini  and\n      Chanfreau, Agustin  and\n      de Juan, Paloma  and\n      Vallmitjana, Jordi  and\n      Jaimes, Alejandro  and\n      Jha, Rahul  and\n      Mankoff, Robert\",\n  booktitle = \"LREC\",\n  year = \"2016\",\n}\n\n@inproceedings{shahaf2015inside,\n  title={Inside jokes: Identifying humorous cartoon captions},\n  author={Shahaf, Dafna and Horvitz, Eric and Mankoff, Robert},\n  booktitle={KDD},\n  year={2015},\n}\n", "homepage": "www.capcon.dev", "license": "", "features": {"image": {"decode": true, "id": null, "_type": "Image"}, "contest_number": {"dtype": "int32", "id": null, "_type": "Value"}, "image_location": {"dtype": "string", "id": null, "_type": "Value"}, "image_description": {"dtype": "string", "id": null, "_type": "Value"}, "image_uncanny_description": {"dtype": "string", "id": null, "_type": "Value"}, "entities": {"feature": {"dtype": "string", "id": null, "_type": "Value"}, "length": -1, "id": null, "_type": "Sequence"}, "questions": {"feature": {"dtype": "string", "id": null, "_type": "Value"}, "length": -1, "id": null, "_type": "Sequence"}, "caption_choices": {"dtype": "string", "id": null, "_type": "Value"}, "from_description": {"dtype": "string", "id": null, "_type": "Value"}, "label": {"dtype": "string", "id": null, "_type": "Value"}, "n_tokens_label": {"dtype": "int32", "id": null, "_type": "Value"}, "instance_id": {"dtype": "string", "id": null, "_type": "Value"}}, "post_processed": null, "supervised_keys": null, "task_templates": null, "builder_name": "newyorker_caption_contest", "config_name": "explanation_3", "version": {"version_str": "1.0.0", "description": null, "major": 1, "minor": 0, "patch": 0}, "splits": {"train": {"name": "train", "num_bytes": 3072628, "num_examples": 2334, "dataset_name": "newyorker_caption_contest"}, "validation": {"name": "validation", "num_bytes": 158611, "num_examples": 130, "dataset_name": "newyorker_caption_contest"}, "test": {"name": "test", "num_bytes": 163651, "num_examples": 132, "dataset_name": "newyorker_caption_contest"}}, "download_checksums": {"https://storage.googleapis.com/ai2-jack-public/caption_contest_data_public/huggingface_hub/v1.0/explanation_3.zip": {"num_bytes": 860977, "checksum": "0d09e7c18ac10259f5fc0a7e79bdb2ead04debf8ce65d1da1b90f721cc6daaad"}, "https://storage.googleapis.com/ai2-jack-public/caption_contest_data_public/all_contest_images.zip": {"num_bytes": 39523209, "checksum": "741527b4ef7198d16cee42ae74eacbe239bcc7377f8b86811c27d627fdc77748"}}, "download_size": 40384186, "post_processing_size": null, "dataset_size": 3394890, "size_in_bytes": 43779076}, "explanation_from_pixels_3": {"description": "There are 3 caption contest tasks, described in the paper. In the Matching multiple choice task, models must recognize a caption written about a cartoon (vs. options that were not). In the Quality Ranking task, models must evaluate the quality\nof that caption by scoring it more highly than a lower quality option from the same contest. In the Explanation Generation task, models must explain why the joke is funny.\nYou are given a cartoon and a caption that was written about it. You must autoregressively generate a joke explanation.\n", "citation": "@article{hessel2022androids,\n  title={Do Androids Laugh at Electric Sheep? Humor\" Understanding\" Benchmarks from The New Yorker Caption Contest},\n  author={Hessel, Jack and Marasovi{'c}, Ana and Hwang, Jena D and Lee, Lillian and Da, Jeff and Zellers, Rowan and Mankoff, Robert and Choi, Yejin},\n  journal={arXiv preprint arXiv:2209.06293},\n  year={2022}\n}\n\nwww.capcon.dev\n\nOur data contributions are:\n\n- The cartoon-level annotations;\n- The joke explanations;\n- and the framing of the tasks\nWe release these data we contribute under CC-BY (see DATASET_LICENSE).\n\nIf you find this data useful in your work, in addition to citing our contributions, please also cite the following, from which the cartoons/captions in our corpus are derived:\n\n@misc{newyorkernextmldataset,\n  author={Jain, Lalit  and Jamieson, Kevin and Mankoff, Robert and Nowak, Robert and Sievert, Scott},\n  title={The {N}ew {Y}orker Cartoon Caption Contest Dataset},\n  year={2020},\n  url={https://nextml.github.io/caption-contest-data/}\n}\n\n@inproceedings{radev-etal-2016-humor,\n  title = \"Humor in Collective Discourse: Unsupervised Funniness Detection in The {New Yorker} Cartoon Caption Contest\",\n  author = \"Radev, Dragomir  and\n      Stent, Amanda  and\n      Tetreault, Joel  and\n      Pappu, Aasish  and\n      Iliakopoulou, Aikaterini  and\n      Chanfreau, Agustin  and\n      de Juan, Paloma  and\n      Vallmitjana, Jordi  and\n      Jaimes, Alejandro  and\n      Jha, Rahul  and\n      Mankoff, Robert\",\n  booktitle = \"LREC\",\n  year = \"2016\",\n}\n\n@inproceedings{shahaf2015inside,\n  title={Inside jokes: Identifying humorous cartoon captions},\n  author={Shahaf, Dafna and Horvitz, Eric and Mankoff, Robert},\n  booktitle={KDD},\n  year={2015},\n}\n", "homepage": "www.capcon.dev", "license": "", "features": {"image": {"decode": true, "id": null, "_type": "Image"}, "contest_number": {"dtype": "int32", "id": null, "_type": "Value"}, "caption_choices": {"dtype": "string", "id": null, "_type": "Value"}, "label": {"dtype": "string", "id": null, "_type": "Value"}, "n_tokens_label": {"dtype": "int32", "id": null, "_type": "Value"}, "instance_id": {"dtype": "string", "id": null, "_type": "Value"}}, "post_processed": null, "supervised_keys": null, "task_templates": null, "builder_name": "newyorker_caption_contest", "config_name": "explanation_from_pixels_3", "version": {"version_str": "1.0.0", "description": null, "major": 1, "minor": 0, "patch": 0}, "splits": {"train": {"name": "train", "num_bytes": 232949, "num_examples": 389, "dataset_name": "newyorker_caption_contest"}, "validation": {"name": "validation", "num_bytes": 78227, "num_examples": 130, "dataset_name": "newyorker_caption_contest"}, "test": {"name": "test", "num_bytes": 79386, "num_examples": 132, "dataset_name": "newyorker_caption_contest"}}, "download_checksums": {"https://storage.googleapis.com/ai2-jack-public/caption_contest_data_public/huggingface_hub/v1.0/explanation_from_pixels_3.zip": {"num_bytes": 123039, "checksum": "6aee346705346f7ccc46adccfa89882847744b77b882825364dca0b16a0cf94a"}, "https://storage.googleapis.com/ai2-jack-public/caption_contest_data_public/all_contest_images.zip": {"num_bytes": 39523209, "checksum": "741527b4ef7198d16cee42ae74eacbe239bcc7377f8b86811c27d627fdc77748"}}, "download_size": 39646248, "post_processing_size": null, "dataset_size": 390562, "size_in_bytes": 40036810}, "matching_4": {"description": "There are 3 caption contest tasks, described in the paper. In the Matching multiple choice task, models must recognize a caption written about a cartoon (vs. options that were not). In the Quality Ranking task, models must evaluate the quality\nof that caption by scoring it more highly than a lower quality option from the same contest. In the Explanation Generation task, models must explain why the joke is funny.\nYou are given a cartoon and 5 captions. Only one of the captions was truly written about the cartoon. You must select it.\n", "citation": "@article{hessel2022androids,\n  title={Do Androids Laugh at Electric Sheep? Humor\" Understanding\" Benchmarks from The New Yorker Caption Contest},\n  author={Hessel, Jack and Marasovi{'c}, Ana and Hwang, Jena D and Lee, Lillian and Da, Jeff and Zellers, Rowan and Mankoff, Robert and Choi, Yejin},\n  journal={arXiv preprint arXiv:2209.06293},\n  year={2022}\n}\n\nwww.capcon.dev\n\nOur data contributions are:\n\n- The cartoon-level annotations;\n- The joke explanations;\n- and the framing of the tasks\nWe release these data we contribute under CC-BY (see DATASET_LICENSE).\n\nIf you find this data useful in your work, in addition to citing our contributions, please also cite the following, from which the cartoons/captions in our corpus are derived:\n\n@misc{newyorkernextmldataset,\n  author={Jain, Lalit  and Jamieson, Kevin and Mankoff, Robert and Nowak, Robert and Sievert, Scott},\n  title={The {N}ew {Y}orker Cartoon Caption Contest Dataset},\n  year={2020},\n  url={https://nextml.github.io/caption-contest-data/}\n}\n\n@inproceedings{radev-etal-2016-humor,\n  title = \"Humor in Collective Discourse: Unsupervised Funniness Detection in The {New Yorker} Cartoon Caption Contest\",\n  author = \"Radev, Dragomir  and\n      Stent, Amanda  and\n      Tetreault, Joel  and\n      Pappu, Aasish  and\n      Iliakopoulou, Aikaterini  and\n      Chanfreau, Agustin  and\n      de Juan, Paloma  and\n      Vallmitjana, Jordi  and\n      Jaimes, Alejandro  and\n      Jha, Rahul  and\n      Mankoff, Robert\",\n  booktitle = \"LREC\",\n  year = \"2016\",\n}\n\n@inproceedings{shahaf2015inside,\n  title={Inside jokes: Identifying humorous cartoon captions},\n  author={Shahaf, Dafna and Horvitz, Eric and Mankoff, Robert},\n  booktitle={KDD},\n  year={2015},\n}\n", "homepage": "www.capcon.dev", "license": "", "features": {"image": {"decode": true, "id": null, "_type": "Image"}, "contest_number": {"dtype": "int32", "id": null, "_type": "Value"}, "image_location": {"dtype": "string", "id": null, "_type": "Value"}, "image_description": {"dtype": "string", "id": null, "_type": "Value"}, "image_uncanny_description": {"dtype": "string", "id": null, "_type": "Value"}, "entities": {"feature": {"dtype": "string", "id": null, "_type": "Value"}, "length": -1, "id": null, "_type": "Sequence"}, "questions": {"feature": {"dtype": "string", "id": null, "_type": "Value"}, "length": -1, "id": null, "_type": "Sequence"}, "caption_choices": {"feature": {"dtype": "string", "id": null, "_type": "Value"}, "length": -1, "id": null, "_type": "Sequence"}, "from_description": {"dtype": "string", "id": null, "_type": "Value"}, "label": {"dtype": "string", "id": null, "_type": "Value"}, "n_tokens_label": {"dtype": "int32", "id": null, "_type": "Value"}, "instance_id": {"dtype": "string", "id": null, "_type": "Value"}}, "post_processed": null, "supervised_keys": null, "task_templates": null, "builder_name": "newyorker_caption_contest", "config_name": "matching_4", "version": {"version_str": "1.0.0", "description": null, "major": 1, "minor": 0, "patch": 0}, "splits": {"train": {"name": "train", "num_bytes": 13402726, "num_examples": 9702, "dataset_name": "newyorker_caption_contest"}, "validation": {"name": "validation", "num_bytes": 687942, "num_examples": 528, "dataset_name": "newyorker_caption_contest"}, "test": {"name": "test", "num_bytes": 706095, "num_examples": 546, "dataset_name": "newyorker_caption_contest"}}, "download_checksums": {"https://storage.googleapis.com/ai2-jack-public/caption_contest_data_public/huggingface_hub/v1.0/matching_4.zip": {"num_bytes": 3339066, "checksum": "3f8f072087ba28a0a49c4ed068eef17dd41f8737a7f690c850c36efcb3d6441e"}, "https://storage.googleapis.com/ai2-jack-public/caption_contest_data_public/all_contest_images.zip": {"num_bytes": 39523209, "checksum": "741527b4ef7198d16cee42ae74eacbe239bcc7377f8b86811c27d627fdc77748"}}, "download_size": 42862275, "post_processing_size": null, "dataset_size": 14796763, "size_in_bytes": 57659038}, "matching_from_pixels_4": {"description": "There are 3 caption contest tasks, described in the paper. In the Matching multiple choice task, models must recognize a caption written about a cartoon (vs. options that were not). In the Quality Ranking task, models must evaluate the quality\nof that caption by scoring it more highly than a lower quality option from the same contest. In the Explanation Generation task, models must explain why the joke is funny.\nYou are given a cartoon and 5 captions. Only one of the captions was truly written about the cartoon. You must select it.\n", "citation": "@article{hessel2022androids,\n  title={Do Androids Laugh at Electric Sheep? Humor\" Understanding\" Benchmarks from The New Yorker Caption Contest},\n  author={Hessel, Jack and Marasovi{'c}, Ana and Hwang, Jena D and Lee, Lillian and Da, Jeff and Zellers, Rowan and Mankoff, Robert and Choi, Yejin},\n  journal={arXiv preprint arXiv:2209.06293},\n  year={2022}\n}\n\nwww.capcon.dev\n\nOur data contributions are:\n\n- The cartoon-level annotations;\n- The joke explanations;\n- and the framing of the tasks\nWe release these data we contribute under CC-BY (see DATASET_LICENSE).\n\nIf you find this data useful in your work, in addition to citing our contributions, please also cite the following, from which the cartoons/captions in our corpus are derived:\n\n@misc{newyorkernextmldataset,\n  author={Jain, Lalit  and Jamieson, Kevin and Mankoff, Robert and Nowak, Robert and Sievert, Scott},\n  title={The {N}ew {Y}orker Cartoon Caption Contest Dataset},\n  year={2020},\n  url={https://nextml.github.io/caption-contest-data/}\n}\n\n@inproceedings{radev-etal-2016-humor,\n  title = \"Humor in Collective Discourse: Unsupervised Funniness Detection in The {New Yorker} Cartoon Caption Contest\",\n  author = \"Radev, Dragomir  and\n      Stent, Amanda  and\n      Tetreault, Joel  and\n      Pappu, Aasish  and\n      Iliakopoulou, Aikaterini  and\n      Chanfreau, Agustin  and\n      de Juan, Paloma  and\n      Vallmitjana, Jordi  and\n      Jaimes, Alejandro  and\n      Jha, Rahul  and\n      Mankoff, Robert\",\n  booktitle = \"LREC\",\n  year = \"2016\",\n}\n\n@inproceedings{shahaf2015inside,\n  title={Inside jokes: Identifying humorous cartoon captions},\n  author={Shahaf, Dafna and Horvitz, Eric and Mankoff, Robert},\n  booktitle={KDD},\n  year={2015},\n}\n", "homepage": "www.capcon.dev", "license": "", "features": {"image": {"decode": true, "id": null, "_type": "Image"}, "contest_number": {"dtype": "int32", "id": null, "_type": "Value"}, "caption_choices": {"feature": {"dtype": "string", "id": null, "_type": "Value"}, "length": -1, "id": null, "_type": "Sequence"}, "label": {"dtype": "string", "id": null, "_type": "Value"}, "n_tokens_label": {"dtype": "int32", "id": null, "_type": "Value"}, "instance_id": {"dtype": "string", "id": null, "_type": "Value"}}, "post_processed": null, "supervised_keys": null, "task_templates": null, "builder_name": "newyorker_caption_contest", "config_name": "matching_from_pixels_4", "version": {"version_str": "1.0.0", "description": null, "major": 1, "minor": 0, "patch": 0}, "splits": {"train": {"name": "train", "num_bytes": 749981, "num_examples": 1617, "dataset_name": "newyorker_caption_contest"}, "validation": {"name": "validation", "num_bytes": 243528, "num_examples": 528, "dataset_name": "newyorker_caption_contest"}, "test": {"name": "test", "num_bytes": 256896, "num_examples": 546, "dataset_name": "newyorker_caption_contest"}}, "download_checksums": {"https://storage.googleapis.com/ai2-jack-public/caption_contest_data_public/huggingface_hub/v1.0/matching_from_pixels_4.zip": {"num_bytes": 307932, "checksum": "cecbce805b551669534abb39e49f5fc8cac2d8b3a84d48555db19bc01992b2dd"}, "https://storage.googleapis.com/ai2-jack-public/caption_contest_data_public/all_contest_images.zip": {"num_bytes": 39523209, "checksum": "741527b4ef7198d16cee42ae74eacbe239bcc7377f8b86811c27d627fdc77748"}}, "download_size": 39831141, "post_processing_size": null, "dataset_size": 1250405, "size_in_bytes": 41081546}, "ranking_4": {"description": "There are 3 caption contest tasks, described in the paper. In the Matching multiple choice task, models must recognize a caption written about a cartoon (vs. options that were not). In the Quality Ranking task, models must evaluate the quality\nof that caption by scoring it more highly than a lower quality option from the same contest. In the Explanation Generation task, models must explain why the joke is funny.\nYou are given a cartoon and 2 captions. One of the captions was selected by crowd voting or New Yorker editors as high quality. You must select it.\n", "citation": "@article{hessel2022androids,\n  title={Do Androids Laugh at Electric Sheep? Humor\" Understanding\" Benchmarks from The New Yorker Caption Contest},\n  author={Hessel, Jack and Marasovi{'c}, Ana and Hwang, Jena D and Lee, Lillian and Da, Jeff and Zellers, Rowan and Mankoff, Robert and Choi, Yejin},\n  journal={arXiv preprint arXiv:2209.06293},\n  year={2022}\n}\n\nwww.capcon.dev\n\nOur data contributions are:\n\n- The cartoon-level annotations;\n- The joke explanations;\n- and the framing of the tasks\nWe release these data we contribute under CC-BY (see DATASET_LICENSE).\n\nIf you find this data useful in your work, in addition to citing our contributions, please also cite the following, from which the cartoons/captions in our corpus are derived:\n\n@misc{newyorkernextmldataset,\n  author={Jain, Lalit  and Jamieson, Kevin and Mankoff, Robert and Nowak, Robert and Sievert, Scott},\n  title={The {N}ew {Y}orker Cartoon Caption Contest Dataset},\n  year={2020},\n  url={https://nextml.github.io/caption-contest-data/}\n}\n\n@inproceedings{radev-etal-2016-humor,\n  title = \"Humor in Collective Discourse: Unsupervised Funniness Detection in The {New Yorker} Cartoon Caption Contest\",\n  author = \"Radev, Dragomir  and\n      Stent, Amanda  and\n      Tetreault, Joel  and\n      Pappu, Aasish  and\n      Iliakopoulou, Aikaterini  and\n      Chanfreau, Agustin  and\n      de Juan, Paloma  and\n      Vallmitjana, Jordi  and\n      Jaimes, Alejandro  and\n      Jha, Rahul  and\n      Mankoff, Robert\",\n  booktitle = \"LREC\",\n  year = \"2016\",\n}\n\n@inproceedings{shahaf2015inside,\n  title={Inside jokes: Identifying humorous cartoon captions},\n  author={Shahaf, Dafna and Horvitz, Eric and Mankoff, Robert},\n  booktitle={KDD},\n  year={2015},\n}\n", "homepage": "www.capcon.dev", "license": "", "features": {"image": {"decode": true, "id": null, "_type": "Image"}, "contest_number": {"dtype": "int32", "id": null, "_type": "Value"}, "image_location": {"dtype": "string", "id": null, "_type": "Value"}, "image_description": {"dtype": "string", "id": null, "_type": "Value"}, "image_uncanny_description": {"dtype": "string", "id": null, "_type": "Value"}, "entities": {"feature": {"dtype": "string", "id": null, "_type": "Value"}, "length": -1, "id": null, "_type": "Sequence"}, "questions": {"feature": {"dtype": "string", "id": null, "_type": "Value"}, "length": -1, "id": null, "_type": "Sequence"}, "caption_choices": {"feature": {"dtype": "string", "id": null, "_type": "Value"}, "length": -1, "id": null, "_type": "Sequence"}, "from_description": {"dtype": "string", "id": null, "_type": "Value"}, "winner_source": {"dtype": "string", "id": null, "_type": "Value"}, "label": {"dtype": "string", "id": null, "_type": "Value"}, "n_tokens_label": {"dtype": "int32", "id": null, "_type": "Value"}, "instance_id": {"dtype": "string", "id": null, "_type": "Value"}}, "post_processed": null, "supervised_keys": null, "task_templates": null, "builder_name": "newyorker_caption_contest", "config_name": "ranking_4", "version": {"version_str": "1.0.0", "description": null, "major": 1, "minor": 0, "patch": 0}, "splits": {"train": {"name": "train", "num_bytes": 10382406, "num_examples": 9432, "dataset_name": "newyorker_caption_contest"}, "validation": {"name": "validation", "num_bytes": 527159, "num_examples": 513, "dataset_name": "newyorker_caption_contest"}, "test": {"name": "test", "num_bytes": 531455, "num_examples": 531, "dataset_name": "newyorker_caption_contest"}}, "download_checksums": {"https://storage.googleapis.com/ai2-jack-public/caption_contest_data_public/huggingface_hub/v1.0/ranking_4.zip": {"num_bytes": 2413757, "checksum": "b3cf071c6046ece7c7a4dd1fb430a7cad8debdebfdcc7c7b2b6efb40fd0d4cfa"}, "https://storage.googleapis.com/ai2-jack-public/caption_contest_data_public/all_contest_images.zip": {"num_bytes": 39523209, "checksum": "741527b4ef7198d16cee42ae74eacbe239bcc7377f8b86811c27d627fdc77748"}}, "download_size": 41936966, "post_processing_size": null, "dataset_size": 11441020, "size_in_bytes": 53377986}, "ranking_from_pixels_4": {"description": "There are 3 caption contest tasks, described in the paper. In the Matching multiple choice task, models must recognize a caption written about a cartoon (vs. options that were not). In the Quality Ranking task, models must evaluate the quality\nof that caption by scoring it more highly than a lower quality option from the same contest. In the Explanation Generation task, models must explain why the joke is funny.\nYou are given a cartoon and 2 captions. One of the captions was selected by crowd voting or New Yorker editors as high quality. You must select it.\n", "citation": "@article{hessel2022androids,\n  title={Do Androids Laugh at Electric Sheep? Humor\" Understanding\" Benchmarks from The New Yorker Caption Contest},\n  author={Hessel, Jack and Marasovi{'c}, Ana and Hwang, Jena D and Lee, Lillian and Da, Jeff and Zellers, Rowan and Mankoff, Robert and Choi, Yejin},\n  journal={arXiv preprint arXiv:2209.06293},\n  year={2022}\n}\n\nwww.capcon.dev\n\nOur data contributions are:\n\n- The cartoon-level annotations;\n- The joke explanations;\n- and the framing of the tasks\nWe release these data we contribute under CC-BY (see DATASET_LICENSE).\n\nIf you find this data useful in your work, in addition to citing our contributions, please also cite the following, from which the cartoons/captions in our corpus are derived:\n\n@misc{newyorkernextmldataset,\n  author={Jain, Lalit  and Jamieson, Kevin and Mankoff, Robert and Nowak, Robert and Sievert, Scott},\n  title={The {N}ew {Y}orker Cartoon Caption Contest Dataset},\n  year={2020},\n  url={https://nextml.github.io/caption-contest-data/}\n}\n\n@inproceedings{radev-etal-2016-humor,\n  title = \"Humor in Collective Discourse: Unsupervised Funniness Detection in The {New Yorker} Cartoon Caption Contest\",\n  author = \"Radev, Dragomir  and\n      Stent, Amanda  and\n      Tetreault, Joel  and\n      Pappu, Aasish  and\n      Iliakopoulou, Aikaterini  and\n      Chanfreau, Agustin  and\n      de Juan, Paloma  and\n      Vallmitjana, Jordi  and\n      Jaimes, Alejandro  and\n      Jha, Rahul  and\n      Mankoff, Robert\",\n  booktitle = \"LREC\",\n  year = \"2016\",\n}\n\n@inproceedings{shahaf2015inside,\n  title={Inside jokes: Identifying humorous cartoon captions},\n  author={Shahaf, Dafna and Horvitz, Eric and Mankoff, Robert},\n  booktitle={KDD},\n  year={2015},\n}\n", "homepage": "www.capcon.dev", "license": "", "features": {"image": {"decode": true, "id": null, "_type": "Image"}, "contest_number": {"dtype": "int32", "id": null, "_type": "Value"}, "caption_choices": {"feature": {"dtype": "string", "id": null, "_type": "Value"}, "length": -1, "id": null, "_type": "Sequence"}, "winner_source": {"dtype": "string", "id": null, "_type": "Value"}, "label": {"dtype": "string", "id": null, "_type": "Value"}, "n_tokens_label": {"dtype": "int32", "id": null, "_type": "Value"}, "instance_id": {"dtype": "string", "id": null, "_type": "Value"}}, "post_processed": null, "supervised_keys": null, "task_templates": null, "builder_name": "newyorker_caption_contest", "config_name": "ranking_from_pixels_4", "version": {"version_str": "1.0.0", "description": null, "major": 1, "minor": 0, "patch": 0}, "splits": {"train": {"name": "train", "num_bytes": 521623, "num_examples": 1571, "dataset_name": "newyorker_caption_contest"}, "validation": {"name": "validation", "num_bytes": 169649, "num_examples": 513, "dataset_name": "newyorker_caption_contest"}, "test": {"name": "test", "num_bytes": 177459, "num_examples": 531, "dataset_name": "newyorker_caption_contest"}}, "download_checksums": {"https://storage.googleapis.com/ai2-jack-public/caption_contest_data_public/huggingface_hub/v1.0/ranking_from_pixels_4.zip": {"num_bytes": 203752, "checksum": "79e83d153f410977e4cac58fc870ca0d9f8ae6e4748bfa21426dc57d66efd437"}, "https://storage.googleapis.com/ai2-jack-public/caption_contest_data_public/all_contest_images.zip": {"num_bytes": 39523209, "checksum": "741527b4ef7198d16cee42ae74eacbe239bcc7377f8b86811c27d627fdc77748"}}, "download_size": 39726961, "post_processing_size": null, "dataset_size": 868731, "size_in_bytes": 40595692}, "explanation_4": {"description": "There are 3 caption contest tasks, described in the paper. In the Matching multiple choice task, models must recognize a caption written about a cartoon (vs. options that were not). In the Quality Ranking task, models must evaluate the quality\nof that caption by scoring it more highly than a lower quality option from the same contest. In the Explanation Generation task, models must explain why the joke is funny.\nYou are given a cartoon and a caption that was written about it. You must autoregressively generate a joke explanation.\n", "citation": "@article{hessel2022androids,\n  title={Do Androids Laugh at Electric Sheep? Humor\" Understanding\" Benchmarks from The New Yorker Caption Contest},\n  author={Hessel, Jack and Marasovi{'c}, Ana and Hwang, Jena D and Lee, Lillian and Da, Jeff and Zellers, Rowan and Mankoff, Robert and Choi, Yejin},\n  journal={arXiv preprint arXiv:2209.06293},\n  year={2022}\n}\n\nwww.capcon.dev\n\nOur data contributions are:\n\n- The cartoon-level annotations;\n- The joke explanations;\n- and the framing of the tasks\nWe release these data we contribute under CC-BY (see DATASET_LICENSE).\n\nIf you find this data useful in your work, in addition to citing our contributions, please also cite the following, from which the cartoons/captions in our corpus are derived:\n\n@misc{newyorkernextmldataset,\n  author={Jain, Lalit  and Jamieson, Kevin and Mankoff, Robert and Nowak, Robert and Sievert, Scott},\n  title={The {N}ew {Y}orker Cartoon Caption Contest Dataset},\n  year={2020},\n  url={https://nextml.github.io/caption-contest-data/}\n}\n\n@inproceedings{radev-etal-2016-humor,\n  title = \"Humor in Collective Discourse: Unsupervised Funniness Detection in The {New Yorker} Cartoon Caption Contest\",\n  author = \"Radev, Dragomir  and\n      Stent, Amanda  and\n      Tetreault, Joel  and\n      Pappu, Aasish  and\n      Iliakopoulou, Aikaterini  and\n      Chanfreau, Agustin  and\n      de Juan, Paloma  and\n      Vallmitjana, Jordi  and\n      Jaimes, Alejandro  and\n      Jha, Rahul  and\n      Mankoff, Robert\",\n  booktitle = \"LREC\",\n  year = \"2016\",\n}\n\n@inproceedings{shahaf2015inside,\n  title={Inside jokes: Identifying humorous cartoon captions},\n  author={Shahaf, Dafna and Horvitz, Eric and Mankoff, Robert},\n  booktitle={KDD},\n  year={2015},\n}\n", "homepage": "www.capcon.dev", "license": "", "features": {"image": {"decode": true, "id": null, "_type": "Image"}, "contest_number": {"dtype": "int32", "id": null, "_type": "Value"}, "image_location": {"dtype": "string", "id": null, "_type": "Value"}, "image_description": {"dtype": "string", "id": null, "_type": "Value"}, "image_uncanny_description": {"dtype": "string", "id": null, "_type": "Value"}, "entities": {"feature": {"dtype": "string", "id": null, "_type": "Value"}, "length": -1, "id": null, "_type": "Sequence"}, "questions": {"feature": {"dtype": "string", "id": null, "_type": "Value"}, "length": -1, "id": null, "_type": "Sequence"}, "caption_choices": {"dtype": "string", "id": null, "_type": "Value"}, "from_description": {"dtype": "string", "id": null, "_type": "Value"}, "label": {"dtype": "string", "id": null, "_type": "Value"}, "n_tokens_label": {"dtype": "int32", "id": null, "_type": "Value"}, "instance_id": {"dtype": "string", "id": null, "_type": "Value"}}, "post_processed": null, "supervised_keys": null, "task_templates": null, "builder_name": "newyorker_caption_contest", "config_name": "explanation_4", "version": {"version_str": "1.0.0", "description": null, "major": 1, "minor": 0, "patch": 0}, "splits": {"train": {"name": "train", "num_bytes": 3084810, "num_examples": 2340, "dataset_name": "newyorker_caption_contest"}, "validation": {"name": "validation", "num_bytes": 162089, "num_examples": 131, "dataset_name": "newyorker_caption_contest"}, "test": {"name": "test", "num_bytes": 158611, "num_examples": 130, "dataset_name": "newyorker_caption_contest"}}, "download_checksums": {"https://storage.googleapis.com/ai2-jack-public/caption_contest_data_public/huggingface_hub/v1.0/explanation_4.zip": {"num_bytes": 861773, "checksum": "f5fcf62641a6c844a56ec0a79ec981977442535f197f9c407c3eb7c1a320252d"}, "https://storage.googleapis.com/ai2-jack-public/caption_contest_data_public/all_contest_images.zip": {"num_bytes": 39523209, "checksum": "741527b4ef7198d16cee42ae74eacbe239bcc7377f8b86811c27d627fdc77748"}}, "download_size": 40384982, "post_processing_size": null, "dataset_size": 3405510, "size_in_bytes": 43790492}, "explanation_from_pixels_4": {"description": "There are 3 caption contest tasks, described in the paper. In the Matching multiple choice task, models must recognize a caption written about a cartoon (vs. options that were not). In the Quality Ranking task, models must evaluate the quality\nof that caption by scoring it more highly than a lower quality option from the same contest. In the Explanation Generation task, models must explain why the joke is funny.\nYou are given a cartoon and a caption that was written about it. You must autoregressively generate a joke explanation.\n", "citation": "@article{hessel2022androids,\n  title={Do Androids Laugh at Electric Sheep? Humor\" Understanding\" Benchmarks from The New Yorker Caption Contest},\n  author={Hessel, Jack and Marasovi{'c}, Ana and Hwang, Jena D and Lee, Lillian and Da, Jeff and Zellers, Rowan and Mankoff, Robert and Choi, Yejin},\n  journal={arXiv preprint arXiv:2209.06293},\n  year={2022}\n}\n\nwww.capcon.dev\n\nOur data contributions are:\n\n- The cartoon-level annotations;\n- The joke explanations;\n- and the framing of the tasks\nWe release these data we contribute under CC-BY (see DATASET_LICENSE).\n\nIf you find this data useful in your work, in addition to citing our contributions, please also cite the following, from which the cartoons/captions in our corpus are derived:\n\n@misc{newyorkernextmldataset,\n  author={Jain, Lalit  and Jamieson, Kevin and Mankoff, Robert and Nowak, Robert and Sievert, Scott},\n  title={The {N}ew {Y}orker Cartoon Caption Contest Dataset},\n  year={2020},\n  url={https://nextml.github.io/caption-contest-data/}\n}\n\n@inproceedings{radev-etal-2016-humor,\n  title = \"Humor in Collective Discourse: Unsupervised Funniness Detection in The {New Yorker} Cartoon Caption Contest\",\n  author = \"Radev, Dragomir  and\n      Stent, Amanda  and\n      Tetreault, Joel  and\n      Pappu, Aasish  and\n      Iliakopoulou, Aikaterini  and\n      Chanfreau, Agustin  and\n      de Juan, Paloma  and\n      Vallmitjana, Jordi  and\n      Jaimes, Alejandro  and\n      Jha, Rahul  and\n      Mankoff, Robert\",\n  booktitle = \"LREC\",\n  year = \"2016\",\n}\n\n@inproceedings{shahaf2015inside,\n  title={Inside jokes: Identifying humorous cartoon captions},\n  author={Shahaf, Dafna and Horvitz, Eric and Mankoff, Robert},\n  booktitle={KDD},\n  year={2015},\n}\n", "homepage": "www.capcon.dev", "license": "", "features": {"image": {"decode": true, "id": null, "_type": "Image"}, "contest_number": {"dtype": "int32", "id": null, "_type": "Value"}, "caption_choices": {"dtype": "string", "id": null, "_type": "Value"}, "label": {"dtype": "string", "id": null, "_type": "Value"}, "n_tokens_label": {"dtype": "int32", "id": null, "_type": "Value"}, "instance_id": {"dtype": "string", "id": null, "_type": "Value"}}, "post_processed": null, "supervised_keys": null, "task_templates": null, "builder_name": "newyorker_caption_contest", "config_name": "explanation_from_pixels_4", "version": {"version_str": "1.0.0", "description": null, "major": 1, "minor": 0, "patch": 0}, "splits": {"train": {"name": "train", "num_bytes": 234887, "num_examples": 390, "dataset_name": "newyorker_caption_contest"}, "validation": {"name": "validation", "num_bytes": 77448, "num_examples": 131, "dataset_name": "newyorker_caption_contest"}, "test": {"name": "test", "num_bytes": 78227, "num_examples": 130, "dataset_name": "newyorker_caption_contest"}}, "download_checksums": {"https://storage.googleapis.com/ai2-jack-public/caption_contest_data_public/huggingface_hub/v1.0/explanation_from_pixels_4.zip": {"num_bytes": 122706, "checksum": "8877b0cba778dfb76a9374a9b5036f1a2665c65023dc3ca5640be899c85fd135"}, "https://storage.googleapis.com/ai2-jack-public/caption_contest_data_public/all_contest_images.zip": {"num_bytes": 39523209, "checksum": "741527b4ef7198d16cee42ae74eacbe239bcc7377f8b86811c27d627fdc77748"}}, "download_size": 39645915, "post_processing_size": null, "dataset_size": 390562, "size_in_bytes": 40036477}}
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-# coding=utf-8
-# Lint as: python3
-"""The Caption Contest benchmark."""
-
-
-import json
-import os
-import datasets
-import base64
-import pprint
-
-
-_CAPTION_CONTEST_TASKS_CITATION = """\
-@article{hessel2022androids,
-  title={Do Androids Laugh at Electric Sheep? Humor" Understanding" Benchmarks from The New Yorker Caption Contest},
-  author={Hessel, Jack and Marasovi{\'c}, Ana and Hwang, Jena D and Lee, Lillian and Da, Jeff and Zellers, Rowan and Mankoff, Robert and Choi, Yejin},
-  journal={arXiv preprint arXiv:2209.06293},
-  year={2022}
-}
-
-www.capcon.dev
-
-Our data contributions are:
-
-- The cartoon-level annotations;
-- The joke explanations;
-- and the framing of the tasks
-We release these data we contribute under CC-BY (see DATASET_LICENSE).
-
-If you find this data useful in your work, in addition to citing our contributions, please also cite the following, from which the cartoons/captions in our corpus are derived:
-
-@misc{newyorkernextmldataset,
-  author={Jain, Lalit  and Jamieson, Kevin and Mankoff, Robert and Nowak, Robert and Sievert, Scott},
-  title={The {N}ew {Y}orker Cartoon Caption Contest Dataset},
-  year={2020},
-  url={https://nextml.github.io/caption-contest-data/}
-}
-
-@inproceedings{radev-etal-2016-humor,
-  title = "Humor in Collective Discourse: Unsupervised Funniness Detection in The {New Yorker} Cartoon Caption Contest",
-  author = "Radev, Dragomir  and
-      Stent, Amanda  and
-      Tetreault, Joel  and
-      Pappu, Aasish  and
-      Iliakopoulou, Aikaterini  and
-      Chanfreau, Agustin  and
-      de Juan, Paloma  and
-      Vallmitjana, Jordi  and
-      Jaimes, Alejandro  and
-      Jha, Rahul  and
-      Mankoff, Robert",
-  booktitle = "LREC",
-  year = "2016",
-}
-
-@inproceedings{shahaf2015inside,
-  title={Inside jokes: Identifying humorous cartoon captions},
-  author={Shahaf, Dafna and Horvitz, Eric and Mankoff, Robert},
-  booktitle={KDD},
-  year={2015},
-}
-"""
-
-
-_CAPTION_CONTEST_DESCRIPTION = """\
-There are 3 caption contest tasks, described in the paper. In the Matching multiple choice task, models must recognize a caption written about a cartoon (vs. options that were not). In the Quality Ranking task, models must evaluate the quality
-of that caption by scoring it more highly than a lower quality option from the same contest. In the Explanation Generation task, models must explain why the joke is funny.
-"""
-
-_MATCHING_DESCRIPTION = """\
-You are given a cartoon and 5 captions. Only one of the captions was truly written about the cartoon. You must select it.
-"""
-
-_RANKING_DESCRIPTION = """\
-You are given a cartoon and 2 captions. One of the captions was selected by crowd voting or New Yorker editors as high quality. You must select it.
-"""
-
-_EXPLANATION_DESCRIPTION = """\
-You are given a cartoon and a caption that was written about it. You must autoregressively generate a joke explanation.
-"""
-
-
-_IMAGES_URL = "https://storage.googleapis.com/ai2-jack-public/caption_contest_data_public/all_contest_images.zip"
-
-
-def _get_configs_crossvals():
-    cross_val_configs = []
-    for split_idx in [1,2,3,4]:
-        cur_split_configs = [
-            CaptionContestConfig(
-            name='matching_{}'.format(split_idx),
-                description=_MATCHING_DESCRIPTION,
-                features=[
-                    'image',
-                    'contest_number',
-                    'image_location',
-                    'image_description',
-                    'image_uncanny_description',
-                    'entities',
-                    'questions',
-                    'caption_choices',
-                    'from_description',
-                ],
-                label_classes=["A", "B", "C", "D", "E"],
-                data_url='https://storage.googleapis.com/ai2-jack-public/caption_contest_data_public/huggingface_hub/v1.0/matching_{}.zip'.format(split_idx),
-                url='www.capcon.dev',
-                citation=_CAPTION_CONTEST_TASKS_CITATION,
-            ),
-
-            CaptionContestConfig(
-                name='matching_from_pixels_{}'.format(split_idx),
-                description=_MATCHING_DESCRIPTION,
-                features=[
-                    'image',
-                    'contest_number',
-                    'caption_choices',
-                ],
-                label_classes=["A", "B", "C", "D", "E"],
-                data_url='https://storage.googleapis.com/ai2-jack-public/caption_contest_data_public/huggingface_hub/v1.0/matching_from_pixels_{}.zip'.format(split_idx),
-                url='www.capcon.dev',
-                citation=_CAPTION_CONTEST_TASKS_CITATION,
-            ),
-
-            CaptionContestConfig(
-                name='ranking_{}'.format(split_idx),
-                description=_RANKING_DESCRIPTION,
-                features=[
-                    'image',
-                    'contest_number',
-                    'image_location',
-                    'image_description',
-                    'image_uncanny_description',
-                    'entities',
-                    'questions',
-                    'caption_choices',
-                    'from_description',
-                    'winner_source',
-                ],
-                
-                label_classes=["A", "B"],
-                data_url='https://storage.googleapis.com/ai2-jack-public/caption_contest_data_public/huggingface_hub/v1.0/ranking_{}.zip'.format(split_idx),
-                url='www.capcon.dev',
-                citation=_CAPTION_CONTEST_TASKS_CITATION,
-            ),
-
-            CaptionContestConfig(
-                name='ranking_from_pixels_{}'.format(split_idx),
-                description=_RANKING_DESCRIPTION,
-                features=[
-                    'image',
-                    'contest_number',
-                    'caption_choices',
-                    'winner_source',
-                ],
-                label_classes=["A", "B"],
-                data_url='https://storage.googleapis.com/ai2-jack-public/caption_contest_data_public/huggingface_hub/v1.0/ranking_from_pixels_{}.zip'.format(split_idx),
-                url='www.capcon.dev',
-                citation=_CAPTION_CONTEST_TASKS_CITATION,
-            ),
-
-
-            CaptionContestConfig(
-                name='explanation_{}'.format(split_idx),
-                description=_EXPLANATION_DESCRIPTION,
-                features=[
-                    'image',
-                    'contest_number',
-                    'image_location',
-                    'image_description',
-                    'image_uncanny_description',
-                    'entities',
-                    'questions',
-                    'caption_choices',
-                    'from_description',
-                ],
-                label_classes=None,
-                data_url='https://storage.googleapis.com/ai2-jack-public/caption_contest_data_public/huggingface_hub/v1.0/explanation_{}.zip'.format(split_idx),
-                url='www.capcon.dev',
-                citation=_CAPTION_CONTEST_TASKS_CITATION,
-            ),
-
-            CaptionContestConfig(
-                name='explanation_from_pixels_{}'.format(split_idx),
-                description=_EXPLANATION_DESCRIPTION,
-                features=[
-                    'image',
-                    'contest_number',
-                    'caption_choices',
-                ],
-                label_classes=None,
-                data_url='https://storage.googleapis.com/ai2-jack-public/caption_contest_data_public/huggingface_hub/v1.0/explanation_from_pixels_{}.zip'.format(split_idx),
-                url='www.capcon.dev',
-                citation=_CAPTION_CONTEST_TASKS_CITATION,
-            ),
-        ]
-        cross_val_configs.extend(cur_split_configs)
-    return cross_val_configs
-
-
-class CaptionContestConfig(datasets.BuilderConfig):
-    """BuilderConfig for Caption Contest."""
-
-    def __init__(self, features, data_url, citation, url, label_classes=None, **kwargs):
-        """BuilderConfig for Caption Contest.
-        Args:
-          features: `list[string]`, list of the features that will appear in the
-            feature dict. Should not include "label".
-          data_url: `string`, url to download the zip file from.
-          citation: `string`, citation for the data set.
-          url: `string`, url for information about the data set.
-          label_classes: `list[string]`, the list of classes for the label if the
-            label is present as a string. If not provided, there is no fixed label set.
-          **kwargs: keyword arguments forwarded to super.
-        """
-
-        super(CaptionContestConfig, self).__init__(version=datasets.Version("1.0.0"), **kwargs)
-        self.features = features
-        self.data_url = data_url
-        self.citation = citation
-        self.url = url
-        self.label_classes = label_classes
-
-
-class CaptionContest(datasets.GeneratorBasedBuilder):
-    """The CaptionContest benchmark."""
-
-    BUILDER_CONFIGS = [
-        CaptionContestConfig(
-            name='matching',
-            description=_MATCHING_DESCRIPTION,
-            features=[
-                'image',
-                'contest_number',
-                'image_location',
-                'image_description',
-                'image_uncanny_description',
-                'entities',
-                'questions',
-                'caption_choices',
-                'from_description',
-            ],
-            label_classes=["A", "B", "C", "D", "E"],
-            data_url='https://storage.googleapis.com/ai2-jack-public/caption_contest_data_public/huggingface_hub/v1.0/matching.zip',
-            url='www.capcon.dev',
-            citation=_CAPTION_CONTEST_TASKS_CITATION,
-        ),
-
-        CaptionContestConfig(
-            name='matching_from_pixels',
-            description=_MATCHING_DESCRIPTION,
-            features=[
-                'image',
-                'contest_number',
-                'caption_choices',
-            ],
-            label_classes=["A", "B", "C", "D", "E"],
-            data_url='https://storage.googleapis.com/ai2-jack-public/caption_contest_data_public/huggingface_hub/v1.0/matching_from_pixels.zip',
-            url='www.capcon.dev',
-            citation=_CAPTION_CONTEST_TASKS_CITATION,
-        ),
-
-        CaptionContestConfig(
-            name='ranking',
-            description=_RANKING_DESCRIPTION,
-            features=[
-                'image',
-                'contest_number',
-                'image_location',
-                'image_description',
-                'image_uncanny_description',
-                'entities',
-                'questions',
-                'caption_choices',
-                'from_description',
-                'winner_source',
-            ],
-            label_classes=["A", "B"],
-            data_url='https://storage.googleapis.com/ai2-jack-public/caption_contest_data_public/huggingface_hub/v1.0/ranking.zip',
-            url='www.capcon.dev',
-            citation=_CAPTION_CONTEST_TASKS_CITATION,
-        ),
-
-        CaptionContestConfig(
-            name='ranking_from_pixels',
-            description=_RANKING_DESCRIPTION,
-            features=[
-                'image',
-                'contest_number',
-                'caption_choices',
-                'winner_source',
-            ],
-            label_classes=["A", "B"],
-            data_url='https://storage.googleapis.com/ai2-jack-public/caption_contest_data_public/huggingface_hub/v1.0/ranking_from_pixels.zip',
-            url='www.capcon.dev',
-            citation=_CAPTION_CONTEST_TASKS_CITATION,
-        ),
-
-
-        CaptionContestConfig(
-            name='explanation',
-            description=_EXPLANATION_DESCRIPTION,
-            features=[
-                'image',
-                'contest_number',
-                'image_location',
-                'image_description',
-                'image_uncanny_description',
-                'entities',
-                'questions',
-                'caption_choices',
-                'from_description',
-            ],
-            label_classes=None,
-            data_url='https://storage.googleapis.com/ai2-jack-public/caption_contest_data_public/huggingface_hub/v1.0/explanation.zip',
-            url='www.capcon.dev',
-            citation=_CAPTION_CONTEST_TASKS_CITATION,
-        ),
-
-        CaptionContestConfig(
-            name='explanation_from_pixels',
-            description=_EXPLANATION_DESCRIPTION,
-            features=[
-                'image',
-                'contest_number',
-                'caption_choices',
-            ],
-            label_classes=None,
-            data_url='https://storage.googleapis.com/ai2-jack-public/caption_contest_data_public/huggingface_hub/v1.0/explanation_from_pixels.zip',
-            url='www.capcon.dev',
-            citation=_CAPTION_CONTEST_TASKS_CITATION,
-        ),
-    ] + _get_configs_crossvals()
-    
-
-    def _info(self):
-        features = {feature: datasets.Value("string") for feature in self.config.features}
-        # things are strings except for contest_number, entities, questions, and caption choices (if not explanation)
-        features['contest_number'] = datasets.Value("int32")
-        if 'explanation' not in self.config.name:
-            features['caption_choices'] = datasets.features.Sequence(datasets.Value("string"))
-
-        if 'entities' in features:
-            features['entities'] = datasets.features.Sequence(datasets.Value("string"))
-
-        if 'questions' in features:
-            features['questions'] = datasets.features.Sequence(datasets.Value("string"))
-
-        if 'image' in features:
-            features['image'] = datasets.Image()
-            
-        features['label'] = datasets.Value("string")
-        features['n_tokens_label'] = datasets.Value("int32")
-        features['instance_id'] = datasets.Value("string")
-        
-        return datasets.DatasetInfo(
-            description=_CAPTION_CONTEST_DESCRIPTION + self.config.description,
-            features=datasets.Features(features),
-            homepage=self.config.url,
-            citation=self.config.citation
-        )
-
-    def _split_generators(self, dl_manager):
-        dl_dir = dl_manager.download_and_extract(self.config.data_url) or ""
-        self.images_dir = dl_manager.download_and_extract(_IMAGES_URL)
-        task_name = _get_task_name_from_data_url(self.config.data_url)
-        dl_dir = os.path.join(dl_dir, task_name)
-        
-        return [
-            datasets.SplitGenerator(
-                name=datasets.Split.TRAIN,
-                gen_kwargs={
-                    "data_file": os.path.join(dl_dir, "train.jsonl"),
-                    "split": datasets.Split.TRAIN,
-                },
-            ),
-            datasets.SplitGenerator(
-                name=datasets.Split.VALIDATION,
-                gen_kwargs={
-                    "data_file": os.path.join(dl_dir, "val.jsonl"),
-                    "split": datasets.Split.VALIDATION,
-                },
-            ),
-            datasets.SplitGenerator(
-                name=datasets.Split.TEST,
-                gen_kwargs={
-                    "data_file": os.path.join(dl_dir, "test.jsonl"),
-                    "split": datasets.Split.TEST,
-                },
-            ),
-        ]
-
-    def _generate_examples(self, data_file, split):
-        with open(data_file, encoding="utf-8") as f:
-            for line in f:
-                row = json.loads(line)
-                with open(self.images_dir + "/all_contest_images/{}.jpeg".format(row['contest_number']), "rb") as image:
-                    row['image'] = {"path": self.images_dir + "/all_contest_images/{}.jpeg".format(row['contest_number']),
-                                    "bytes": image.read()}
-                yield row['instance_id'], row
-
-def _get_task_name_from_data_url(data_url):
-    return data_url.split("/")[-1].split(".")[0]
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