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--- |
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language: |
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- en |
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- zh |
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- fr |
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license: apache-2.0 |
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size_categories: |
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- 1K<n<10K |
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task_categories: |
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- question-answering |
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- multiple-choice |
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pretty_name: 'FAMMA: A Benchmark for Financial Domain Multilingual Multimodal Question |
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Answering' |
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tags: |
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- finance |
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dataset_info: |
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features: |
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- name: idx |
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dtype: int32 |
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- name: question_id |
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dtype: string |
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- name: context |
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dtype: string |
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- name: question |
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dtype: string |
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- name: options |
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sequence: string |
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- name: image_1 |
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dtype: image |
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- name: image_2 |
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dtype: image |
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- name: image_3 |
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dtype: image |
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- name: image_4 |
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dtype: image |
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- name: image_5 |
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dtype: image |
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- name: image_6 |
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dtype: image |
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- name: image_7 |
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dtype: image |
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- name: image_type |
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dtype: string |
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- name: answers |
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dtype: string |
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- name: explanation |
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dtype: string |
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- name: topic_difficulty |
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dtype: string |
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- name: question_type |
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dtype: string |
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- name: subfield |
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dtype: string |
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- name: language |
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dtype: string |
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- name: main_question_id |
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dtype: string |
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- name: sub_question_id |
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dtype: string |
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- name: ans_image_1 |
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dtype: image |
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- name: ans_image_2 |
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dtype: image |
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- name: ans_image_3 |
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dtype: image |
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- name: ans_image_4 |
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dtype: image |
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- name: ans_image_5 |
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dtype: image |
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- name: ans_image_6 |
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dtype: image |
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- name: release |
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dtype: string |
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splits: |
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- name: release_v2406 |
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num_bytes: 88209168.664 |
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num_examples: 1534 |
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download_size: 82533346 |
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dataset_size: 88209168.664 |
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configs: |
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- config_name: default |
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data_files: |
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- split: release_v2406 |
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path: data/release_v2406-* |
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--- |
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## Introduction |
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FAMMA dataset consists of 1,758 meticulously collected multimodal questions. The questions encompass three heterogeneous image types - tables, charts and text & math screenshots - and span eight subfields in finance, comprehensively covering topics across major asset classes. Additionally, all the questions are categorized by three difficulty levels — easy, medium, and hard - and are available in three languages — English, Chinese, and French. Furthermore, the questions are divided into two types: multiple-choice and open questions. |
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The leaderboard is regularly updated and can be accessed at https://famma-bench.github.io/famma/. |
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** Note: we are reconstructing the dataset again, which will be finihsed before Feb. ** |
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## Dataset Structure |
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|
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### features |
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- idx:a unique identifier for the index of the question in the dataset. |
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- question_id: a unique identifier for the question across the whole dataset: {language}_{main_question_id}_{sub_question_id}_{release_version}. |
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- context: relevant background information related to the question. |
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- question: the specific query being asked. |
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- options: the specific query being asked. |
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- image_1- image_7: directories of images referenced in the context or question. |
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- image_type: type of the image, e.g., chart, table, screenshot. |
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- answers: a concise and accurate response. **(public on release v2406, non-public on the live set release v2501)** |
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- explanation:a detailed justification for the answer. **(public on release v2406, non-public on the live set release v2501)** |
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- topic_difficulty: a measure of the question's complexity based on the level of reasoning required. |
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- question_type: categorized as either multiple-choice or open-ended. |
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- subfield: the specific area of expertise to which the question belongs, categorized into eight subfields. |
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- language:the language in which the question text is written. |
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- main_question_id:a unique identifier for the question within its context; questions with the same context share the same ID. |
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- sub_question_id:a unique identifier for the question within its corresponding main question. |
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- ans_image_1 - ans_image_6: **(public on release v2406, non-public on the live set release v2501)** |
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### dataset splits |
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## Citation |
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If you use FAMMA in your research, please cite our paper as follows: |
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```latex |
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@article{xue2024famma, |
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title={FAMMA: A Benchmark for Financial Domain Multilingual Multimodal Question Answering}, |
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author={Siqiao Xue, Tingting Chen, Fan Zhou, Qingyang Dai, Zhixuan Chu, and Hongyuan Mei}, |
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journal={arXiv preprint arXiv:2410.04526}, |
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year={2024}, |
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url={https://arxiv.org/abs/2410.04526} |
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} |
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``` |