{"about":{"site":"https://codewithpapers.app","non_affiliation":"Code with Papers and Syntology are not affiliated with, endorsed by, or sponsored by Papers with Code, Meta, or the pwc-archive mirror.","licence":"CC BY-SA 4.0","licence_url":"https://creativecommons.org/licenses/by-sa/4.0/legalcode","attribution":"https://codewithpapers.app/attribution","modified":"archive material modified by Syntology; see the attribution page"},"url":"/paper/textbox-a-unified-modularized-and-extensible","title":"TextBox: A Unified, Modularized, and Extensible Framework for Text Generation","arxiv_id":"2101.02046","date":"2021-01-06","proceeding":"ACL 2021 5","authors":["Junyi Li","Tianyi Tang","Gaole He","Jinhao Jiang","Xiaoxuan Hu","Puzhao Xie","Zhipeng Chen","Zhuohao Yu","Wayne Xin Zhao","Ji-Rong Wen"],"abstract":"In this paper, we release an open-source library, called TextBox, to provide a unified, modularized, and extensible text generation framework. TextBox aims to support a broad set of text generation tasks and models. In our library, we implement 21 text generation models on 9 benchmark datasets, covering the categories of VAE, GAN, and pretrained language models. Meanwhile, our library maintains sufficient modularity and extensibility by properly decomposing the model architecture, inference, and learning process into highly reusable modules, which allows users to easily incorporate new models into our framework. The above features make TextBox specially suitable for researchers and practitioners to quickly reproduce baseline models and develop new models. 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