DataFinder: Scientific Dataset Recommendation from Natural Language Descriptions
Vijay Viswanathan, Luyu Gao, Tongshuang Wu, Pengfei Liu, Graham Neubig
Abstract
Modern machine learning relies on datasets to develop and validate research ideas. Given the growth of publicly available data, finding the right dataset to use is increasingly difficult. Any research question imposes explicit and implicit constraints on how well a given dataset will enable researchers to answer this question, such as dataset size, modality, and domain. We operationalize the task of recommending datasets given a short natural language description of a research idea, to help people find relevant datasets for their needs. Dataset recommendation poses unique challenges as an information retrieval problem; datasets are hard to directly index for search and there are no corpora readily available for this task. To facilitate this task, we build the DataFinder Dataset which consists of a larger automatically-constructed training set (17.5K queries) and a smaller expertannotated evaluation set (392 queries). Using this data, we compare various information retrieval algorithms on our test set and present a superior bi-encoder retriever for text-based dataset recommendation. This system, trained on the DataFinder Dataset, finds more relevant search results than existing third-party dataset search engines. To encourage progress on dataset recommendation, we release our dataset and models to the public. 1 1 Code and data: https://github.com/viswavi/ datafinder Natural Language Query "I want to use adversarial learning to perform domain adaptation for semantic segmentation of images." Keyword Query "semantic segmentation domain adaptation images" GTA5 ADE20K Cityscape Query Interface (Explicit) -Image semantic segmentation (Implicit) -Image semantic segmentation -Datasets should include diverse domains. Relevant datasets Constraints (task/modality/etc) fef7e0 F8F9FA FEEFE3 fad2cf GTA5 ADE20K PACS Cityscape SYNTHIA
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