MEGAnno: Exploratory Labeling for NLP in Computational Notebooks
January 08, 2023 Β· Declared Dead Β· π DASH
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Authors
Dan Zhang, Hannah Kim, Rafael Li Chen, Eser Kandogan, Estevam Hruschka
arXiv ID
2301.03095
Category
cs.HC: Human-Computer Interaction
Cross-listed
cs.CL
Citations
4
Venue
DASH
Last Checked
4 months ago
Abstract
We present MEGAnno, a novel exploratory annotation framework designed for NLP researchers and practitioners. Unlike existing labeling tools that focus on data labeling only, our framework aims to support a broader, iterative ML workflow including data exploration and model development. With MEGAnno's API, users can programmatically explore the data through sophisticated search and automated suggestion functions and incrementally update task schema as their project evolve. Combined with our widget, the users can interactively sort, filter, and assign labels to multiple items simultaneously in the same notebook where the rest of the NLP project resides. We demonstrate MEGAnno's flexible, exploratory, efficient, and seamless labeling experience through a sentiment analysis use case.
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