Evaluation of Text Summaries Based on Linear Optimization of Content Metrics

Evaluation of Text Summaries Based on Linear Optimization of Content Metrics - Studies in Computational Intelligence

Paperback (20 Aug 2023)

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Publisher's Synopsis

This book provides a comprehensive discussion and new insights about linear optimization of content metrics to improve the automatic Evaluation of Text Summaries (ETS). The reader is first introduced to the background and fundamentals of the ETS. Afterward, state-of-the-art evaluation methods that require or do not require human references are described. Based on how linear optimization has improved other natural language processing tasks, we developed a new methodology based on genetic algorithms that optimize content metrics linearly. Under this optimization, we propose SECO-SEVA as an automatic evaluation metric available for research purposes. Finally, the text finishes with a consideration of directions in which automatic evaluation could be improved in the future. The information provided in this book is self-contained. Therefore, the reader does not require an exhaustive background in this area. Moreover, we consider this book the first one that deals with the ETS in depth.

Book information

ISBN: 9783031072161
Publisher: Springer International Publishing
Imprint: Springer
Pub date:
DEWEY: 025.410285
DEWEY edition: 23
Language: English
Number of pages: 213
Weight: 331g
Height: 235mm
Width: 155mm
Spine width: 12mm