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2023 | Buch

Investigations in Entity Relationship Extraction

verfasst von: Sachin Sharad Pawar, Pushpak Bhattacharyya, Girish Keshav Palshikar

Verlag: Springer Nature Singapore

Buchreihe : Studies in Computational Intelligence

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Über dieses Buch

The book covers several entity and relation extraction techniques starting from the traditional feature-based techniques to the recent techniques using deep neural models. Two important focus areas of the book are – i) joint extraction techniques where the tasks of entity and relation extraction are jointly solved, and ii) extraction of complex relations where relation types can be N-ary and cross-sentence. The first part of the book introduces the entity and relation extraction tasks and explains the motivation in detail. It covers all the background machine learning concepts necessary to understand the entity and relation extraction techniques explained later. The second part of the book provides a detailed survey of the traditional entity and relation extraction problems covering several techniques proposed in the last two decades. The third part of the book focuses on joint extraction techniques which attempt to address both the tasks of entity and relation extraction jointly. Several joint extraction techniques are surveyed and summarized in the book. It also covers two joint extraction techniques in detail which are based on the authors’ work. The fourth and the last part of the book focus on complex relation extraction, where the relation types may be N-ary (having more than two entity arguments) and cross-sentence (entity arguments may span multiple sentences). The book highlights several challenges and some recent techniques developed for the extraction of such complex relations including the authors’ technique. The book also covers a few domain-specific applications where the techniques for joint extraction as well as complex relation extraction are applied.

Inhaltsverzeichnis

Frontmatter
Chapter 1. Introduction
Abstract
With the advent of the Internet, a large amount of digital text is generated every day, such as news articles, research publications, blogs, social media, and question answering forums.
Sachin Sharad Pawar, Pushpak Bhattacharyya, Girish Keshav Palshikar
Chapter 2. Literature Survey
Abstract
In this chapter, we describe some of the relevant past literature on Relation Extraction.
Sachin Sharad Pawar, Pushpak Bhattacharyya, Girish Keshav Palshikar
Chapter 3. Joint Inference for End-to-end Relation Extraction
Abstract
As discussed in the previous chapter, better performance for end-to-end relation extraction is achieved when the extraction of entities and relations is carried out jointly.
Sachin Sharad Pawar, Pushpak Bhattacharyya, Girish Keshav Palshikar
Chapter 4. Joint Model for End-to-End Relation Extraction
Abstract
In this chapter, we propose a new approach which combines Neural Networks and Markov Logic Networks to address all the three sub-tasks of end-to-end relation extraction jointly—(i) identifying boundaries of entity mentions, (ii) identifying entity types of these mentions, and (iii) identifying appropriate semantic relation for each pair of mentions. We design the “All Word Pairs” neural network model (AWP-NN) which reduces the solution of the three sub-tasks to predict an appropriate label for each word pair in a given sentence. End-to-end relation extraction output can then be constructed easily from these labels of word pairs.
Sachin Sharad Pawar, Pushpak Bhattacharyya, Girish Keshav Palshikar
Chapter 5. N-ary Cross-Sentence Relation Extraction
Abstract
Most of the past work in relation extraction deals with relations occurring within a sentence and having only two entity arguments.
Sachin Sharad Pawar, Pushpak Bhattacharyya, Girish Keshav Palshikar
Chapter 6. Recent Advances in Entity and Relation Extraction
Abstract
In this chapter, we describe a few recent advances in joint entity and relation extraction as well as N-ary cross-sentence relation extraction.
Sachin Sharad Pawar, Pushpak Bhattacharyya, Girish Keshav Palshikar
Chapter 7. Conclusions
Abstract
This monograph investigated two crucial problems in relation extraction: (i) end-to-end relation extraction involving joint extraction of entities and relations, and (ii) N-ary cross-sentence relation extraction.
Sachin Sharad Pawar, Pushpak Bhattacharyya, Girish Keshav Palshikar
Backmatter
Metadaten
Titel
Investigations in Entity Relationship Extraction
verfasst von
Sachin Sharad Pawar
Pushpak Bhattacharyya
Girish Keshav Palshikar
Copyright-Jahr
2023
Verlag
Springer Nature Singapore
Electronic ISBN
978-981-19-5391-0
Print ISBN
978-981-19-5390-3
DOI
https://doi.org/10.1007/978-981-19-5391-0

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