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  1. Research Outputs

Dealing With Data Heterogeneity in a Data Fusion Perspective: Models, Methodologies, and Algorithms

Chapter
Publication Date:
2019
Short description:
Dealing With Data Heterogeneity in a Data Fusion Perspective: Models, Methodologies, and Algorithms / Mandreoli, F., Montangero, M. (DATA HANDLING IN SCIENCE AND TECHNOLOGY). - In: Data Handling in Science and Technology[s.l] : Elsevier Ltd, 2019. - ISBN 9780444639844. - pp. 235-270 [10.1016/B978-0-444-63984-4.00009-0]
abstract:
Dealing with multiple manifestations of the same real-world entity across several data sources is a very common challenge for many modern applications, including life science applications. This challenge is referenced as data heterogeneity in the data management research field where the final aim is often to get a unified or integrated view of the real-world entities represented in the data sources. Data heterogeneity is a long-standing challenge that has attracted much interest in different computer science disciplines. The main aim of the chapter is to show how data heterogeneity problems that are typical of life science application contexts can be afforded by adopting systematic solutions stemming from the computer science field. To this end, it focusses on the main sources of heterogeneity in the life science context, presents the main problems that arise when dealing with heterogeneity, and provides a review of the solutions proposed in the computer science literature.
Iris type:
Capitolo/Saggio
Keywords:
Data fusion; Data heterogeneity; Data integration; Entity resolution; Life science data sources
List of contributors:
Mandreoli, F.; Montangero, M.
Authors of the University:
MANDREOLI Federica
MONTANGERO Manuela
Handle:
https://iris.unimore.it/handle/11380/1188511
Book title:
Data Handling in Science and Technology
Published in:
DATA HANDLING IN SCIENCE AND TECHNOLOGY
Series
  • Overview

Overview

URL

http://www.elsevier.com/wps/find/bookdescription.cws_home/BS_DHST/description#description
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