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Applications of Fusion Techniques in E-Commerce Environments: A Literature Review.
Daskalakis, Emmanouil; Remoundou, Konstantina; Peppes, Nikolaos; Alexakis, Theodoros; Demestichas, Konstantinos; Adamopoulou, Evgenia; Sykas, Efstathios.
  • Daskalakis E; Institute of Communication and Computer Systems, National Technical University of Athens, 15773 Athens, Greece.
  • Remoundou K; Institute of Communication and Computer Systems, National Technical University of Athens, 15773 Athens, Greece.
  • Peppes N; Institute of Communication and Computer Systems, National Technical University of Athens, 15773 Athens, Greece.
  • Alexakis T; Institute of Communication and Computer Systems, National Technical University of Athens, 15773 Athens, Greece.
  • Demestichas K; Institute of Communication and Computer Systems, National Technical University of Athens, 15773 Athens, Greece.
  • Adamopoulou E; Institute of Communication and Computer Systems, National Technical University of Athens, 15773 Athens, Greece.
  • Sykas E; Institute of Communication and Computer Systems, National Technical University of Athens, 15773 Athens, Greece.
Sensors (Basel) ; 22(11)2022 May 25.
Article in English | MEDLINE | ID: covidwho-1953881
ABSTRACT
The extreme rise of the Internet of Things and the increasing access of people to web applications have led to the expanding use of diverse e-commerce solutions, which was even more obvious during the COVID-19 pandemic. Large amounts of heterogeneous data from multiple sources reside in e-commerce environments and are often characterized by data source inaccuracy and unreliability. In this regard, various fusion techniques can play a crucial role in addressing such challenges and are extensively used in numerous e-commerce applications. This paper's goal is to conduct an academic literature review of prominent fusion-based solutions that can assist in tackling the everyday challenges the e-commerce environments face as well as in their needs to make more accurate and better business decisions. For categorizing the solutions, a novel 4-fold categorization approach is introduced including product-related, economy-related, business-related, and consumer-related solutions, followed by relevant subcategorizations, based on the wide variety of challenges faced by e-commerce. Results from the 65 fusion-related solutions included in the paper show a great variety of different fusion applications, focusing on the fusion of already existing models and algorithms as well as the existence of a large number of different machine learning techniques focusing on the same e-commerce-related challenge.
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Full text: Available Collection: International databases Database: MEDLINE Main subject: Pandemics / COVID-19 Type of study: Reviews Limits: Humans Language: English Year: 2022 Document Type: Article Affiliation country: S22113998

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Full text: Available Collection: International databases Database: MEDLINE Main subject: Pandemics / COVID-19 Type of study: Reviews Limits: Humans Language: English Year: 2022 Document Type: Article Affiliation country: S22113998