2020
DOI: 10.3390/s20216028
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A Model for Predictive Maintenance Based on Asset Administration Shell

Abstract: Maintenance is one of the most important aspects in industrial and production environments. Predictive maintenance is an approach that aims to schedule maintenance tasks based on historical data in order to avoid machine failures and reduce the costs due to unnecessary maintenance actions. Approaches for the implementation of a maintenance solution often differ depending on the kind of data to be analyzed and on the techniques and models adopted for the failure forecasts and for maintenance decision-making. No… Show more

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Cited by 48 publications
(30 citation statements)
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“…We discussed the results and interpreted them in the perspective of previous studies and research. Predictive maintenances in Cavalieri-Salafia’s model [ 153 ] includes data acquisition from sensors, data manipulation (filtering, transforming, removing noise), aggregation, prediction, decision-making, scheduling, and further monitoring of status and configuration. Similarly, it describes the process of data acquisition, data processing, and machine decision-making [ 154 ].…”
Section: Discussionmentioning
confidence: 99%
“…We discussed the results and interpreted them in the perspective of previous studies and research. Predictive maintenances in Cavalieri-Salafia’s model [ 153 ] includes data acquisition from sensors, data manipulation (filtering, transforming, removing noise), aggregation, prediction, decision-making, scheduling, and further monitoring of status and configuration. Similarly, it describes the process of data acquisition, data processing, and machine decision-making [ 154 ].…”
Section: Discussionmentioning
confidence: 99%
“…Such flexibility enables the storage of semi-structured data, which best characterizes AAS. Technical reports from the Plattform Industrie 4.0 [34] and academic papers [68][69][70] present AAS implementations in XML and JSON format, which suggests that document-oriented NoSQL systems are advantageous, although it is not the only one capable of storing semi-structured data. This document encoding type is supported by essential communication technologies relevant to the I4.0, such as OPC UA [71] and HTTP.…”
Section: Varietymentioning
confidence: 99%
“…Existing literature mainly focuses on the development of architectures for addressing lower level interoperability challenges of Industry 4.0, such as distributed storage, data aggregation, and service orchestration (Pisching et al, 2018 ; Bicocchi et al, 2019 ; Fraile et al, 2019 ) as well as big data infrastructures (Pedone and Mezgár, 2018 ; Calabrese et al, 2020 ). A considerable amount of research has also focused on architectures for CPS, digital twins, and AAS (Lee et al, 2015 ; Bader and Maleshkova, 2019 ; Bousdekis et al, 2020a ; Cavalieri and Salafia, 2020 ). For more details, the reader may refer to Moghaddam et al ( 2018 ), Cheng et al ( 2018 ), Fraile et al ( 2019 ), and Zeid et al ( 2019 ).…”
Section: Literature Reviewmentioning
confidence: 99%