2018
DOI: 10.1007/s11192-018-2735-5
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Data measurement in research information systems: metrics for the evaluation of data quality

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Cited by 35 publications
(30 citation statements)
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“…Detailed explanations on this topic and the research question "How can the data quality be measured in RIS?" can be found in [25]. After the data quality measurements have been carried out in the RIS, their measurement results must be checked during the analysis phase and the causes of poor data quality must be determined.…”
Section: Data Quality Dimensions Requirementsmentioning
confidence: 99%
“…Detailed explanations on this topic and the research question "How can the data quality be measured in RIS?" can be found in [25]. After the data quality measurements have been carried out in the RIS, their measurement results must be checked during the analysis phase and the causes of poor data quality must be determined.…”
Section: Data Quality Dimensions Requirementsmentioning
confidence: 99%
“…A current research information system (CRIS) is a specialized database or federated information system to collect, manage and provide information on research activities and results, such as projects, third-party funds, patents, cooperation partners, prices and publications [9,10,11]. The building blocks of a CRIS architecture can be described as a three-stage structure [10] (see Figure 1). The data access layer contains the internal and external data sources, e.g., operational databases (human resources, finance, project management…), open repositories, identifiers (ORCID, DOI, etc.…”
Section: Current Research Information Systemsmentioning
confidence: 99%
“…The presentation layer (frontend) shows the target group-specific preparation and presentation of the analysis results for the user, which are made available in the form of reports using business intelligence tools, via portals, websites, etc. (for more details see the papers from [10][11][12][13]).…”
Section: Current Research Information Systemsmentioning
confidence: 99%
“…To identify the external variables in the context of RIS, an empirical study has highlighted the important drivers of data quality to increase user acceptance in RIS. Data quality in this context includes four aspects [3], [6]:…”
mentioning
confidence: 99%
“…• Completeness as the degree to which the system contains all the necessary information These four aspects in the context of RIS have been explored in References [3] and [6] and their reliability and validity have been assessed in the context of the empirical study of 51 German RIS institutions with several items (more details can be found in this paper [6]). Moreover, it was found that this detailing of the data quality construct makes sense for the RIS acceptance model, as it provides more information than the important constructs on the structure of the perceived data quality for RIS users, thus opening up the possibility of targeted data quality management.…”
mentioning
confidence: 99%