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Hauptverfasser: Kuutila, Miikka, Ralph, Paul, Qiu, Huilian Sophie, Santos, Ronnie de Souza, Choetkiertikul, Morakot, Fard, Amin Milani, Alkadhi, Rana, Devroey, Xavier, Robles, Gregorio, Hata, Hideaki, Baltes, Sebastian, Kovalenko, Vladimir, Chakraborty, Shalini, Tuzun, Eray, Arif, Hera, Adisaputri, Gianisa, Garcés, Kelly, Andrade, Anielle S. L., Amedzor, Eyram, Ayoola, Bimpe, Gaspard-Chickoree, Keisha, Hoseyni, Arazoo
Format: Preprint
Veröffentlicht: 2025
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Online-Zugang:https://arxiv.org/abs/2512.00855
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author Kuutila, Miikka
Ralph, Paul
Qiu, Huilian Sophie
Santos, Ronnie de Souza
Choetkiertikul, Morakot
Fard, Amin Milani
Alkadhi, Rana
Devroey, Xavier
Robles, Gregorio
Hata, Hideaki
Baltes, Sebastian
Kovalenko, Vladimir
Chakraborty, Shalini
Tuzun, Eray
Arif, Hera
Adisaputri, Gianisa
Garcés, Kelly
Andrade, Anielle S. L.
Amedzor, Eyram
Ayoola, Bimpe
Gaspard-Chickoree, Keisha
Hoseyni, Arazoo
author_facet Kuutila, Miikka
Ralph, Paul
Qiu, Huilian Sophie
Santos, Ronnie de Souza
Choetkiertikul, Morakot
Fard, Amin Milani
Alkadhi, Rana
Devroey, Xavier
Robles, Gregorio
Hata, Hideaki
Baltes, Sebastian
Kovalenko, Vladimir
Chakraborty, Shalini
Tuzun, Eray
Arif, Hera
Adisaputri, Gianisa
Garcés, Kelly
Andrade, Anielle S. L.
Amedzor, Eyram
Ayoola, Bimpe
Gaspard-Chickoree, Keisha
Hoseyni, Arazoo
contents Context: Recent software engineering (SE) research has highlighted the need for sociotechnical research, implying a demand for customized psychometric scales. Objective: We define the concepts of technical and sociotechnical infrastructure in software engineering, and develop and validate a psychometric scale that measures attitudes toward them. Method: Grounded in theories of infrastructure, attitudes, and prior work on psychometric measurement, we defined the target constructs and generated scale items. The scale was administered to 225 software professionals and evaluated using a split sample. We conducted an exploratory factor analysis (EFA) on one half of the sample to uncover the underlying factor structure and performed a confirmatory factor analysis (CFA) on the other half to validate the structure. Further analyses with the whole sample assessed face, criterion-related, and discriminant validity. Results: EFA supported a two-factor structure (technical and sociotechnical infrastructure), accounting for 65% of the total variance with strong loadings. CFA confirmed excellent model fit. Face and content validity were supported by the item content reflecting cognitive, affective, and behavioral components. Both subscales were correlated with job satisfaction, perceived autonomy, and feedback from the job itself, supporting convergent validity. Regression analysis supported criterion-related validity, while the Heterotrait-Monotrait ratio of correlations (HTMT), the Fornell-Larcker criterion, and model comparison all supported discriminant validity. Discussion: The resulting scale is a valid instrument for measuring attitudes toward technical and sociotechnical infrastructure in software engineering research. Our work contributes to ongoing efforts to integrate psychological measurement rigor into empirical and behavioral software engineering research.
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publishDate 2025
record_format arxiv
spellingShingle The Software Infrastructure Attitude Scale (SIAS): A Questionnaire Instrument for Measuring Professionals' Attitudes Toward Technical and Sociotechnical Infrastructure
Kuutila, Miikka
Ralph, Paul
Qiu, Huilian Sophie
Santos, Ronnie de Souza
Choetkiertikul, Morakot
Fard, Amin Milani
Alkadhi, Rana
Devroey, Xavier
Robles, Gregorio
Hata, Hideaki
Baltes, Sebastian
Kovalenko, Vladimir
Chakraborty, Shalini
Tuzun, Eray
Arif, Hera
Adisaputri, Gianisa
Garcés, Kelly
Andrade, Anielle S. L.
Amedzor, Eyram
Ayoola, Bimpe
Gaspard-Chickoree, Keisha
Hoseyni, Arazoo
Software Engineering
Context: Recent software engineering (SE) research has highlighted the need for sociotechnical research, implying a demand for customized psychometric scales. Objective: We define the concepts of technical and sociotechnical infrastructure in software engineering, and develop and validate a psychometric scale that measures attitudes toward them. Method: Grounded in theories of infrastructure, attitudes, and prior work on psychometric measurement, we defined the target constructs and generated scale items. The scale was administered to 225 software professionals and evaluated using a split sample. We conducted an exploratory factor analysis (EFA) on one half of the sample to uncover the underlying factor structure and performed a confirmatory factor analysis (CFA) on the other half to validate the structure. Further analyses with the whole sample assessed face, criterion-related, and discriminant validity. Results: EFA supported a two-factor structure (technical and sociotechnical infrastructure), accounting for 65% of the total variance with strong loadings. CFA confirmed excellent model fit. Face and content validity were supported by the item content reflecting cognitive, affective, and behavioral components. Both subscales were correlated with job satisfaction, perceived autonomy, and feedback from the job itself, supporting convergent validity. Regression analysis supported criterion-related validity, while the Heterotrait-Monotrait ratio of correlations (HTMT), the Fornell-Larcker criterion, and model comparison all supported discriminant validity. Discussion: The resulting scale is a valid instrument for measuring attitudes toward technical and sociotechnical infrastructure in software engineering research. Our work contributes to ongoing efforts to integrate psychological measurement rigor into empirical and behavioral software engineering research.
title The Software Infrastructure Attitude Scale (SIAS): A Questionnaire Instrument for Measuring Professionals' Attitudes Toward Technical and Sociotechnical Infrastructure
topic Software Engineering
url https://arxiv.org/abs/2512.00855