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Mobile apps are increasingly utilized to gather data for various healthcare aspects. Furthermore, mobile apps are used to administer interventions (e.g., breathing exercises)to individuals. In this context, mobile crowdsensing constitutes a technology, which is used to gather valuable medical databased on the power of the crowd and the offered computationalcapabilities of mobile devices. Notably, collecting data withmobile crowdsensing solutions has several advantages comparedto traditional assessment methods when gathering data overtime. For example, data is gathered with high ecological validity, since smartphones can be unobtrusively used in everyday life. Existing approaches have shown that based on these advantages new medical insights, for example, for the tinnitus disease, can be revealed. In the work at hand, data of a developed mHealth crowdsensing platform that assesses the stress level and fluctuations of the platform users in daily life was investigated. More specifically, data of 1797 daily measurements on GPS and stress-related data in 77 users were analyzed. Using this data source, machine learning algorithms have been applied with the goalto predict stress-related parameters based on the GPS data of the platform users. Results show that predictions become possible that (1) enable meaningful interpretations as well as (2) indicate the directions for further investigations. In essence, the findings revealed first insights into the stress situation of individuals over time in order to improve their quality of life. Altogether, the work at hand shows that mobile crowdsensing can be valuably utilized in the context of stress on one hand. On the other, machine learning algorithms are able to utilize geospatial data of stress measurements that was gathered by a crowdsensing platform with the goal to improve the quality of life of its participating crowd users.
Mobile apps are increasingly utilized to gather data for various healthcare aspects. Furthermore, mobile apps are used to administer interventions (e.g., breathing exercises) to individuals. In this context, mobile crowdsensing constitutes a technology, which is used to gather valuable medical data based on the power of the crowd and the offered computational capabilities of mobile devices. Notably, collecting data with mobile crowdsensing solutions has several advantages compared to traditional assessment methods when gathering data over time. For example, data is gathered with high ecological validity, since smartphones can be unobtrusively used in everyday life. Existing approaches have shown that based on these advantages new medical insights, for example, for the tinnitus disease, can be revealed. In the work at hand, data of a developed mHealth crowdsensing platform that assesses the stress level and fluctuations of the platform users in daily life was investigated. More specifically, data of 1797 daily measurements on GPS and stress-related data in 77 users were analyzed. Using this data source, machine learning algorithms have been applied with the goal to predict stress-related parameters based on the GPS data of the platform users. Results show that predictions become possible that (1) enable meaningful interpretations as well as (2) indicate the directions for further investigations. In essence, the findings revealed first insights into the stress situation of individuals over time in order to improve their quality of life. Altogether, the work at hand shows that mobile crowdsensing can be valuably utilized in the context of stress on one hand. On the other, machine learning algorithms are able to utilize geospatial data of stress measurements that was gathered by a crowdsensing platform with the goal to improve the quality of life of its participating crowd users.
Ähnlich wie die Erfindung des Buchdrucks wird die „digitale Revolution“, das deutet sich schon im Namen an, als umfassender Paradigmenwechsel für die Gesellschaft angesehen. Dabei umfasst Digitalisierung eine Vielzahl von Prozessen, die alle Lebensbereiche erfassen: Wirtschaft und Verkehr, Landwirtschaft und Ernährung, Gesundheit und Freizeit, Politik, Kunst und Kommunikation. Digitale Medien verändern Beziehungen, Formen der Vergemeinschaftung und das Selbstverständnis von Individuen – und mit diesen nicht zuletzt das Verständnis und die Praxis von Spiritualität.
Die Arbeitsgemeinschaft Theologie der Spiritualität hat sich in ihrer Jahrestagung 2018 unter dem Titel „Spiritualität@Digitalität“ der Aufgabe gestellt, das spannungsreiche Feld zwischen Spiritualität und digitalen Medien zu beleuchten. Welche Möglichkeiten, Chancen und Inspirationen, aber auch welche Grenzen, Gefahren und Verführungen bedeuten digitale Medien für die Spiritualität? Inwiefern verändern sich in einer digitalisierten Welt geistliche Beziehungen, Prozesse und Methoden? Welche Auswirkungen hat die Bewegung im virtuellen Raum auf spirituelle Identitäten und Profile? Diese und andere Fragen wurden auf der Tagung aus den Perspektiven verschiedener theologischer Fächer verhandelt.