Multimodal characterization and detection of stress types

Bidragets beskrivning

Stress is not just stress - different stress types have different impact on well-being. Understanding one's stress and recovery patterns would be helpful in noticing and avoiding the risk for chronic stress. Currently, tools can detect stress and non-stress quite reliably, but not the type of stress. Using the stress hormone cortisol as one element in detection would help, but currently cortisol samples must be analyzed by experts. However, VTT has developed plaster-like sensors for sweat cortisol, which has potential for self-measurements. We will add this easy, near-real-time cortisol meter into the set of sensors and significantly improve the stress type detection accuracy. We will build the machine learning classifier based on laboratory experiments in which stress is induced a controlled way, and then optimize it using longer-term self-monitoring data. The study will produce novel information of stress dynamics and background factors, and an open data set for other researchers.
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Startår

2022

Slutår

2026

Beviljade finansiering

Mari Johanna Närväinen Orcid -palvelun logo
494 274 €

Finansiär

Finlands Akademi

Typ av finansiering

Akademiprojekt

Övriga uppgifter

Finansieringsbeslutets nummer

351282

Vetenskapsområden

Data- och informationsvetenskap

Forskningsområden

Laskennallinen data-analyysi

Identifierade teman

chemicals, toxicity