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Lateralization Effects in Electrodermal Activity Data Collected Using Wearable Devices.

, , , , , and . Proc. ACM Interact. Mob. Wearable Ubiquitous Technol., 8 (1): 2:1-2:30 (March 2024)

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On the Impact of Lateralization in Physiological Signals from Wearable Sensors., , , , , and . UbiComp/ISWC Adjunct, page 472-477. ACM, (2022)The Role of Model Personalization for Sleep Stage and Sleep Quality Recognition Using Wearables., , , , , and . IEEE Pervasive Comput., 21 (2): 69-77 (2022)Enhancing XGBoost with Heuristic Smoothing for Transportation Mode and Activity Recognition., , , , , and . UbiComp/ISWC Adjunct, page 540-545. ACM, (2023)Handling Missing Data For Sleep Monitoring Systems., , , , , , , , and . ACII, page 1-8. IEEE, (2022)Lateralization Effects in Electrodermal Activity Data Collected Using Wearable Devices., , , , , and . Proc. ACM Interact. Mob. Wearable Ubiquitous Technol., 8 (1): 2:1-2:30 (March 2024)BiHeartS: Bilateral Heart Rate from multiple devices and body positions for Sleep measurement Dataset., , , and . CoRR, (2023)Recognition of Engagement from Electrodermal Activity Data Across Different Contexts., , , and . UbiComp/ISWC Adjunct, page 108-112. ACM, (2023)Heart Rate During Sleep Measured Using Finger-, Wrist- and Chest-Worn Devices: A Comparison Study., , , , , and . PervasiveHealth, volume 488 of Lecture Notes of the Institute for Computer Sciences, Social Informatics and Telecommunications Engineering, page 18-32. Springer, (2022)On the mismatch between measured and perceived sleep quality., , , , and . UbiComp/ISWC Adjunct, page 148-152. ACM, (2022)