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HYPERAKTIV: An Activity Dataset from Patients with Attention-Deficit/Hyperactivity Disorder (ADHD)

Published: 22 September 2021 Publication History

Abstract

Machine learning research within healthcare frequently lacks the public data needed to be fully reproducible and comparable. Datasets are often restricted due to privacy concerns and legal requirements that come with patient-related data. Consequentially, many algorithms and models get published on the same topic without a standard benchmark to measure against. Therefore, this paper presents HYPERAKTIV, a public dataset containing health, activity, and heart rate data from patients diagnosed with attention deficit hyperactivity disorder, better known as ADHD. The dataset consists of data collected from 51 patients with ADHD and 52 clinical controls. In addition to the activity and heart rate data, we also include a series of patient attributes such as their age, sex, and information about their mental state, as well as output data from a computerized neuropsychological test. Together with the presented dataset, we also provide baseline experiments using traditional machine learning algorithms to predict ADHD based on the included activity data. We hope that this dataset can be used as a starting point for computer scientists who want to contribute to the field of mental health, and as a common benchmark for future work in ADHD analysis.

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Cited By

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  • (2024)Mobility-Based Community Analysis for Early Detection of Complex Psychiatric Disorders2024 IEEE 12th International Conference on Healthcare Informatics (ICHI)10.1109/ICHI61247.2024.00034(205-213)Online publication date: 3-Jun-2024
  • (2024)Optimal interval and feature selection in activity data for detecting attention deficit hyperactivity disorderComputers in Biology and Medicine10.1016/j.compbiomed.2024.108909179:COnline publication date: 18-Oct-2024
  • (2024)Advancing ADHD diagnosis: using machine learning for unveiling ADHD patterns through dimensionality reduction on IoMT actigraphy signalsInternational Journal of Information Technology10.1007/s41870-024-01895-xOnline publication date: 7-May-2024
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        cover image ACM Conferences
        MMSys '21: Proceedings of the 12th ACM Multimedia Systems Conference
        June 2021
        254 pages
        ISBN:9781450384346
        DOI:10.1145/3458305
        This work is licensed under a Creative Commons Attribution-NonCommercial International 4.0 License.

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        Published: 22 September 2021

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        Author Tags

        1. ADHD
        2. Actigraphy
        3. Artificial Intelligence
        4. Attention-Deficit Hyperactivity Disorder
        5. Dataset
        6. Heart Rate
        7. Machine Learning
        8. Motor Activity

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        MMSys '21: 12th ACM Multimedia Systems Conference
        September 28 - October 1, 2021
        Istanbul, Turkey

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        MMSys '21 Paper Acceptance Rate 18 of 55 submissions, 33%;
        Overall Acceptance Rate 176 of 530 submissions, 33%

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        View all
        • (2024)Mobility-Based Community Analysis for Early Detection of Complex Psychiatric Disorders2024 IEEE 12th International Conference on Healthcare Informatics (ICHI)10.1109/ICHI61247.2024.00034(205-213)Online publication date: 3-Jun-2024
        • (2024)Optimal interval and feature selection in activity data for detecting attention deficit hyperactivity disorderComputers in Biology and Medicine10.1016/j.compbiomed.2024.108909179:COnline publication date: 18-Oct-2024
        • (2024)Advancing ADHD diagnosis: using machine learning for unveiling ADHD patterns through dimensionality reduction on IoMT actigraphy signalsInternational Journal of Information Technology10.1007/s41870-024-01895-xOnline publication date: 7-May-2024
        • (2023)A Network Analysis Approach for the Classification of Psychiatric Disorders Using Multi-Modal Data2023 IEEE International Conference on Bioinformatics and Biomedicine (BIBM)10.1109/BIBM58861.2023.10385720(2831-2836)Online publication date: 5-Dec-2023
        • (2023)Machine and Deep Learning Algorithms for ADHD Detection: A ReviewInnovations in Machine and Deep Learning10.1007/978-3-031-40688-1_8(163-191)Online publication date: 29-Sep-2023
        • (2022)Accurate Identification of ADHD among Adults Using Real-Time Activity DataBrain Sciences10.3390/brainsci1207083112:7(831)Online publication date: 26-Jun-2022

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