Micro-Doppler Radar Gait Measurement to Detect Age- and Fall Risk-Related Differences in Gait: A Simulation Study on Comparison of Deep Learning and Gait Parameter-Based Approaches
暂无分享,去创建一个
Kenshi Saho | Keitaro Shioiri | Yoshiyuki Kobayashi | Masahiro Fujimoto | M. Fujimoto | K. Saho | Yoshiyuki Kobayashi | Keitaro Shioiri
[1] Barbara Sternfeld,et al. Outdoor falls among middle-aged and older adults: a neglected public health problem. , 2006, American journal of public health.
[2] Moeness G. Amin,et al. Radar-Based Human-Motion Recognition With Deep Learning: Promising applications for indoor monitoring , 2019, IEEE Signal Processing Magazine.
[3] Ronald V. Croce,et al. Interaction of age, cognitive function, and gait performance in 50–80-year-olds , 2014, AGE.
[4] Queenie Lin Ling Tan,et al. Reference Values of Gait Speed and Gait Spatiotemporal Parameters for a South East Asian Population: The Yishun Study , 2020, Clinical interventions in aging.
[5] Jian Sun,et al. Deep Residual Learning for Image Recognition , 2015, 2016 IEEE Conference on Computer Vision and Pattern Recognition (CVPR).
[6] Ali Cafer Gürbüz,et al. Knowledge Exploitation for Human Micro-Doppler Classification , 2015, IEEE Geoscience and Remote Sensing Letters.
[7] J. Suykens,et al. A tutorial on support vector machine-based methods for classification problems in chemometrics. , 2010, Analytica chimica acta.
[8] Masao Masugi,et al. Gait Classification of Young Adults, Elderly Non-Fallers, and Elderly Fallers Using Micro-Doppler Radar Signals: Simulation Study , 2017, IEEE Sensors Journal.
[9] Wenbin Ye,et al. Human Activity Classification Based on Micro-Doppler Signatures by Multiscale and Multitask Fourier Convolutional Neural Network , 2020, IEEE Sensors Journal.
[10] Kenshi Saho,et al. Person Identification Based on Micro-Doppler Signatures of Sit-to-Stand and Stand-to-Sit Movements Using a Convolutional Neural Network , 2020, IEEE Sensors Letters.
[11] Mu-Chen Chen,et al. Credit scoring with a data mining approach based on support vector machines , 2007, Expert Syst. Appl..
[12] Ann-Kathrin Seifert,et al. Toward Unobtrusive In-Home Gait Analysis Based on Radar Micro-Doppler Signatures , 2018, IEEE Transactions on Biomedical Engineering.
[13] Mariano Alcañiz,et al. Reliability and comparison of Kinect-based methods for estimating spatiotemporal gait parameters of healthy and post-stroke individuals. , 2018, Journal of biomechanics.
[14] Yuan He,et al. Person Identification Using Micro-Doppler Signatures of Human Motions and UWB Radar , 2019, IEEE Microwave and Wireless Components Letters.
[15] A Stefanie Mikolaizak,et al. Gait parameter risk factors for falls under simple and dual task conditions in cognitively impaired older people. , 2013, Gait & posture.
[16] A. Shumway-cook,et al. Predicting the probability for falls in community-dwelling older adults. , 1997, Physical therapy.
[17] Anika Steinert,et al. Using New Camera-Based Technologies for Gait Analysis in Older Adults in Comparison to the Established GAITRite System , 2019, Sensors.
[18] S. Z. Gürbüz,et al. Deep convolutional autoencoder for radar-based classification of similar aided and unaided human activities , 2018, IEEE Transactions on Aerospace and Electronic Systems.
[19] Lukas Adamowicz,et al. Wearables and Deep Learning Classify Fall Risk From Gait in Multiple Sclerosis , 2020, IEEE Journal of Biomedical and Health Informatics.
[20] Moeness Amin,et al. Fall Detection Using Deep Learning in Range-Doppler Radars , 2018, IEEE Transactions on Aerospace and Electronic Systems.
[21] Li-Shan Chou,et al. Sagittal plane momentum control during walking in elderly fallers. , 2016, Gait & posture.
[22] Hongnian Yu,et al. Validity and Consistency of Concurrent Extraction of Gait Features Using Inertial Measurement Units and Motion Capture System , 2021, IEEE Sensors Journal.
[23] Shobha Sundar Ram,et al. Radar cross-sections of pedestrians at automotive radar frequencies using ray tracing and point scatterer modelling , 2020 .
[24] Ashirbad Pradhan,et al. Biomechanical Parameters and Clinical Assessment Scores for Identifying Elderly Fallers Based on Balance and Dynamic Tasks , 2020, IEEE Access.
[25] Yousra Ben Jemaa,et al. Gait-based human age classification using a silhouette model , 2018, IET Biom..
[26] Kenshi Saho,et al. Gait Classification of Healthy Young and Elderly Adults Using Micro-Doppler Radar Remote Sensing , 2018, 2018 Joint 10th International Conference on Soft Computing and Intelligent Systems (SCIS) and 19th International Symposium on Advanced Intelligent Systems (ISIS).