@INPROCEEDINGS{9175871, author={Y. {Hu} and A. {Bishnoi} and R. {Kaur} and R. {Sowers} and M. E. {Hernandez}}, booktitle={2020 42nd Annual International Conference of the IEEE Engineering in Medicine Biology Society (EMBC)}, title={Exploration of Machine Learning to Identify Community Dwelling Older Adults with Balance Dysfunction Using Short Duration Accelerometer Data}, year={2020}, volume={}, number={}, pages={812-815}, abstract={The incidence of fall-related injuries in older adults is high. Given the significant and adverse outcomes that arise from injurious falls in older adults, it is of the utmost importance to identify older adults at greater risk for falls as early as possible. Given that balance dysfunction provides a significant risk factor for falls, an automated and objective identification of balance dysfunction in community dwelling older adults using wearable sensor data when walking may be beneficial. In this study, we examine the feasibility of using wearable sensors, when walking, to identify older adults who have trouble with balance at an early stage using state-of-the-art machine learning techniques. We recruited 21 community dwelling older women. The experimental paradigm consisted of two tasks: Normal walking with a self-selected comfortable speed on an instrumented treadmill and a test of reflexive postural response, using the motor control test (MCT). Based on the MCT, identification of older women with low or high balance function was performed. Using short duration accelerometer data from sensors placed on the knee and hip while walking, supervised machine learning was carried out to classify subjects with low and high balance function. Using a Gradient Boosting Machine (GBM) algorithm, we classified balance function in older adults using 60 seconds of accelerometer data with an average cross validation accuracy of 91.5% and area under the receiver operating characteristic curve (AUC) of 0.97. Early diagnosis of balance dysfunction in community dwelling older adults through the use of user friendly and inexpensive wearable sensors may help in reducing future fall risk in older adults through earlier interventions and treatments, and thereby significantly reduce associated healthcare costs.}, keywords={accelerometers;diseases;gait analysis;geriatrics;health care;injuries;learning (artificial intelligence);mechanoception;medical computing;medical disorders;patient diagnosis;identify community dwelling older adults;balance dysfunction;short duration accelerometer data;older women;receiver operating characteristic curve;AUC;high balance function;gradient boosting machine algorithm;GBM algorithm;accelerometer data;community dwelling older adults;fall risk;time 60.0 s;Accelerometers;Legged locomotion;Wearable sensors;Instruments;Knee;Hip;Classification algorithms;Balance;Gait;Aging;Accelerometer;Statistical analysis;Machine learning}, doi={10.1109/EMBC44109.2020.9175871}, ISSN={2694-0604}, month={July},}