遇见数据集

Raw Surface Electromyography Dataset from Myo Arm Band

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NIAID Data Ecosystem2026-03-12 收录
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The data set is a part of the ongoing research work to perform gesture classification using Machine Learning and Deep Learning Techniques. The dataset consists of samples acquired from 10 consenting users. Each user performed 5 different hand gestures. The gesture classes include Index Finger Extension, Middle Finger Extension, Cylindrical Grip, Closed Grip, and Rest. The Myo Armband by Thalmic labs was used for data acquisition. The armband consists of 8 Surface EMG sensor units. The 8 sensors read data every 5ms. This data is stored in a CSV file with the timestamp. The sensor names are labeled as well. Each user wore the armband on their forearm and performed the 5 different gestures.100 instances were collected for each user for each of the gestures. one instance included performing the gesture within a window of 2 seconds followed by a rest window of 2 seconds. This pattern of flexion and extension gestures is performed to acquire the data. Each session was restricted to a batch of 25 instances considering the fatigue that sets in after constant flexion and extension gestures. The gesture data corresponding to each user are organized into 10 folders labeled as "User #", Inside each User folder, the file corresponding to each gesture are organized in a folder labeled with the gesture names "Index Finger Extension", "Middle Finger Extension", "Cylindrical Grip", "Closed Grip", and "Rest". Each CSV file is labeled as "u#-gesture-name-set-#.csv".

创建时间:
2021-03-26
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