FORS-EMG: A Novel sEMG Dataset for Hand Gesture Recognition Across Multiple Forearm Orientations
Umme Rumman, Arifa Ferdousi, Bipin Saha, Md. Sazzad Hossain, Md., Johirul Islam, Shamim Ahmad, Mamun Bin Ibne Reaz, Md. Rezaul Islam

TL;DR
This paper introduces a new multichannel sEMG dataset capturing hand gestures across different forearm orientations, enabling improved gesture recognition and prosthetic control research.
Contribution
It provides a novel, publicly available dataset with diverse forearm orientations and evaluates multiple machine learning and deep learning methods for gesture classification.
Findings
LDA achieved 88.58% F1 score with SNTDF features across orientations.
Deep learning models showed promising results in cross-orientation gesture recognition.
The dataset facilitates benchmarking and advancing sEMG-based gesture recognition.
Abstract
Surface electromyography (sEMG) signals hold significant potential for gesture recognition and robust prosthetic hand development. However, sEMG signals are affected by various physiological and dynamic factors, including forearm orientation, electrode displacement, and limb position. Most existing sEMG datasets lack these dynamic considerations. This study introduces a novel multichannel sEMG dataset to evaluate commonly used hand gestures across three distinct forearm orientations. The dataset was collected from nineteen able-bodied subjects performing twelve hand gestures in three forearm orientations--supination, rest, and pronation. Eight MFI EMG electrodes were strategically placed at the elbow and mid-forearm to record high-quality EMG signals. Signal quality was validated through Signal-to-Noise Ratio (SNR) and Signal-to-Motion artifact ratio (SMR) metrics. Hand gesture…
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Taxonomy
TopicsHand Gesture Recognition Systems · Muscle activation and electromyography studies · Hearing Impairment and Communication
MethodsSigmoid Activation · Sparse Evolutionary Training · 1-Dimensional Convolutional Neural Networks · Support Vector Machine · Linear Discriminant Analysis · Tanh Activation · Long Short-Term Memory
