A Fast and Low-Impact Embedded Orientation Correction Algorithm for Hand Gesture Recognition Armbands
Hand gesture recognition is a prominent topic in the recent literature, with surface ElectroMyoGraphy (sEMG) recognized as a key method for wearable Human–Machine Interfaces (HMIs). However, sensor placement still significantly impacts systems performance. This study addresses sensor displacement by...
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          | Published in | Sensors (Basel, Switzerland) Vol. 25; no. 7; p. 2188 | 
|---|---|
| Main Authors | , , , , | 
| Format | Journal Article | 
| Language | English | 
| Published | 
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        30.03.2025
     MDPI  | 
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| Online Access | Get full text | 
| ISSN | 1424-8220 1424-8220  | 
| DOI | 10.3390/s25072188 | 
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| Abstract | Hand gesture recognition is a prominent topic in the recent literature, with surface ElectroMyoGraphy (sEMG) recognized as a key method for wearable Human–Machine Interfaces (HMIs). However, sensor placement still significantly impacts systems performance. This study addresses sensor displacement by introducing a fast and low-impact orientation correction algorithm for sEMG-based HMI armbands. The algorithm includes a calibration phase to estimate armband orientation and real-time data correction, requiring only two distinct hand gestures in terms of sEMG activation. This ensures hardware and database independence and eliminates the need for model retraining, as data correction occurs prior to classification or prediction. The algorithm was implemented in a hand gesture HMI system featuring a custom seven-channel sEMG armband with an Artificial Neural Network (ANN) capable of recognizing nine gestures. Validation demonstrated its effectiveness, achieving 93.36% average prediction accuracy with arbitrary armband wearing orientation. The algorithm also has minimal impact on power consumption and latency, requiring just an additional 500 μW and introducing a latency increase of 408 μs. These results highlight the algorithm’s efficacy, general applicability, and efficiency, presenting it as a promising solution to the electrode-shift issue in sEMG-based HMI applications. | 
    
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| AbstractList | Hand gesture recognition is a prominent topic in the recent literature, with surface ElectroMyoGraphy (sEMG) recognized as a key method for wearable Human–Machine Interfaces (HMIs). However, sensor placement still significantly impacts systems performance. This study addresses sensor displacement by introducing a fast and low-impact orientation correction algorithm for sEMG-based HMI armbands. The algorithm includes a calibration phase to estimate armband orientation and real-time data correction, requiring only two distinct hand gestures in terms of sEMG activation. This ensures hardware and database independence and eliminates the need for model retraining, as data correction occurs prior to classification or prediction. The algorithm was implemented in a hand gesture HMI system featuring a custom seven-channel sEMG armband with an Artificial Neural Network (ANN) capable of recognizing nine gestures. Validation demonstrated its effectiveness, achieving 93.36% average prediction accuracy with arbitrary armband wearing orientation. The algorithm also has minimal impact on power consumption and latency, requiring just an additional 500 μW and introducing a latency increase of 408 μs. These results highlight the algorithm’s efficacy, general applicability, and efficiency, presenting it as a promising solution to the electrode-shift issue in sEMG-based HMI applications. Hand gesture recognition is a prominent topic in the recent literature, with surface ElectroMyoGraphy (sEMG) recognized as a key method for wearable Human-Machine Interfaces (HMIs). However, sensor placement still significantly impacts systems performance. This study addresses sensor displacement by introducing a fast and low-impact orientation correction algorithm for sEMG-based HMI armbands. The algorithm includes a calibration phase to estimate armband orientation and real-time data correction, requiring only two distinct hand gestures in terms of sEMG activation. This ensures hardware and database independence and eliminates the need for model retraining, as data correction occurs prior to classification or prediction. The algorithm was implemented in a hand gesture HMI system featuring a custom seven-channel sEMG armband with an Artificial Neural Network (ANN) capable of recognizing nine gestures. Validation demonstrated its effectiveness, achieving 93.36% average prediction accuracy with arbitrary armband wearing orientation. The algorithm also has minimal impact on power consumption and latency, requiring just an additional 500 μW and introducing a latency increase of 408 μs. These results highlight the algorithm's efficacy, general applicability, and efficiency, presenting it as a promising solution to the electrode-shift issue in sEMG-based HMI applications.Hand gesture recognition is a prominent topic in the recent literature, with surface ElectroMyoGraphy (sEMG) recognized as a key method for wearable Human-Machine Interfaces (HMIs). However, sensor placement still significantly impacts systems performance. This study addresses sensor displacement by introducing a fast and low-impact orientation correction algorithm for sEMG-based HMI armbands. The algorithm includes a calibration phase to estimate armband orientation and real-time data correction, requiring only two distinct hand gestures in terms of sEMG activation. This ensures hardware and database independence and eliminates the need for model retraining, as data correction occurs prior to classification or prediction. The algorithm was implemented in a hand gesture HMI system featuring a custom seven-channel sEMG armband with an Artificial Neural Network (ANN) capable of recognizing nine gestures. Validation demonstrated its effectiveness, achieving 93.36% average prediction accuracy with arbitrary armband wearing orientation. The algorithm also has minimal impact on power consumption and latency, requiring just an additional 500 μW and introducing a latency increase of 408 μs. These results highlight the algorithm's efficacy, general applicability, and efficiency, presenting it as a promising solution to the electrode-shift issue in sEMG-based HMI applications.  | 
    
| Audience | Academic | 
    
| Author | Motto Ros, Paolo Rossi, Fabio Demarchi, Danilo Prestia, Andrea Mongardi, Andrea  | 
    
| AuthorAffiliation | Department of Electronics and Telecommunications, Politecnico di Torino, 10129 Turin, Italy; andrea.mongardi@polito.it (A.M.); fabio.rossi@polito.it (F.R.); paolo.mottoros@polito.it (P.M.R.); danilo.demarchi@polito.it (D.D.) | 
    
| AuthorAffiliation_xml | – name: Department of Electronics and Telecommunications, Politecnico di Torino, 10129 Turin, Italy; andrea.mongardi@polito.it (A.M.); fabio.rossi@polito.it (F.R.); paolo.mottoros@polito.it (P.M.R.); danilo.demarchi@polito.it (D.D.) | 
    
| Author_xml | – sequence: 1 givenname: Andrea orcidid: 0000-0003-2747-6167 surname: Mongardi fullname: Mongardi, Andrea – sequence: 2 givenname: Fabio orcidid: 0000-0001-8525-3477 surname: Rossi fullname: Rossi, Fabio – sequence: 3 givenname: Andrea orcidid: 0000-0002-7426-539X surname: Prestia fullname: Prestia, Andrea – sequence: 4 givenname: Paolo orcidid: 0000-0002-6955-3098 surname: Motto Ros fullname: Motto Ros, Paolo – sequence: 5 givenname: Danilo orcidid: 0000-0001-5374-1679 surname: Demarchi fullname: Demarchi, Danilo  | 
    
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| SubjectTerms | Algorithms Analysis Calibration Electrodes Electromyography - methods embedded algorithm Gestures Hand - physiology hand gesture recognition Humans human–machine interface Machine learning Medical equipment Neural networks Neural Networks, Computer Sensors surface electromyography wearable armband Wearable Electronic Devices  | 
    
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| Title | A Fast and Low-Impact Embedded Orientation Correction Algorithm for Hand Gesture Recognition Armbands | 
    
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