Hyperspectral Face Recognition with Adaptive and Parallel SVMs in Partially Hidden Face Scenarios
Hyperspectral imaging opens up new opportunities for masked face recognition via discrimination of the spectral information obtained by hyperspectral sensors. In this work, we present a novel algorithm to extract facial spectral-features from different regions of interests by performing computer vis...
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          | Published in | Sensors (Basel, Switzerland) Vol. 22; no. 19; p. 7641 | 
|---|---|
| Main Authors | , , , , , | 
| Format | Journal Article | 
| Language | English | 
| Published | 
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        09.10.2022
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| Online Access | Get full text | 
| ISSN | 1424-8220 1424-8220  | 
| DOI | 10.3390/s22197641 | 
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| Abstract | Hyperspectral imaging opens up new opportunities for masked face recognition via discrimination of the spectral information obtained by hyperspectral sensors. In this work, we present a novel algorithm to extract facial spectral-features from different regions of interests by performing computer vision techniques over the hyperspectral images, particularly Histogram of Oriented Gradients. We have applied this algorithm over the UWA-HSFD dataset to extract the facial spectral-features and then a set of parallel Support Vector Machines with custom kernels, based on the cosine similarity and Euclidean distance, have been trained on fly to classify unknown subjects/faces according to the distance of the visible facial spectral-features, i.e., the regions that are not concealed by a face mask or scarf. The results draw up an optimal trade-off between recognition accuracy and compression ratio in accordance with the facial regions that are not occluded. | 
    
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| AbstractList | Hyperspectral imaging opens up new opportunities for masked face recognition via discrimination of the spectral information obtained by hyperspectral sensors. In this work, we present a novel algorithm to extract facial spectral-features from different regions of interests by performing computer vision techniques over the hyperspectral images, particularly Histogram of Oriented Gradients. We have applied this algorithm over the UWA-HSFD dataset to extract the facial spectral-features and then a set of parallel Support Vector Machines with custom kernels, based on the cosine similarity and Euclidean distance, have been trained on fly to classify unknown subjects/faces according to the distance of the visible facial spectral-features, i.e., the regions that are not concealed by a face mask or scarf. The results draw up an optimal trade-off between recognition accuracy and compression ratio in accordance with the facial regions that are not occluded.Hyperspectral imaging opens up new opportunities for masked face recognition via discrimination of the spectral information obtained by hyperspectral sensors. In this work, we present a novel algorithm to extract facial spectral-features from different regions of interests by performing computer vision techniques over the hyperspectral images, particularly Histogram of Oriented Gradients. We have applied this algorithm over the UWA-HSFD dataset to extract the facial spectral-features and then a set of parallel Support Vector Machines with custom kernels, based on the cosine similarity and Euclidean distance, have been trained on fly to classify unknown subjects/faces according to the distance of the visible facial spectral-features, i.e., the regions that are not concealed by a face mask or scarf. The results draw up an optimal trade-off between recognition accuracy and compression ratio in accordance with the facial regions that are not occluded. Hyperspectral imaging opens up new opportunities for masked face recognition via discrimination of the spectral information obtained by hyperspectral sensors. In this work, we present a novel algorithm to extract facial spectral-features from different regions of interests by performing computer vision techniques over the hyperspectral images, particularly Histogram of Oriented Gradients. We have applied this algorithm over the UWA-HSFD dataset to extract the facial spectral-features and then a set of parallel Support Vector Machines with custom kernels, based on the cosine similarity and Euclidean distance, have been trained on fly to classify unknown subjects/faces according to the distance of the visible facial spectral-features, i.e., the regions that are not concealed by a face mask or scarf. The results draw up an optimal trade-off between recognition accuracy and compression ratio in accordance with the facial regions that are not occluded.  | 
    
| Audience | Academic | 
    
| Author | Caba, Julián Rincón, Fernando López, Juan Carlos de la Torre, José Antonio Barba, Jesús Escolar, Soledad  | 
    
| AuthorAffiliation | Technology and Information Systems Department, School of Computer Science, University of Castilla-La Mancha, 13071 Ciudad Real, Spain | 
    
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| Cites_doi | 10.1016/j.imavis.2021.104341 10.1109/ACOMP50827.2020.00029 10.1109/TPAMI.2003.1251148 10.1109/ICMA.2019.8816192 10.1007/978-3-319-97909-0_46 10.1145/3469877.3490621 10.36227/techrxiv.12136425.v1 10.1007/978-3-030-66665-1_6 10.1109/FG.2018.00020 10.1016/S1005-8885(13)60038-2 10.1109/TIFS.2012.2214212 10.1016/j.patcog.2021.108473 10.3390/electronics10212666 10.23919/EUSIPCO.2018.8553006 10.1007/s11042-021-11772-5 10.1109/TPAMI.2013.48 10.1049/iet-ipr.2016.0722 10.1109/CVPR.2015.7298682 10.1109/TAFFC.2015.2485205 10.1109/TSMCA.2010.2052603 10.1007/s11042-021-10711-8 10.3390/app9204397 10.1109/ACCESS.2019.2897213 10.1016/j.measurement.2020.108288 10.1109/TIP.2015.2393057 10.1016/j.envpol.2015.05.041 10.1109/ACCESS.2021.3133446 10.1109/CVPR.2017.728 10.1109/CVPR.2016.90 10.1109/ACCESS.2020.2977386  | 
    
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| SubjectTerms | Algorithms biometrics Biometry Computer vision Coronaviruses COVID-19 Datasets Deep learning Disease transmission Facial Recognition Facial recognition technology hyperspectral compression hyperspectral imaging Machine vision Masks Pandemics Sensors Support Vector Machine SVM  | 
    
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| Title | Hyperspectral Face Recognition with Adaptive and Parallel SVMs in Partially Hidden Face Scenarios | 
    
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