Utilize este identificador para referenciar este registo: https://hdl.handle.net/1822/78013

TítuloWeakness evaluation on in-vehicle violence detection: an assessment of X3D, C2D and I3D against FGSM and PGD
Autor(es)Santos, Flávio
Durães, Dalila
Marcondes, Francisco S.
Hammerschmidt, Niklas
Machado, José Manuel
Novais, Paulo
Palavras-chaveAction recognition
Deep learning
In-car recognition
Violence recognition
DataMar-2022
EditoraMDPI
RevistaElectronics
CitaçãoSantos, F.; Durães, D.; Marcondes, F.S.; Hammerschmidt, N.; Machado, J.; Novais, P. Weakness Evaluation on In-Vehicle Violence Detection: An Assessment of X3D, C2D and I3D against FGSM and PGD. Electronics 2022, 11, 852. https://doi.org/10.3390/electronics11060852
Resumo(s)When constructing a deep learning model for recognizing violence inside a vehicle, it is crucial to consider several aspects. One aspect is the computational limitations, and the other is the deep learning model architecture chosen. Nevertheless, to choose the best deep learning model, it is necessary to test and evaluate the model against adversarial attacks. This paper presented three different architecture models for violence recognition inside a vehicle. These model architectures were evaluated based on adversarial attacks and interpretability methods. An analysis of the model’s convergence was conducted, followed by adversarial robustness for each model and a sanity-check based on interpretability analysis. It compared a standard evaluation for training and testing data samples with the adversarial attacks techniques. These two levels of analysis are essential to verify model weakness and sensibility regarding the complete video and in a frame-by-frame way.
TipoArtigo
URIhttps://hdl.handle.net/1822/78013
DOI10.3390/electronics11060852
e-ISSN2079-9292
Versão da editorahttps://www.mdpi.com/2079-9292/11/6/852
Arbitragem científicayes
AcessoAcesso aberto
Aparece nas coleções:CAlg - Artigos em revistas internacionais / Papers in international journals

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