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Proceedings ArticleDOI

Face anti-spoofing with multifeature videolet aggregation

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TLDR
A novel multi-feature evidence aggregation method for face spoofing detection that fuses evidence from features encoding of both texture and motion properties in the face and also the surrounding scene regions and provides robustness to different attacks.
Abstract
Biometric systems can be attacked in several ways and the most common being spoofing the input sensor. Therefore, anti-spoofing is one of the most essential prerequisite against attacks on biometric systems. For face recognition it is even more vulnerable as the image capture is non-contact based. Several anti-spoofing methods have been proposed in the literature for both contact and non-contact based biometric modalities often using video to study the temporal characteristics of a real vs. spoofed biometric signal. This paper presents a novel multi-feature evidence aggregation method for face spoofing detection. The proposed method fuses evidence from features encoding of both texture and motion (liveness) properties in the face and also the surrounding scene regions. The feature extraction algorithms are based on a configuration of local binary pattern and motion estimation using histogram of oriented optical flow. Furthermore, the multi-feature windowed videolet aggregation of these orthogonal features coupled with support vector machine-based classification provides robustness to different attacks. We demonstrate the efficacy of the proposed approach by evaluating on three standard public databases: CASIA-FASD, 3DMAD and MSU-MFSD with equal error rate of 3.14%, 0%, and 0%, respectively.

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Citations
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Proceedings ArticleDOI

GGViT:Multistream Vision Transformer Network in Face2Face Facial Reenactment Detection

TL;DR: A new multi-stream network architecture named GGViT, which utilizes global information to improve the generalization of the model and achieves state-of-the-art classification accuracy on FF++ dataset, and has been greatly improved on scenarios of different compression rates.
Proceedings ArticleDOI

Feature Extraction of Dual-convolutional Network with LBP for Face Anti-Spoofing

TL;DR: Wang et al. as mentioned in this paper proposed a dual-convolution multi-scale feature extraction network that combines central differential convolution and depth separable convolution, and added traditional manual feature LBP to improve the robustness of the network.
Journal ArticleDOI

Face Presentation Attack Detection

Zitong Yu, +2 more
- 07 Dec 2022 - 
TL;DR: A presentation attack is defined in ISO standard as: a presentation to the biometric data capture subsystem with the goal of interfering with the operation of the biometrics system as mentioned in this paper , and PAs range from simple 2D print, replay and more sophisticated 3D masks and partial masks.
Journal ArticleDOI

Auditory perception vs. face based systems for human age estimation in unsupervised environments: from countermeasure to multimodality

TL;DR: This work proposes a robust modality using both random auditory stimulation and Deep-learning based age estimation, though individual perception (RaS-DeeP) as a countermeasure to prevent attacks on face-based age estimation systems, but also as a complementary modality in a multimodal biometric system (i.e. face-sound perception) in order to improve the performances of face-Based age estimation system.
Proceedings ArticleDOI

GGViT:Multistream Vision Transformer Network in Face2Face Facial Reenactment Detection

TL;DR: Li et al. as discussed by the authors proposed a new multi-stream network architecture named GGViT, which utilizes global information to improve the generalization of the model, and the embedding of the whole face extracted by ViT will guide each stream network.
References
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Journal ArticleDOI

Dynamic Texture Recognition Using Local Binary Patterns with an Application to Facial Expressions

TL;DR: A novel approach for recognizing DTs is proposed and its simplifications and extensions to facial image analysis are also considered and both the VLBP and LBP-TOP clearly outperformed the earlier approaches.
Journal ArticleDOI

Enhancing security and privacy in biometrics-based authentication systems

TL;DR: The inherent strengths of biometrics-based authentication are outlined, the weak links in systems employing biometric authentication are identified, and new solutions for eliminating these weak links are presented.

Beyond pixels: exploring new representations and applications for motion analysis

TL;DR: This thesis builds a human-assisted motion annotation system to obtain ground-truth motion, missing in the literature, for natural video sequences, and proposes SIFT flow, a new framework for image parsing by transferring the metadata information from the images in a large database to an unknown query image.
Journal ArticleDOI

Face Spoof Detection With Image Distortion Analysis

TL;DR: An efficient and rather robust face spoof detection algorithm based on image distortion analysis (IDA) that outperforms the state-of-the-art methods in spoof detection and highlights the difficulty in separating genuine and spoof faces, especially in cross-database and cross-device scenarios.
Proceedings Article

On the effectiveness of local binary patterns in face anti-spoofing

TL;DR: This paper inspects the potential of texture features based on Local Binary Patterns (LBP) and their variations on three types of attacks: printed photographs, and photos and videos displayed on electronic screens of different sizes and concludes that LBP show moderate discriminability when confronted with a wide set of attack types.
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