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Multi-Modal Face Presentation Attack Detection

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Multi-Modal Face Presentation Attack Detection
Lowest price (incl. delivery)
4 718,00 JPY
Typical price148,89 PLN
Lowest (90 days)14,62 PLN
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2026-08-07 2026-08-14
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업데이트 일시가격
2026-08-0714,62
2026-08-0834,31
2026-08-1434,31
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SP SpringerNatureLink Shop INT 4 718,00 JPY free 4 718,00 JPY 구매 가능 6시간 전 View offer
SP Springer Nature Author 4 718,00 JPY 25,00 JPY 4 743,00 JPY 구매 가능 6일 전 View offer
VI VitalSource 35,30 EUR 25,00 EUR 60,30 EUR 구매 가능 1주 전 View offer
SP SpringerNatureLink Shop INT 39,00 EUR free 39,00 EUR 구매 가능 15시간 전 View offer

가격과 재고 여부는 변경될 수 있습니다. 마지막 업데이트: 08.08.2026 08:08.

EAN 9783031006968
Springer Nature
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For the last ten years, face biometric research has been intensively studied by the computer vision community. Face recognition systems have been used in mobile, banking, and surveillance systems. For face recognition systems, face spoofing attack detection is a crucial stage that could cause severe security issues in government sectors. Although effective methods for face presentation attack detection have been proposed so far, the problem is still unsolved due to the difficulty in the design of features and methods that can work for new spoofing attacks. In addition, existing datasets for studying the problem are relatively small which hinders the progress in this relevant domain. In order to attract researchers to this important field and push the boundaries of the state of the art on face anti-spoofing detection, we organized the Face Spoofing Attack Workshop and Competition at CVPR 2019, an event part of the ChaLearn Looking at People Series. As part of this event, we released the largest multi-modal face anti-spoofing dataset so far, the CASIA-SURF benchmark. The workshop reunited many researchers from around the world and the challenge attracted more than 300 teams. Some of the novel methodologies proposed in the context of the challenge achieved state-of-the-art performance. In this manuscript, we provide a comprehensive review on face anti-spoofing techniques presented in this joint event and point out directions for future research on the face anti-spoofing field.

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