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Pavel Laskov

Researcher at University of Tübingen

Publications -  76
Citations -  9269

Pavel Laskov is an academic researcher from University of Tübingen. The author has contributed to research in topics: Intrusion detection system & Anomaly detection. The author has an hindex of 36, co-authored 69 publications receiving 7953 citations. Previous affiliations of Pavel Laskov include Huawei & University of Delaware.

Papers
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Book ChapterDOI

Evasion attacks against machine learning at test time

TL;DR: This work presents a simple but effective gradient-based approach that can be exploited to systematically assess the security of several, widely-used classification algorithms against evasion attacks.
Book ChapterDOI

Evasion Attacks against Machine Learning at Test Time

TL;DR: In this paper, the authors present a simple but effective gradient-based approach that can be exploited to systematically assess the security of several, widely-used classification algorithms against evasion attacks.
Proceedings Article

Poisoning Attacks against Support Vector Machines

TL;DR: In this paper, the authors investigate a family of poisoning attacks against Support Vector Machines (SVM) and demonstrate that an intelligent adversary can predict the change of the SVM's decision function due to malicious input and use this ability to construct malicious data.
Posted Content

Poisoning Attacks against Support Vector Machines

TL;DR: It is demonstrated that an intelligent adversary can, to some extent, predict the change of the SVM's decision function due to malicious input and use this ability to construct malicious data.
Book ChapterDOI

Learning and Classification of Malware Behavior

TL;DR: The effectiveness of the proposed method for learning and discrimination of malware behavior is demonstrated, especially in detecting novel instances of malware families previously not recognized by commercial anti-virus software.