Özet
The current best practice dictates that even when the correct username and password are entered, the system should look for login anomalies that might indicate malicious attempts. Most anomaly detection approaches examine static properties of user's contextual data such as IP address, screen size and browser type. Keystroke Dynamics bring additional security measure and enable us to use individuals' keystroke behaviour to decide legitimacy of the user. In this paper, we first analyze different anomaly detection approaches separately and then show accuracy improvements when we combine these solutions with various methods. Our results show that including keystroke dynamics scores in session context anomaly component as a new feature performs better than ensemble methods with different weights for session context and keystroke dynamics components. We argue that this is due to the opportunity to capture the behavioral deviations of the individuals in our augmented model.
| Orijinal dil | İngilizce |
|---|---|
| Ana bilgisayar yayını başlığı | 2020 International Conference on Information Security and Cryptology, ISCTURKEY 2020 - Proceedings |
| Editörler | Seref Sagiroglu, Sedat Akleylek, Ferruh Ozbudak, Yavuz Canbay |
| Yayınlayan | Institute of Electrical and Electronics Engineers Inc. |
| Sayfalar | 11-17 |
| Sayfa sayısı | 7 |
| ISBN (Elektronik) | 9781665418638 |
| DOI'lar | |
| Yayın durumu | Yayınlandı - 3 Ara 2020 |
| Harici olarak yayınlandı | Evet |
| Etkinlik | 13th International Conference on Information Security and Cryptology, ISCTURKEY 2020 - Virtual, Ankara, Türkiye Süre: 3 Ara 2020 → 4 Ara 2020 |
Yayın serisi
| Adı | 2020 International Conference on Information Security and Cryptology, ISCTURKEY 2020 - Proceedings |
|---|
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| ???event.eventtypes.event.conference??? | 13th International Conference on Information Security and Cryptology, ISCTURKEY 2020 |
|---|---|
| Ülke/Bölge | Türkiye |
| Şehir | Virtual, Ankara |
| Periyot | 3/12/20 → 4/12/20 |
Bibliyografik not
Publisher Copyright:© 2020 IEEE.
Finansman
This research is funded by TUBITAK (The Scientific and Technological Research Council of Turkey) under the grant No: 118E399.
| Finansörler | Finansör numarası |
|---|---|
| TUBITAK | |
| Türkiye Bilimsel ve Teknolojik Araştirma Kurumu | 118E399 |
Parmak izi
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