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Fast & Furious: Modelling Malware Detection as Evolving Data Streams
24 May 2022
Fabrício Ceschin
Marcus Botacin
Heitor Murilo Gomes
Felipe Pinagé
Luiz S. Oliveira
André Grégio
AAML
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Papers citing
"Fast & Furious: Modelling Malware Detection as Evolving Data Streams"
8 / 8 papers shown
Title
Reactive Soft Prototype Computing for Concept Drift Streams
Christoph Raab
Moritz Heusinger
Frank-Michael Schleif
46
122
0
10 Jul 2020
A Preliminary Study On the Sustainability of Android Malware Detection
Haipeng Cai
53
103
0
22 Jul 2018
TESSERACT: Eliminating Experimental Bias in Malware Classification across Space and Time
Feargus Pendlebury
Fabio Pierazzi
Roberto Jordaney
Johannes Kinder
Lorenzo Cavallaro
60
359
0
20 Jul 2018
Scikit-Multiflow: A Multi-output Streaming Framework
Jacob Montiel
Jesse Read
Albert Bifet
T. Abdessalem
37
307
0
12 Jul 2018
Learning to Evade Static PE Machine Learning Malware Models via Reinforcement Learning
Hyrum S. Anderson
Anant Kharkar
Bobby Filar
David Evans
P. Roth
AAML
73
210
0
26 Jan 2018
MaMaDroid: Detecting Android Malware by Building Markov Chains of Behavioral Models (Extended Version)
Lucky Onwuzurike
Enrico Mariconti
Panagiotis Andriotis
Emiliano De Cristofaro
Gordon J. Ross
Gianluca Stringhini
35
169
0
20 Nov 2017
Adaptive and Scalable Android Malware Detection through Online Learning
A. Narayanan
Liu Yang
Lihui Chen
Jinliang Liu
39
70
0
23 Jun 2016
Distributed Representations of Words and Phrases and their Compositionality
Tomas Mikolov
Ilya Sutskever
Kai Chen
G. Corrado
J. Dean
NAI
OCL
402
33,560
0
16 Oct 2013
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