SOTAVerified

Malware Detection

Malware Detection is a significant part of endpoint security including workstations, servers, cloud instances, and mobile devices. Malware Detection is used to detect and identify malicious activities caused by malware. With the increase in the variety of malware activities on CMS based websites such as malicious malware redirects on WordPress site (Aka, WordPress Malware Redirect Hack) where the site redirects to spam, being the most widespread, the need for automatic detection and classifier amplifies as well. The signature-based Malware Detection system is commonly used for existing malware that has a signature but it is not suitable for unknown malware or zero-day malware

Source: The Threat of Adversarial Attacks on Machine Learning in Network Security - A Survey

Papers

Showing 126150 of 431 papers

TitleStatusHype
Obfuscated Malware Detection: Investigating Real-world Scenarios through Memory Analysis0
Generative AI-Based Effective Malware Detection for Embedded Computing Systems0
A Transformer-Based Framework for Payload Malware Detection and Classification0
Holographic Global Convolutional Networks for Long-Range Prediction Tasks in Malware Detection0
Leveraging Large Language Models to Detect npm Malicious Packages0
Comprehensive evaluation of Mal-API-2019 dataset by machine learning in malware detection0
Improving Android Malware Detection Through Data Augmentation Using Wasserstein Generative Adversarial Networks0
How to Train your Antivirus: RL-based Hardening through the Problem-SpaceCode0
Weakly Supervised Anomaly Detection via Knowledge-Data Alignment0
Use of Multi-CNNs for Section Analysis in Static Malware Detection0
Unraveling the Key of Machine Learning Solutions for Android Malware Detection0
Evading Deep Learning-Based Malware Detectors via Obfuscation: A Deep Reinforcement Learning Approach0
ActDroid: An active learning framework for Android malware detection0
MORPH: Towards Automated Concept Drift Adaptation for Malware Detection0
Malware Detection in IOT Systems Using Machine Learning Techniques0
Small Effect Sizes in Malware Detection? Make Harder Train/Test Splits!0
Discovering Malicious Signatures in Software from Structural Interactions0
Towards an in-depth detection of malware using distributed QCNN0
Android Malware Detection with Unbiased Confidence Guarantees0
A Malware Classification Survey on Adversarial Attacks and Defences0
Explaining high-dimensional text classifiers0
Machine learning-based malware detection for IoT devices using control-flow data0
Enhancing Malware Detection by Integrating Machine Learning with Cuckoo Sandbox0
Enhancing Enterprise Network Security: Comparing Machine-Level and Process-Level Analysis for Dynamic Malware Detection0
Light up that Droid! On the Effectiveness of Static Analysis Features against App Obfuscation for Android Malware Detection0
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