Obfuscated Malware Dataset (OMD)
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Obfuscated Malware Dataset (OMD)是由中国工程物理研究院计算机应用研究所CIPMA实验室创建的大型恶意软件数据集,包含来自40个不同家族的21,924个样本。该数据集通过应用多种混淆技术,模拟恶意软件作者使用的策略,以创建与原始样本不同的恶意软件变种。OMD旨在为评估恶意软件分析技术的有效性提供一个更真实和代表性的环境。数据集主要用于支持机器学习算法的研究,如支持向量机(SVM)、随机森林(RF)和极端梯度提升(XGBOOST)等,以提高对复杂恶意软件变种的检测能力。
Obfuscated Malware Dataset (OMD) is a large-scale malware dataset developed by the CIPMA Laboratory of the Institute of Computer Applications, China Academy of Engineering Physics. It contains 21,924 samples belonging to 40 distinct malware families. This dataset applies multiple obfuscation techniques to simulate the strategies adopted by malware authors, thereby creating malware variants that differ from their original samples. OMD aims to provide a more realistic and representative environment for evaluating the effectiveness of malware analysis technologies. The dataset is primarily used to support research on machine learning algorithms such as Support Vector Machine (SVM), Random Forest (RF), and Extreme Gradient Boosting (XGBoost), so as to enhance the detection capability against complex malware variants.




