HPC应用分类数据集
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HPC应用分类数据集是由巴塞尔大学的sciCORE生产集群预装的92个应用类别的5333个不同应用样本组成。该数据集用于评估基于SSDeep模糊哈希的HPC应用分类方法,旨在通过静态代码分析技术提高HPC系统的安全性和资源利用效率。数据集的创建过程包括从预装软件目录中收集可执行文件,并提取其模糊哈希特征。该数据集主要应用于HPC环境中的应用分类和资源管理,旨在解决资源浪费和恶意软件执行等问题。
The HPC application classification dataset comprises 5333 distinct application samples across 92 application categories, sourced from pre-installed software on the production cluster of sciCORE at the University of Basel. This dataset is utilized to evaluate HPC application classification methods based on SSDeep fuzzy hashing, with the goal of enhancing the security and resource utilization efficiency of HPC systems through static code analysis techniques. The dataset creation workflow includes collecting executable files from pre-installed software directories and extracting their fuzzy hashing features. This dataset is primarily applied to application classification and resource management in HPC environments, aiming to address issues such as resource waste and malicious software execution.

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