遇见数据集

Data for the Paper "Scalable and Generalizable RL Agents for Attack Path Discovery via Continuous Invariant Spaces"

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Zenodo2025-07-15 更新2026-05-26 收录
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This repository contains the data used in the paper "Scalable and Generalizable RL Agents for Attack Path Discovery via Continuous Invariant Spaces". This data has been generated using the C-CyberBattleSim framework, an extension of the original Microsoft CyberBattleSim framework. It includes the data scraped for generating scenarios, the scenarios generated, the training/testing/hyper-optimization results of the GAE, agent models, and the multi-label classifier used to label the vulnerabilities. The folder attached is organized in the following way: environment_database/: Contains the data scraped from NVD and Shodan regarding services and vulnerabilities used in the simulations. scenarios/: Contains the scenarios generated using the environment database attached. classifiers_data/: Contains the labeled vulnerabilities used for training the multi-label classifier. gae_hyperopt/: Contains the results of the hyperparameter optimization for the GAE model. gae_training/: Contains the results of the training & testing of the GAE model. classifiers_hyperopt/: Contains the results of the hyperparameter optimization for the multi-label classifier model. classifiers_training_testing/: Contains the results of the training & testing of the multi-label classifier model. agent_hyperopt/: Contains the results of the hyperparameter optimization for agent models. agents_training_testing/: Contains the results of the training & testing of agent models. config/: The configuration files used in the study are divided into sub-folders according to the specific sub-study where used. The subfolders within each folder have been renamed to be self-explanatory. For any questions regarding reproducibility, please feel free to contact us. The C-CyberBattleSim tool includes a README file with detailed commands for effectively using this data.

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Zenodo
创建时间:
2025-01-06
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