遇见数据集

Today's cat is tomorrow's dog: accounting for time-based changes in the labels of ML vulnerability detection approaches (Replication Package Part 3: OpenSSL dataset)

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Zenodo2025-06-12 更新2026-05-26 收录
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The Replication Package of "Today's cat is tomorrow's dog: accounting for time-based changes in the labels of ML vulnerability detection approaches" Part 3 (OPENSSL Dataset) This repository includes: Code.zip that contains the codes to replicate some parts of this study:a. 1_generate_datasets implements our methodology to generate the datasets.b. 2_run_models runs the ML models during the evaluation.c. 3_result_replication generates charts presented in the paper from the ML evaluation results. Datasets.zip that contain 2 folders:a. original datasets: 1 from NVD Vuldeepecker and 3 extracted from BigVul. b. OPENSSL datasets: train, validation, test sets for each time of observation extracted using our methodology from BigVul dataset for project openssl. Pretrained-models.zip that we generated during our evaluation (3 test results for each time point in the timeline [2013-2019]). Results.zip of our evaluation, the folder ALL contains the overall results and other folders are results by model. UPDATED version 5- added a GLOBAL_README.md which contains the 3 stages and how they are connected to each other- updated LineVul.ipynb: import AdamW from torch.optim instead of transformers- updated README.md in Code2Vec with the prerequisites of Java to run gradlew for astmine UPDATED version 6- updated CodeBert.ipynb: import AdamW from torch.optim instead of transformers Documentations INSTALL.pdf : how to install the codes README.pdf: readme file REQUIREMENTS.pdf: hardware and software requirements STATUS.pdf : status for artifact submission LICENSE.pdf: the license of this artifact PAPER.pdf: the camera-ready version of the paper Please refer to the following repositories for the other datasets and pre-trained models: - Part 1 NVD Vuldeeepecker : https://doi.org/10.5281/zenodo.8207883 - Part 2 LINUX : https://doi.org/10.5281/zenodo.10960662 - Part 4 POPPLER : https://doi.org/10.5281/zenodo.14713143 This work was partly funded by the EU under the H2020 Program AssureMOSS (Grant n. 952647) and the Horizon Europe Program Sec4AI4Sec (Grant n. 101120393), by the Italian Ministry of University and Research (MUR) under the P.N.R.R. – NextGenerationEU grant n.\ PE00000014 (SERICS subproject COVERT), and by the Dutch Research Council (NWO) under the grant NWA.1215.18.006 (Theseus) and grant KIC1.VE01.20.004 (HEWSTI).

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Zenodo
创建时间:
2024-04-12
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