A new cybersecurity research tool called VulnGym utilizes reinforcement learning to simulate AI-trained advanced persistent threat (APT) attackers targeting enterprise patching programs. This platform enables security teams to assess whether their vulnerability prioritization strategies can effectively counter realistic multi-stage attacks, rather than merely reducing the number of unpatched Common Vulnerabilities and Exposures (CVEs). VulnGym was created to address a significant shortcoming in traditional vulnerability management. Often, enterprise defenders prioritize vulnerabilities based on CVSS severity, exploit prediction scores, or known exploitation status. While these metrics are helpful, they tend to evaluate...
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