Omada Olts
Monthly
Credential recovery is possible on TP-Link Omada network devices - including Gateways, Switches, Access Points, and OLTs - because site credentials are hashed with a legacy algorithm that lacks adequate protection against offline cracking (CWE-759). An attacker who has already obtained privileged access to the device or management environment and extracted stored credential hashes can recover plaintext credentials, enabling unauthorized access to affected Omada infrastructure. No public exploit code has been identified at time of analysis, and the issue is not listed in the CISA KEV catalog, though a vendor patch is available.
Shared embedded certificates across all TP-Link Omada deployments enable impersonation of trusted controllers and managed devices by any attacker who extracts those certificates from a single unit. The CVSS 4.0 vector (AV:A/PR:N/VC:H/SC:H) confirms that an unauthenticated attacker with adjacent network access to the Omada management plane can intercept management communications at high confidentiality impact across both the vulnerable and subsequent systems, with no patch complexity required beyond certificate possession. No public exploit has been identified at time of analysis, and this CVE is not currently listed in the CISA KEV catalog, though the authentication-bypass tagging and the breadth of affected product lines (gateways, switches, access points, controllers, OLTs) give this meaningful real-world weight in environments relying on Omada for network management.
Credential interception in TP-Link Omada's device adoption process exposes site management authentication to offline cracking due to use of a weak, unsalted hash algorithm (CWE-759). An adjacent-network attacker who captures adoption-phase traffic can recover plaintext credentials and authenticate to the Omada controller or managed devices including gateways, switches, access points, and OLTs. No public exploit identified at time of analysis, but a vendor patch is available; the CVSS 4.0 score of 6.9 reflects meaningful real-world constraints including network adjacency, high attack complexity, and a required adoption event.
Credential recovery is possible on TP-Link Omada network devices - including Gateways, Switches, Access Points, and OLTs - because site credentials are hashed with a legacy algorithm that lacks adequate protection against offline cracking (CWE-759). An attacker who has already obtained privileged access to the device or management environment and extracted stored credential hashes can recover plaintext credentials, enabling unauthorized access to affected Omada infrastructure. No public exploit code has been identified at time of analysis, and the issue is not listed in the CISA KEV catalog, though a vendor patch is available.
Shared embedded certificates across all TP-Link Omada deployments enable impersonation of trusted controllers and managed devices by any attacker who extracts those certificates from a single unit. The CVSS 4.0 vector (AV:A/PR:N/VC:H/SC:H) confirms that an unauthenticated attacker with adjacent network access to the Omada management plane can intercept management communications at high confidentiality impact across both the vulnerable and subsequent systems, with no patch complexity required beyond certificate possession. No public exploit has been identified at time of analysis, and this CVE is not currently listed in the CISA KEV catalog, though the authentication-bypass tagging and the breadth of affected product lines (gateways, switches, access points, controllers, OLTs) give this meaningful real-world weight in environments relying on Omada for network management.
Credential interception in TP-Link Omada's device adoption process exposes site management authentication to offline cracking due to use of a weak, unsalted hash algorithm (CWE-759). An adjacent-network attacker who captures adoption-phase traffic can recover plaintext credentials and authenticate to the Omada controller or managed devices including gateways, switches, access points, and OLTs. No public exploit identified at time of analysis, but a vendor patch is available; the CVSS 4.0 score of 6.9 reflects meaningful real-world constraints including network adjacency, high attack complexity, and a required adoption event.