| CVE |
Vendors |
Products |
Updated |
CVSS v3.1 |
| IBM WebSphere Commerce 7.0 uses the same cryptographic key for session attributes and merchant data encryption, which has unspecified impact and remote attack vectors. |
| The IPsec implementation in Cisco Adaptive Security Appliance (ASA) Software 9.1 before 9.1(1.7), when an IPsec VPN tunnel is enabled, allows remote attackers to cause a denial of service (device reload) via a (1) ICMP or (2) ICMPv6 packet that is improperly handled during decryption, aka Bug ID CSCue18975. |
| The OpenStack Python client library for Swift (python-swiftclient) 1.0 through 1.9.0 does not verify X.509 certificates from SSL servers, which allows man-in-the-middle attackers to spoof servers and obtain sensitive information via a crafted certificate. |
| GLib 2.31.8 and earlier, when the g_str_hash function is used, computes hash values without restricting the ability to trigger hash collisions predictably, which allows context-dependent attackers to cause a denial of service (CPU consumption) via crafted input to an application that maintains a hash table. NOTE: this issue may be disputed by the vendor; the existence of the g_str_hash function is not a vulnerability in the library, because callers of g_hash_table_new and g_hash_table_new_full can specify an arbitrary hash function that is appropriate for the application. |
| BackupConfig.php on the NetGear ProSafe WNAP210 allows remote attackers to obtain the administrator password by reading the configuration file. |
| The management.asmx module in the Management Web Service in the Unified Network Control (UNC) Server in CA Total Defense (TD) r12 before SE2 sends a cleartext response to unspecified getDBConfigSettings requests, which makes it easier for remote attackers to obtain database credentials, and subsequently execute arbitrary code, by sniffing the network, related to the UNCWS Web Service. |
| IBM WebSphere Application Server (WAS) 6.1 before 6.1.0.39 and 7.0 before 7.0.0.17 uses a weak WS-Security XML encryption algorithm, which makes it easier for remote attackers to obtain plaintext data from a (1) JAX-RPC or (2) JAX-WS Web Services request via unspecified vectors related to a "decryption attack." |
| DigestAuthenticator.java in the HTTP Digest Access Authentication implementation in Apache Tomcat 5.5.x before 5.5.34, 6.x before 6.0.33, and 7.x before 7.0.12 uses Catalina as the hard-coded server secret (aka private key), which makes it easier for remote attackers to bypass cryptographic protection mechanisms by leveraging knowledge of this string, a different vulnerability than CVE-2011-1184. |
| The default quickstart configuration of TurboGears2 (aka tg2) before 2.0.2 has a weak cookie salt, which makes it easier for remote attackers to bypass repoze.who authentication via a forged authorization cookie, a related issue to CVE-2010-3852. |
| IBM Tivoli Federated Identity Manager (TFIM) 6.2.0 before 6.2.0.2, when com.tivoli.am.fim.infocard.delegates.InfoCardSTSDelegate tracing is enabled, creates a cleartext log entry containing a password, which might allow local users to obtain sensitive information by reading the log data. |
| authenticate_ad_setup_finished.cfm in MediaCAST 8 and earlier allows remote attackers to discover usernames and cleartext passwords by reading the error messages returned for requests that use the UserID parameter. |
| Zeacom Chat Server before 5.1 uses too short a random string for the JSESSIONID value, which makes it easier for remote attackers to hijack sessions or cause a denial of service (Chat Server crash or Tomcat daemon crash) via a brute-force attack. |
| The TFTP service in Cisco Unified Communications Manager (aka CUCM or Unified CM) allows remote attackers to obtain sensitive information from a phone via an RRQ operation, as demonstrated by discovering a cleartext UseUserCredential field in an SPDefault.cnf.xml file. NOTE: the vendor reportedly disputes the significance of this report, stating that this is an expected default behavior, and that the product's documentation describes use of the TFTP Encrypted Config option in addressing this issue |
| The encrypted e-mail feature in IBM Lotus Notes Traveler before 8.5.0.2 sends unencrypted messages when the feature is used without uploading a Notes ID file, which makes it easier for remote attackers to obtain sensitive information by sniffing the network. |
| The createRandomPassword function in includes/functions_common.php in Virtual War (aka VWar) 1.6.1 R2 uses a small range of values to select the seed argument for the PHP mt_srand function, which makes it easier for remote attackers to determine randomly generated passwords via a brute-force attack. |
| SilverStripe 2.3.x before 2.3.10 and 2.4.x before 2.4.4 uses weak entropy when generating tokens for (1) the CSRF protection mechanism, (2) autologin, (3) "forgot password" functionality, and (4) password salts, which makes it easier for remote attackers to bypass intended access restrictions via unspecified vectors. |
| Mail in Apple Mac OS X before 10.6.3 does not properly enforce the key usage extension during processing of a keychain that specifies multiple certificates for an e-mail recipient, which might make it easier for remote attackers to obtain sensitive information via a brute-force attack on a weakly encrypted e-mail message. |
| The MobileMe component in Apple Mac OS X before 10.6.8 uses a cleartext HTTP session for the Mail application to read e-mail aliases, which allows remote attackers to obtain potentially sensitive alias information by sniffing the network. |
| IBM Global Security Kit (aka GSKit), as used in IBM HTTP Server in IBM WebSphere Application Server (WAS) 6.1.x before 6.1.0.45, 7.0.x before 7.0.0.25, 8.0.x before 8.0.0.4, and 8.5.x before 8.5.0.1, allows remote attackers to cause a denial of service (daemon crash) via a crafted ClientHello message in the TLS Handshake Protocol. |
| The DNS implementation in smtpsvc.dll before 6.0.2600.5949 in Microsoft Windows 2000 SP4 and earlier, Windows XP SP3 and earlier, Windows Server 2003 SP2 and earlier, Windows Server 2008 SP2 and earlier, Windows Server 2008 R2, Exchange Server 2003 SP3 and earlier, Exchange Server 2007 SP2 and earlier, and Exchange Server 2010 uses predictable transaction IDs that are formed by incrementing a previous ID by 1, which makes it easier for man-in-the-middle attackers to spoof DNS responses, a different vulnerability than CVE-2010-0024 and CVE-2010-0025. |