Total
398903 CVE
| CVE | Vendors | Products | Updated | CVSS v2 | CVSS v3 |
|---|---|---|---|---|---|
| CVE-2017-13133 | 1 Imagemagick | 1 Imagemagick | 2026-06-17 | 7.1 HIGH | 6.5 MEDIUM |
| In ImageMagick 7.0.6-8, the load_level function in coders/xcf.c lacks offset validation, which allows attackers to cause a denial of service (load_tile memory exhaustion) via a crafted file. | |||||
| CVE-2017-13132 | 1 Imagemagick | 1 Imagemagick | 2026-06-17 | 4.3 MEDIUM | 6.5 MEDIUM |
| In ImageMagick 7.0.6-8, the WritePDFImage function in coders/pdf.c operates on an incorrect data structure in the "dump uncompressed PseudoColor packets" step, which allows attackers to cause a denial of service (assertion failure in WriteBlobStream in MagickCore/blob.c) via a crafted file. | |||||
| CVE-2017-13131 | 1 Imagemagick | 1 Imagemagick | 2026-06-17 | 4.3 MEDIUM | 6.5 MEDIUM |
| In ImageMagick 7.0.6-8, a memory leak vulnerability was found in the function ReadMIFFImage in coders/miff.c, which allows attackers to cause a denial of service (memory consumption in NewLinkedList in MagickCore/linked-list.c) via a crafted file. | |||||
| CVE-2017-13130 | 1 Bmc | 1 Patrol | 2026-06-17 | 7.2 HIGH | 7.8 HIGH |
| mcmnm in BMC Patrol allows local users to gain privileges via a crafted libmcmclnx.so file in the current working directory, because it is setuid root and the RPATH variable begins with the .: substring. | |||||
| CVE-2017-13129 | 1 Zkteco | 1 Zktime Web | 2026-06-17 | 6.0 MEDIUM | 8.0 HIGH |
| Cross-site request forgery (CSRF) vulnerability in ZKTeco ZKTime Web 2.0.1.12280 allows remote authenticated users to hijack the authentication of administrators for requests that add administrators by leveraging lack of anti-CSRF tokens. | |||||
| CVE-2017-13127 | 3 Apple, Google, Vip | 3 Iphone Os, Android, Vip | 2026-06-17 | 6.8 MEDIUM | 8.1 HIGH |
| The VIP.com application for IOS and Android allows remote attackers to obtain sensitive information and hijack the authentication of users via a rogue access point and a man-in-the-middle attack. | |||||
| CVE-2017-13108 | 1 Psafe | 1 Dfndr Security | 2026-06-17 | 5.0 MEDIUM | 7.5 HIGH |
| DFNDR Security Antivirus, Anti-hacking & Cleaner, 5.0.9, 2017-11-01, Android application uses a hard-coded key for encryption. Data stored using this key can be decrypted by anyone able to access this key. | |||||
| CVE-2017-13107 | 1 Liveme | 1 Liveme | 2026-06-17 | 5.0 MEDIUM | 7.5 HIGH |
| Live.me - live stream video chat, 3.7.20, 2017-11-06, Android application uses a hard-coded key for encryption. Data stored using this key can be decrypted by anyone able to access this key. | |||||
| CVE-2017-13106 | 1 Cmcm | 1 Cm Launcher 3d | 2026-06-17 | 5.0 MEDIUM | 7.5 HIGH |
| Cheetahmobile CM Launcher 3D - Theme, wallpaper, Secure, Efficient, 5.0.3, 2017-09-19, Android application uses a hard-coded key for encryption. Data stored using this key can be decrypted by anyone able to access this key. | |||||
| CVE-2017-13105 | 1 Hisecuritylab | 1 Virus Cleaner | 2026-06-17 | 4.3 MEDIUM | 5.9 MEDIUM |
| Hi Security Virus Cleaner - Antivirus, Booster, 3.7.1.1329, 2017-09-13, Android application accepts all SSL certificates during SSL communication. This opens the application up to a man-in-the-middle attack having all of its encrypted traffic intercepted and read by an attacker. | |||||
| CVE-2017-13104 | 1 Uber | 1 Ubereats | 2026-06-17 | 5.0 MEDIUM | 7.5 HIGH |
| Uber Technologies, Inc. UberEATS: Uber for Food Delivery, 1.108.10001, 2017-11-02, iOS application uses a hard-coded key for encryption. Data stored using this key can be decrypted by anyone able to access this key. | |||||
| CVE-2017-13102 | 1 Gameloft | 1 Asphalt Xtreme | 2026-06-17 | 5.0 MEDIUM | 7.5 HIGH |
| Gameloft Asphalt Xtreme: Offroad Rally Racing, 1.6.0, 2017-08-13, iOS application uses a hard-coded key for encryption. Data stored using this key can be decrypted by anyone able to access this key. | |||||
| CVE-2017-13101 | 1 Tiktok | 1 Musical.ly | 2026-06-17 | 5.0 MEDIUM | 7.5 HIGH |
| Musical.ly Inc., musical.ly - your video social network, 6.1.6, 2017-10-03, iOS application uses a hard-coded key for encryption. Data stored using this key can be decrypted by anyone able to access this key. | |||||
| CVE-2017-13100 | 1 Distinctdev | 1 The Moron Test | 2026-06-17 | 5.0 MEDIUM | 7.5 HIGH |
| DistinctDev, Inc., The Moron Test, 6.3.1, 2017-05-04, iOS application uses a hard-coded key for encryption. Data stored using this key can be decrypted by anyone able to access this key. | |||||
| CVE-2017-13099 | 3 Arubanetworks, Siemens, Wolfssl | 4 Instant, Scalance W1750d, Scalance W1750d Firmware and 1 more | 2026-06-17 | 4.3 MEDIUM | 7.5 HIGH |
| wolfSSL prior to version 3.12.2 provides a weak Bleichenbacher oracle when any TLS cipher suite using RSA key exchange is negotiated. An attacker can recover the private key from a vulnerable wolfSSL application. This vulnerability is referred to as "ROBOT." | |||||
| CVE-2017-13098 | 1 Bouncycastle | 1 Bc-java | 2026-06-17 | 4.3 MEDIUM | 7.5 HIGH |
| BouncyCastle TLS prior to version 1.0.3, when configured to use the JCE (Java Cryptography Extension) for cryptographic functions, provides a weak Bleichenbacher oracle when any TLS cipher suite using RSA key exchange is negotiated. An attacker can recover the private key from a vulnerable application. This vulnerability is referred to as "ROBOT." | |||||
| CVE-2017-13097 | 1 - | 1 - | 2026-06-17 | 4.6 MEDIUM | 7.8 HIGH |
| The P1735 IEEE standard describes flawed methods for encrypting electronic-design intellectual property (IP), as well as the management of access rights for such IP, including modification of Rights Block to remove or relax license requirement. The methods are flawed and, in the most egregious cases, enable attack vectors that allow recovery of the entire underlying plaintext IP. Implementations of IEEE P1735 may be weak to cryptographic attacks that allow an attacker to obtain plaintext intellectual property without the key, among other impacts. | |||||
| CVE-2017-13096 | 1 - | 1 - | 2026-06-17 | 4.6 MEDIUM | 7.8 HIGH |
| The P1735 IEEE standard describes flawed methods for encrypting electronic-design intellectual property (IP), as well as the management of access rights for such IP, including modification of Rights Block to remove or relax access control. The methods are flawed and, in the most egregious cases, enable attack vectors that allow recovery of the entire underlying plaintext IP. Implementations of IEEE P1735 may be weak to cryptographic attacks that allow an attacker to obtain plaintext intellectual property without the key, among other impacts. | |||||
| CVE-2017-13095 | 1 - | 1 - | 2026-06-17 | 4.6 MEDIUM | 7.8 HIGH |
| The P1735 IEEE standard describes flawed methods for encrypting electronic-design intellectual property (IP), as well as the management of access rights for such IP, including modification of a license-deny response to a license grant. The methods are flawed and, in the most egregious cases, enable attack vectors that allow recovery of the entire underlying plaintext IP. Implementations of IEEE P1735 may be weak to cryptographic attacks that allow an attacker to obtain plaintext intellectual property without the key, among other impacts. | |||||
| CVE-2017-13094 | 1 - | 1 - | 2026-06-17 | 4.6 MEDIUM | 7.8 HIGH |
| The P1735 IEEE standard describes flawed methods for encrypting electronic-design intellectual property (IP), as well as the management of access rights for such IP, including modification of the encryption key and insertion of hardware trojans in any IP. The methods are flawed and, in the most egregious cases, enable attack vectors that allow recovery of the entire underlying plaintext IP. Implementations of IEEE P1735 may be weak to cryptographic attacks that allow an attacker to obtain plaintext intellectual property without the key, among other impacts. | |||||
