GnuPG Libgcrypt 1.5.5

CPE Details

GnuPG Libgcrypt 1.5.5
1.5.5
2018-04-18
14h09 +00:00
2018-04-18
14h09 +00:00
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CPE Name: cpe:2.3:a:gnupg:libgcrypt:1.5.5:*:*:*:*:*:*:*

Informations

Vendor

gnupg

Product

libgcrypt

Version

1.5.5

Related CVE

Open and find in CVE List

CVE ID Published Description Score Severity
CVE-2021-40528 2021-09-05
22h00 +00:00
The ElGamal implementation in Libgcrypt before 1.9.4 allows plaintext recovery because, during interaction between two cryptographic libraries, a certain dangerous combination of the prime defined by the receiver's public key, the generator defined by the receiver's public key, and the sender's ephemeral exponents can lead to a cross-configuration attack against OpenPGP.
5.9
Medium
CVE-2021-33560 2021-06-07
22h00 +00:00
Libgcrypt before 1.8.8 and 1.9.x before 1.9.3 mishandles ElGamal encryption because it lacks exponent blinding to address a side-channel attack against mpi_powm, and the window size is not chosen appropriately. This, for example, affects use of ElGamal in OpenPGP.
7.5
High
CVE-2015-0837 2019-11-29
20h10 +00:00
The mpi_powm function in Libgcrypt before 1.6.3 and GnuPG before 1.4.19 allows attackers to obtain sensitive information by leveraging timing differences when accessing a pre-computed table during modular exponentiation, related to a "Last-Level Cache Side-Channel Attack."
5.9
Medium
CVE-2014-3591 2019-11-29
20h02 +00:00
Libgcrypt before 1.6.3 and GnuPG before 1.4.19 does not implement ciphertext blinding for Elgamal decryption, which allows physically proximate attackers to obtain the server's private key by determining factors using crafted ciphertext and the fluctuations in the electromagnetic field during multiplication.
4.2
Medium
CVE-2017-7526 2018-07-26
11h00 +00:00
libgcrypt before version 1.7.8 is vulnerable to a cache side-channel attack resulting into a complete break of RSA-1024 while using the left-to-right method for computing the sliding-window expansion. The same attack is believed to work on RSA-2048 with moderately more computation. This side-channel requires that attacker can run arbitrary software on the hardware where the private RSA key is used.
6.8
Medium
CVE-2018-0495 2018-06-13
21h00 +00:00
Libgcrypt before 1.7.10 and 1.8.x before 1.8.3 allows a memory-cache side-channel attack on ECDSA signatures that can be mitigated through the use of blinding during the signing process in the _gcry_ecc_ecdsa_sign function in cipher/ecc-ecdsa.c, aka the Return Of the Hidden Number Problem or ROHNP. To discover an ECDSA key, the attacker needs access to either the local machine or a different virtual machine on the same physical host.
4.7
Medium
CVE-2018-6829 2018-02-07
22h00 +00:00
cipher/elgamal.c in Libgcrypt through 1.8.2, when used to encrypt messages directly, improperly encodes plaintexts, which allows attackers to obtain sensitive information by reading ciphertext data (i.e., it does not have semantic security in face of a ciphertext-only attack). The Decisional Diffie-Hellman (DDH) assumption does not hold for Libgcrypt's ElGamal implementation.
7.5
High
CVE-2017-0379 2017-08-29
20h00 +00:00
Libgcrypt before 1.8.1 does not properly consider Curve25519 side-channel attacks, which makes it easier for attackers to discover a secret key, related to cipher/ecc.c and mpi/ec.c.
7.5
High
CVE-2017-9526 2017-06-11
00h00 +00:00
In Libgcrypt before 1.7.7, an attacker who learns the EdDSA session key (from side-channel observation during the signing process) can easily recover the long-term secret key. 1.7.7 makes a cipher/ecc-eddsa.c change to store this session key in secure memory, to ensure that constant-time point operations are used in the MPI library.
5.9
Medium
CVE-2015-7511 2016-04-19
19h00 +00:00
Libgcrypt before 1.6.5 does not properly perform elliptic-point curve multiplication during decryption, which makes it easier for physically proximate attackers to extract ECDH keys by measuring electromagnetic emanations.
2
Low