CVE Vulnerabilities

CVE-2016-7947

Integer Overflow or Wraparound

Published: Dec 13, 2016 | Modified: Nov 07, 2023
CVSS 3.x
9.8
CRITICAL
Source:
NVD
CVSS:3.0/AV:N/AC:L/PR:N/UI:N/S:U/C:H/I:H/A:H
CVSS 2.x
7.5 HIGH
AV:N/AC:L/Au:N/C:P/I:P/A:P
RedHat/V2
5.4 MODERATE
AV:A/AC:M/Au:N/C:P/I:P/A:P
RedHat/V3
5 MODERATE
CVSS:3.0/AV:A/AC:H/PR:N/UI:N/S:U/C:L/I:L/A:L
Ubuntu
LOW

Multiple integer overflows in X.org libXrandr before 1.5.1 allow remote X servers to trigger out-of-bounds write operations via a crafted response.

Weakness

The product performs a calculation that can produce an integer overflow or wraparound, when the logic assumes that the resulting value will always be larger than the original value. This can introduce other weaknesses when the calculation is used for resource management or execution control.

Affected Software

Name Vendor Start Version End Version
Fedora Fedoraproject 24 (including) 24 (including)
Fedora Fedoraproject 25 (including) 25 (including)
Libxrandr Ubuntu artful *
Libxrandr Ubuntu bionic *
Libxrandr Ubuntu cosmic *
Libxrandr Ubuntu devel *
Libxrandr Ubuntu disco *
Libxrandr Ubuntu eoan *
Libxrandr Ubuntu esm-infra/xenial *
Libxrandr Ubuntu focal *
Libxrandr Ubuntu groovy *
Libxrandr Ubuntu hirsute *
Libxrandr Ubuntu impish *
Libxrandr Ubuntu jammy *
Libxrandr Ubuntu precise *
Libxrandr Ubuntu trusty *
Libxrandr Ubuntu upstream *
Libxrandr Ubuntu vivid/stable-phone-overlay *
Libxrandr Ubuntu xenial *
Libxrandr Ubuntu yakkety *
Libxrandr Ubuntu zesty *
Libxrandr-lts-quantal Ubuntu precise *
Libxrandr-lts-raring Ubuntu precise *
Libxrandr-lts-saucy Ubuntu precise *
Libxrandr-lts-trusty Ubuntu precise *

Potential Mitigations

  • Use a language that does not allow this weakness to occur or provides constructs that make this weakness easier to avoid.
  • If possible, choose a language or compiler that performs automatic bounds checking.
  • Use a vetted library or framework that does not allow this weakness to occur or provides constructs that make this weakness easier to avoid.
  • Use libraries or frameworks that make it easier to handle numbers without unexpected consequences.
  • Examples include safe integer handling packages such as SafeInt (C++) or IntegerLib (C or C++). [REF-106]
  • Perform input validation on any numeric input by ensuring that it is within the expected range. Enforce that the input meets both the minimum and maximum requirements for the expected range.
  • Use unsigned integers where possible. This makes it easier to perform validation for integer overflows. When signed integers are required, ensure that the range check includes minimum values as well as maximum values.
  • Understand the programming language’s underlying representation and how it interacts with numeric calculation (CWE-681). Pay close attention to byte size discrepancies, precision, signed/unsigned distinctions, truncation, conversion and casting between types, “not-a-number” calculations, and how the language handles numbers that are too large or too small for its underlying representation. [REF-7]
  • Also be careful to account for 32-bit, 64-bit, and other potential differences that may affect the numeric representation.

References