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CWE-125 (跨界内存读) — Vulnerability Class 2901

2901 vulnerabilities classified as CWE-125 (跨界内存读). AI Chinese analysis included.

CWE-125, Out-of-bounds Read, is a memory safety weakness where software accesses memory locations outside the designated buffer boundaries, either before its start or past its end. This vulnerability typically arises from insufficient bounds checking during array indexing or pointer arithmetic, allowing attackers to read sensitive data such as stack canaries, cryptographic keys, or internal application state. By leveraging this flaw, adversaries can achieve information disclosure or potentially facilitate further exploitation techniques like heap spraying. Developers mitigate this risk by implementing rigorous input validation, utilizing static analysis tools to detect unsafe memory access patterns, and adopting safer programming languages or libraries that enforce automatic bounds checking. Additionally, employing compiler protections like Address Sanitizer during development helps identify these errors early, ensuring that memory reads remain strictly within allocated limits to prevent unauthorized data exposure.

MITRE CWE Description
The product reads data past the end, or before the beginning, of the intended buffer.
Common Consequences (4)
ConfidentialityRead Memory
An attacker could get secret values such as cryptographic keys, PII, memory addresses, or other information that could be used in additional attacks.
ConfidentialityBypass Protection Mechanism
Out-of-bounds memory could contain memory addresses or other information that can be used to bypass ASLR and other protection mechanisms in order to improve the reliability of exploiting a separate weakness for code execution.
AvailabilityDoS: Crash, Exit, or Restart
An attacker could cause a segmentation fault or crash by causing memory to be read outside of the bounds of the buffer. This is especially likely when the code reads a variable amount of data and assumes that a sentinel exists to stop the read operation, such as a NUL in a string.
OtherVaries by Context
The read operation could produce other undefined or unexpected results.
Mitigations (2)
ImplementationAssume all input is malicious. Use an "accept known good" input validation strategy, i.e., use a list of acceptable inputs that strictly conform to specifications. Reject any input that does not strictly conform to specifications, or transform it into something that does. When performing input validation, consider all potentially relevant properties, including length, type of input, the full range…
Architecture and DesignUse a language that provides appropriate memory abstractions.
Examples (2)
In the following code, the method retrieves a value from an array at a specific array index location that is given as an input parameter to the method
int getValueFromArray(int *array, int len, int index) { int value; // check that the array index is less than the maximum // length of the array if (index < len) { // get the value at the specified index of the array value = array[index]; } // if array index is invalid then output error message // and return value indicating error else { printf("Value is: %d\n", array[index]); value = -1; } return value; }
Bad · C
... // check that the array index is within the correct // range of values for the array if (index >= 0 && index < len) { ...
Good · C
In the following C/C++ example the method processMessageFromSocket() will get a message from a socket, placed into a buffer, and will parse the contents of the buffer into a structure that contains the message length and the message body. A for loop is used to copy the message body into a local character string which will be passed to another method for processing.
int processMessageFromSocket(int socket) { int success; char buffer[BUFFER_SIZE]; char message[MESSAGE_SIZE]; // get message from socket and store into buffer //Ignoring possibliity that buffer > BUFFER_SIZE if (getMessage(socket, buffer, BUFFER_SIZE) > 0) { // place contents of the buffer into message structure ExMessage *msg = recastBuffer(buffer); // copy message body into string for processing int index; for (index = 0; index < msg->msgLength; index++) { message[index] = msg->msgBody[index]; } message[index] = '\0'; // process message success = processMessage(message); } return success; }
Bad · C
CVE IDTitleCVSSSeverityPublished
CVE-2019-6752 Foxit Reader和Foxit PhantomPDF 信息泄露漏洞 — PhantomPDF 5.5 -2019-06-03
CVE-2019-8457 Sqlite 缓冲区错误漏洞 — SQLite 9.8 -2019-05-30
CVE-2019-1853 Cisco AnyConnect Secure Mobility Client for Linux Out-of-Bounds Memory Read Vulnerability — Cisco AnyConnect Secure Mobility Client 7.5 -2019-05-16
CVE-2019-11034 Heap over-read in PHP EXIF extension — PHP 9.1 -2019-04-18
CVE-2019-11035 Heap over-read in PHP EXIF extension — PHP 9.1 -2019-04-18
CVE-2019-10949 Delta Electronics Delta Industrial Automation CNCSoft 缓冲区错误漏洞 — Delta Industrial Automation CNCSoft 5.5 -2019-04-17
CVE-2019-6568 Siemens SIMATIC S7-1500 CPU 缓冲区错误漏洞 — SIMATIC CP 1604 7.5 High2019-04-17
CVE-2018-14814 Wecon PI Studio HMI和PI Studio 缓冲区错误漏洞 — WECON Technology PI Studio HMI 6.5 -2019-03-27
CVE-2018-18994 LCDS LAquis SCADA 缓冲区错误漏洞 — LCDS Laquis SCADA 6.1 -2019-03-27
CVE-2013-2805 Rockwell Automation RSLinx Enterprise 缓冲区错误漏洞 — RSLinx Enterprise Software 7.5 -2019-03-26
CVE-2019-3860 libssh2 缓冲区错误漏洞 — libssh2 9.1 -2019-03-25
CVE-2019-3861 libssh2 缓冲区错误漏洞 — libssh2 9.1 -2019-03-25
CVE-2019-3858 libssh2 缓冲区错误漏洞 — libssh2 9.1 -2019-03-21
CVE-2019-3859 libssh2 缓冲区错误漏洞 — libssh2 9.1 -2019-03-20
CVE-2019-3832 libsndfile 缓冲区错误漏洞 — libsndfile 5.5 -2019-03-20
CVE-2019-6728 Foxit Reader和PhantomPD 缓冲区错误漏洞 — Reader 6.5 -2019-03-19
CVE-2019-6729 Foxit Reader和PhantomPD 输入验证错误漏洞 — Reader 8.8 -2019-03-19
CVE-2019-6731 Foxit Reader和PhantomPD 输入验证错误漏洞 — PhantomPDF 8.8 -2019-03-19
CVE-2019-6732 Foxit Reader和PhantomPD 信息泄露漏洞 — PhantomPDF 6.5 -2019-03-19
CVE-2019-6733 Foxit Reader和PhantomPD 缓冲区错误漏洞 — PhantomPDF 6.5 -2019-03-19
CVE-2019-6735 Foxit Reader和PhantomPD 缓冲区错误漏洞 — Reader 6.5 -2019-03-19
CVE-2019-8267 UltraVNC 缓冲区错误漏洞 — UltraVNC 7.5 -2019-03-09
CVE-2019-8270 UltraVNC 缓冲区错误漏洞 — UltraVNC 7.5 -2019-03-09
CVE-2019-6522 多款Moxa产品缓冲区错误漏洞 — Moxa IKS, EDS 9.1 -2019-03-05
CVE-2019-8260 UltraVNC 缓冲区错误漏洞 — UltraVNC 9.8 -2019-03-05
CVE-2019-8261 UltraVNC 缓冲区错误漏洞 — UltraVNC 9.8 -2019-03-05
CVE-2019-6547 Delta Electronics Delta Industrial Automation CNCSoft ScreenEditor 缓冲区错误漏洞 — Delta Industrial Automation CNCSoft 6.5 -2019-02-28
CVE-2018-19020 Omron CX-Supervisor 缓冲区错误漏洞 — CX-Supervisor 2.8 -2019-02-12
CVE-2018-16890 Haxx libcurl 缓冲区错误漏洞 — curl 7.5 -2019-02-06
CVE-2019-3823 Haxx libcurl 缓冲区错误漏洞 — curl 7.5 -2019-02-06

Vulnerabilities classified as CWE-125 (跨界内存读) represent 2901 CVEs. The CWE taxonomy describes the weakness; review individual CVEs for product-specific impact.