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CWE-126 (缓冲区上溢读取) — Vulnerability Class 417

417 vulnerabilities classified as CWE-126 (缓冲区上溢读取). AI Chinese analysis included.

CWE-126, Buffer Over-read, is a memory safety weakness where a software component reads data from memory locations beyond the allocated boundaries of a target buffer. This vulnerability typically arises when developers fail to validate array indices or pointer arithmetic, allowing an attacker to access sensitive information stored in adjacent memory regions. Exploitation often leads to information disclosure, where attackers extract confidential data such as cryptographic keys or user credentials, or potentially trigger denial-of-service conditions by causing application crashes. To mitigate this risk, developers must rigorously enforce bounds checking on all buffer access operations, ensuring that read indices remain within the valid memory range. Utilizing safe programming languages with automatic memory management and employing static analysis tools during the development lifecycle can further help detect and prevent these out-of-bounds read errors before deployment.

MITRE CWE Description
The product reads from a buffer using buffer access mechanisms such as indexes or pointers that reference memory locations after the targeted buffer.
Common Consequences (3)
ConfidentialityRead Memory
ConfidentialityBypass Protection Mechanism
By reading out-of-bounds memory, an attacker might be able to get secret values, such as memory addresses, which can bypass protection mechanisms such as ASLR in order to improve the reliability and likelihood of exploiting a separate weakness to achieve code execution instead of just denial of serv…
Availability, IntegrityDoS: Crash, Exit, or Restart
An attacker might be able to cause a crash or other denial of service by causing the product to read a memory location that is not allowed (such as a segmentation fault), or to cause other conditions in which the read operation returns more data than is expected.
Examples (2)
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
The following C/C++ example demonstrates a buffer over-read due to a missing NULL terminator. The main method of a pattern matching utility that looks for a specific pattern within a specific file uses the string strncopy() method to copy the command line user input file name and pattern to the Filename and Pattern character arrays respectively.
int main(int argc, char **argv) { char Filename[256]; char Pattern[32]; /* Validate number of parameters and ensure valid content */ ... /* copy filename parameter to variable, may cause off-by-one overflow */ strncpy(Filename, argv[1], sizeof(Filename)); /* copy pattern parameter to variable, may cause off-by-one overflow */ strncpy(Pattern, argv[2], sizeof(Pattern)); printf("Searching file: %s for the pattern: %s\n", Filename, Pattern); Scan_File(Filename, Pattern); }
Bad · C
/* copy filename parameter to variable, no off-by-one overflow */ strncpy(Filename, argv[2], sizeof(Filename)-1); Filename[255]='\0'; /* copy pattern parameter to variable, no off-by-one overflow */ strncpy(Pattern, argv[3], sizeof(Pattern)-1); Pattern[31]='\0';
Good · C
CVE IDTitleCVSSSeverityPublished
CVE-2021-34325 Siemens JT2GO 和 Siemens Teamcenter Visualization 缓冲区错误漏洞 — JT2Go 5.5 -2021-07-13
CVE-2021-34322 Siemens Jt2go 和 Siemens Teamcenter Visualization 缓冲区错误漏洞 — JT2Go 5.5 -2021-07-13
CVE-2021-34321 Siemens JT2GO 和 Siemens Teamcenter Visualization 缓冲区错误漏洞 — JT2Go 5.5 -2021-07-13
CVE-2021-34320 Siemens JT2GO 和 Siemens Teamcenter Visualization 缓冲区错误漏洞 — JT2Go 5.5 -2021-07-13
CVE-2021-34308 Siemens JT2GO 缓冲区错误漏洞 — JT2Go 5.5 -2021-07-13
CVE-2021-34307 Siemens Jt2go 缓冲区错误漏洞 — JT2Go 5.5 -2021-07-13
CVE-2021-34304 Siemens JT2GO 缓冲区错误漏洞 — JT2Go 5.5 -2021-07-13
CVE-2021-34303 Siemens JT2GO 缓冲区错误漏洞 — JT2Go 5.5 -2021-07-13
CVE-2021-34302 Siemens JT2GO 缓冲区错误漏洞 — JT2Go 5.5 -2021-07-13
CVE-2021-34299 Siemens JT2GO 缓冲区错误漏洞 — JT2Go 5.5 -2021-07-13
CVE-2021-1373 Cisco IOS XE Wireless Controller Software for the Catalyst 9000 Family CAPWAP Denial of Service Vulnerability — Cisco IOS XE Software 8.6 High2021-03-24
CVE-2020-25853 Realtek RTL8195AM 缓冲区错误漏洞 — Realtek RTL8195A Wi-Fi Module 7.5 -2021-02-03
CVE-2020-3399 Cisco IOS XE Wireless Controller Software for the Catalyst 9000 Family CAPWAP Denial of Service Vulnerability — Cisco IOS XE Software 8.6 High2020-09-24
CVE-2020-8244 npm bl 缓冲区错误漏洞 — bl 7.5 -2020-08-30
CVE-2019-1010220 tcpdump 缓冲区错误漏洞 — tcpdump 6.1 -2019-07-22
CVE-2019-5432 mqtt-packet module 缓冲区错误漏洞 — mqtt-packet 7.5 -2019-05-06
CVE-2019-11036 Heap over-read in PHP EXIF extension — PHP 9.1 -2019-05-03
CVE-2019-3563 Facebook Wangle 缓冲区错误漏洞 — Wangle 9.8 -2019-04-29
CVE-2018-8791 rdesktop 缓冲区错误漏洞 — rdesktop 7.5 -2019-02-05
CVE-2018-8792 rdesktop 缓冲区错误漏洞 — rdesktop 7.5 -2019-02-05
CVE-2018-8796 rdesktop 缓冲区错误漏洞 — rdesktop 7.5 -2019-02-05
CVE-2018-8798 rdesktop 缓冲区错误漏洞 — rdesktop 7.5 -2019-02-05
CVE-2018-8799 rdesktop 缓冲区错误漏洞 — rdesktop 7.5 -2019-02-05
CVE-2018-8789 FreeRDP NTLM Authentication模块缓冲区错误漏洞 — FreeRDP 7.5 -2018-11-29
CVE-2018-14790 多款Fuji Electric产品缓冲区错误漏洞 — FRENIC LOADER of FRENIC-Mini (C1), FRENIC-Mini (C2), FRENIC-Eco, FRENIC-Multi, FRENIC-MEGA, FRENIC-Ace 9.8 -2018-10-01
CVE-2017-7668 Apache httpd 安全漏洞 — Apache HTTP Server 9.1 -2017-06-20
CVE-2017-7679 Apache httpd 安全漏洞 — Apache HTTP Server 9.8 -2017-06-20

Vulnerabilities classified as CWE-126 (缓冲区上溢读取) represent 417 CVEs. The CWE taxonomy describes the weakness; review individual CVEs for product-specific impact.