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CWE-122 (堆缓冲区溢出) — Vulnerability Class 1863

1863 vulnerabilities classified as CWE-122 (堆缓冲区溢出). AI Chinese analysis included.

CWE-122 represents a critical memory safety weakness where an application writes data beyond the allocated boundaries of a heap-allocated buffer, typically created via functions like malloc. This vulnerability arises when developers fail to validate input lengths or perform insufficient bounds checking before copying data into dynamically allocated memory regions. Attackers exploit this flaw by crafting malicious inputs that exceed buffer limits, allowing them to overwrite adjacent heap metadata or control structures. Such overwrites can corrupt the heap manager’s internal state, leading to application crashes, data leakage, or arbitrary code execution by hijacking control flow. To prevent heap-based buffer overflows, developers must rigorously validate all input sizes against buffer capacities, utilize safe string handling libraries that enforce length limits, and employ modern memory-safe programming languages that automatically manage memory boundaries, thereby eliminating manual pointer arithmetic errors.

MITRE CWE Description
A heap overflow condition is a buffer overflow, where the buffer that can be overwritten is allocated in the heap portion of memory, generally meaning that the buffer was allocated using a routine such as malloc().
Common Consequences (3)
AvailabilityDoS: Crash, Exit, or Restart, DoS: Resource Consumption (CPU), DoS: Resource Consumption (Memory)
Buffer overflows generally lead to crashes. Other attacks leading to lack of availability are possible, including putting the program into an infinite loop.
Integrity, Confidentiality, Availability, Access ControlExecute Unauthorized Code or Commands, Bypass Protection Mechanism, Modify Memory
Buffer overflows often can be used to execute arbitrary code, which is usually outside the scope of a program's implicit security policy. Besides important user data, heap-based overflows can be used to overwrite function pointers that may be living in memory, pointing it to the attacker's code. Eve…
Integrity, Confidentiality, Availability, Access Control, OtherExecute Unauthorized Code or Commands, Bypass Protection Mechanism, Other
When the consequence is arbitrary code execution, this can often be used to subvert any other security service.
Mitigations (5)
Pre-design: Use a language or compiler that performs automatic bounds checking.
Architecture and DesignUse an abstraction library to abstract away risky APIs. Not a complete solution.
Operation, Build and CompilationUse automatic buffer overflow detection mechanisms that are offered by certain compilers or compiler extensions. Examples include: the Microsoft Visual Studio /GS flag, Fedora/Red Hat FORTIFY_SOURCE GCC flag, StackGuard, and ProPolice, which provide various mechanisms including canary-based detection and range/index checking. D3-SFCV (Stack Frame Canary Validation) from D3FEND [REF-1334] discusses…
Effectiveness: Defense in Depth
Operation, Build and CompilationRun or compile the software using features or extensions that randomly arrange the positions of a program's executable and libraries in memory. Because this makes the addresses unpredictable, it can prevent an attacker from reliably jumping to exploitable code. Examples include Address Space Layout Randomization (ASLR) [REF-58] [REF-60] and Position-Independent Executables (PIE) [REF-64]. Imported…
Effectiveness: Defense in Depth
ImplementationImplement and perform bounds checking on input.
Examples (2)
While buffer overflow examples can be rather complex, it is possible to have very simple, yet still exploitable, heap-based buffer overflows:
#define BUFSIZE 256 int main(int argc, char **argv) { char *buf; buf = (char *)malloc(sizeof(char)*BUFSIZE); strcpy(buf, argv[1]); }
Bad · C
This example applies an encoding procedure to an input string and stores it into a buffer.
char * copy_input(char *user_supplied_string){ int i, dst_index; char *dst_buf = (char*)malloc(4*sizeof(char) * MAX_SIZE); if ( MAX_SIZE <= strlen(user_supplied_string) ){ die("user string too long, die evil hacker!"); } dst_index = 0; for ( i = 0; i < strlen(user_supplied_string); i++ ){ if( '&' == user_supplied_string[i] ){ dst_buf[dst_index++] = '&'; dst_buf[dst_index++] = 'a'; dst_buf[dst_index++] = 'm'; dst_buf[dst_index++] = 'p'; dst_buf[dst_index++] = ';'; } else if ('<' == user_supplied_string[i] ){ /* encode to &lt; */ } else dst_buf[dst_index++] = user_supplied_string[i]; } return ds
Bad · C
CVE IDTitleCVSSSeverityPublished
CVE-2025-0662 Uninitialized kernel memory disclosure via ktrace(2) — FreeBSD 5.5 -2025-01-30
CVE-2025-0753 Axiomatic Bento4 mp42aac ReadPartial heap-based overflow — Bento4 6.3 Medium2025-01-27
CVE-2025-0751 Axiomatic Bento4 mp42aac ReadBits heap-based overflow — Bento4 6.3 Medium2025-01-27
CVE-2019-15690 LibVNCServer 安全漏洞 — LibVNCServer 8.8 High2025-01-24
CVE-2025-20128 ClamAV OLE2 File Format Decryption Denial of Service Vulnerability — Cisco Secure Endpoint 5.3 Medium2025-01-22
CVE-2023-50739 A buffer overflow vulnerability has been identified in the Internet Printing Protocol (IPP) in various Lexmark devices. — Printer Firmware 8.8 High2025-01-17
CVE-2024-12084 Rsync: heap buffer overflow in rsync due to improper checksum length handling 9.8 Critical2025-01-15
CVE-2024-10254 Lenovo PC Manager、Lenovo Browser和Lenovo App Store 安全漏洞 — PC Manager 4.7 Medium2025-01-14
CVE-2024-10253 Lenovo PC Manager、Lenovo Browser和Lenovo App Store 安全漏洞 — PC Manager 4.7 Medium2025-01-14
CVE-2025-21139 Substance3D - Designer | Heap-based Buffer Overflow (CWE-122) — Substance3D - Designer 7.8 High2025-01-14
CVE-2025-21137 Substance3D - Designer | Heap-based Buffer Overflow (CWE-122) — Substance3D - Designer 7.8 High2025-01-14
CVE-2025-21129 Substance3D - Stager | Heap-based Buffer Overflow (CWE-122) — Substance3D - Stager 7.8 High2025-01-14
CVE-2025-21409 Windows Telephony Service Remote Code Execution Vulnerability — Windows 10 Version 1507 8.8 High2025-01-14
CVE-2025-21245 Windows Telephony Service Remote Code Execution Vulnerability — Windows 10 Version 1507 8.8 High2025-01-14
CVE-2025-21223 Windows Telephony Service Remote Code Execution Vulnerability — Windows 10 Version 1507 8.8 High2025-01-14
CVE-2025-21238 Windows Telephony Service Remote Code Execution Vulnerability — Windows 10 Version 1507 8.8 High2025-01-14
CVE-2025-21240 Windows Telephony Service Remote Code Execution Vulnerability — Windows 10 Version 1507 8.8 High2025-01-14
CVE-2025-21250 Windows Telephony Service Remote Code Execution Vulnerability — Windows 10 Version 1507 8.8 High2025-01-14
CVE-2025-21417 Windows Telephony Service Remote Code Execution Vulnerability — Windows 10 Version 1507 8.8 High2025-01-14
CVE-2025-21246 Windows Telephony Service Remote Code Execution Vulnerability — Windows 10 Version 1507 8.8 High2025-01-14
CVE-2025-21333 Windows Hyper-V NT Kernel Integration VSP Elevation of Privilege Vulnerability — Windows 10 Version 21H2 7.8 High2025-01-14
CVE-2025-21378 Windows CSC Service Elevation of Privilege Vulnerability — Windows 10 Version 1507 7.8 High2025-01-14
CVE-2025-21339 Windows Telephony Service Remote Code Execution Vulnerability — Windows 10 Version 1507 8.8 High2025-01-14
CVE-2025-21305 Windows Telephony Service Remote Code Execution Vulnerability — Windows 10 Version 1507 8.8 High2025-01-14
CVE-2025-21286 Windows Telephony Service Remote Code Execution Vulnerability — Windows 10 Version 1507 8.8 High2025-01-14
CVE-2025-21273 Windows Telephony Service Remote Code Execution Vulnerability — Windows 10 Version 1507 8.8 High2025-01-14
CVE-2025-21186 Microsoft Access Remote Code Execution Vulnerability — Microsoft 365 Apps for Enterprise 7.8 High2025-01-14
CVE-2025-21395 Microsoft Access Remote Code Execution Vulnerability — Microsoft 365 Apps for Enterprise 7.8 High2025-01-14
CVE-2025-21178 Visual Studio Remote Code Execution Vulnerability — Microsoft Visual Studio 2015 Update 3 8.8 High2025-01-14
CVE-2025-21306 Windows Telephony Service Remote Code Execution Vulnerability — Windows 10 Version 1507 8.8 High2025-01-14

Vulnerabilities classified as CWE-122 (堆缓冲区溢出) represent 1863 CVEs. The CWE taxonomy describes the weakness; review individual CVEs for product-specific impact.