CWE-787

Out-of-bounds Write

The product writes data past the end, or before the beginning, of the intended buffer.

CVE-2021-38406 (GCVE-0-2021-38406)

Vulnerability from cvelistv5 – Published: 2021-09-17 18:54 – Updated: 2025-10-21 23:25
VLAI
Title
Delta Electronics DOPSoft 2 Out-of-Bounds Write
Summary
Delta Electronic DOPSoft 2 (Version 2.00.07 and prior) lacks proper validation of user-supplied data when parsing specific project files. This could result in multiple out-of-bounds write instances. An attacker could leverage this vulnerability to execute code in the context of the current process.
CWE
Assigner
References
Impacted products
Vendor Product Version
Delta Electronics DOPSoft 2 Affected: unspecified , ≤ 2.00.07 (custom)
Create a notification for this product.
Date Public
2021-09-09 00:00
Credits
kimiya, working with Trend Micro’s Zero Day Initiative
Show details on NVD website

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CVE-2021-38419 (GCVE-0-2021-38419)

Vulnerability from cvelistv5 – Published: 2021-12-20 20:08 – Updated: 2024-08-04 01:44
VLAI
Title
Fuji Electric Tellus Lite V-Simulator out of bounds write
Summary
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CWE
Assigner
References
Impacted products
Vendor Product Version
Fuji Electric V-Server Lite Affected: unspecified , < 4.0.12.0 (custom)
Create a notification for this product.
Fuji Electric Tellus Lite V-Simulator Affected: unspecified , < 4.0.12.0 (custom)
Create a notification for this product.
Credits
kimiya, working with Trend Micro’s Zero Day Initiative, and Michael Heinzl reported these vulnerabilities to CISA.
Show details on NVD website

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CVE-2021-38426 (GCVE-0-2021-38426)

Vulnerability from cvelistv5 – Published: 2021-10-18 12:38 – Updated: 2024-09-16 20:03
VLAI
Title
FATEK Automation WinProladder
Summary
FATEK Automation WinProladder versions 3.30 and prior lacks proper validation of user-supplied data when parsing project files, which could result in an out-of-bounds write. An attacker could leverage this vulnerability to execute arbitrary code.
CWE
  • CWE-787 - OUT-OF-BOUNDS WRITE CWE-787
Assigner
References
Impacted products
Vendor Product Version
FATEK Automation WinProladder Affected: All , ≤ 3.30 (custom)
Create a notification for this product.
Date Public
2021-10-07 00:00
Credits
xina1i and Natnael Samson (@NattiSamson), working with Trend Micro’s Zero Day Initiative, reported these vulnerabilities to CISA.
Show details on NVD website

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CVE-2021-38479 (GCVE-0-2021-38479)

Vulnerability from cvelistv5 – Published: 2021-10-22 11:22 – Updated: 2024-09-16 17:28
VLAI
Title
AUVESY Versiondog
Summary
Many API function codes receive raw pointers remotely from the user and trust these pointers as valid in-bound memory regions. An attacker can manipulate API functions by writing arbitrary data into the resolved address of a raw pointer.
CWE
Assigner
References
Impacted products
Vendor Product Version
AUVESY Versiondog Affected: All , ≤ 8.0 (custom)
Create a notification for this product.
Date Public
2021-08-19 00:00
Credits
Amir Preminger of Claroty reported these vulnerabilities to CISA.
Show details on NVD website

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CVE-2021-38684 (GCVE-0-2021-38684)

Vulnerability from cvelistv5 – Published: 2021-11-13 00:50 – Updated: 2024-09-17 02:16
VLAI
Title
Buffer Overflow Vulnerability in Multimedia Console
Summary
A stack buffer overflow vulnerability has been reported to affect QNAP NAS running Multimedia Console. If exploited, this vulnerability allows attackers to execute arbitrary code. We have already fixed this vulnerability in the following versions of Multimedia Console: Multimedia Console 1.4.3 ( 2021/10/05 ) and later Multimedia Console 1.5.3 ( 2021/10/05 ) and later
CWE
Assigner
References
Impacted products
Vendor Product Version
QNAP Systems Inc. Multimedia Console Affected: unspecified , < 1.4.3 ( 2021/10/05 ) (custom)
Affected: unspecified , < 1.5.3 ( 2021/10/05 ) (custom)
Create a notification for this product.
Date Public
2021-11-11 00:00
Credits
crixer
Show details on NVD website

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CVE-2021-39218 (GCVE-0-2021-39218)

Vulnerability from cvelistv5 – Published: 2021-09-17 20:10 – Updated: 2024-08-04 01:58
VLAI
Title
Out-of-bounds read/write and invalid free with `externref`s and GC safepoints in Wasmtime
Summary
Wasmtime is an open source runtime for WebAssembly & WASI. In Wasmtime from version 0.26.0 and before version 0.30.0 is affected by a memory unsoundness vulnerability. There was an invalid free and out-of-bounds read and write bug when running Wasm that uses `externref`s in Wasmtime. To trigger this bug, Wasmtime needs to be running Wasm that uses `externref`s, the host creates non-null `externrefs`, Wasmtime performs a garbage collection (GC), and there has to be a Wasm frame on the stack that is at a GC safepoint where there are no live references at this safepoint, and there is a safepoint with live references earlier in this frame's function. Under this scenario, Wasmtime would incorrectly use the GC stack map for the safepoint from earlier in the function instead of the empty safepoint. This would result in Wasmtime treating arbitrary stack slots as `externref`s that needed to be rooted for GC. At the *next* GC, it would be determined that nothing was referencing these bogus `externref`s (because nothing could ever reference them, because they are not really `externref`s) and then Wasmtime would deallocate them and run `<ExternRef as Drop>::drop` on them. This results in a free of memory that is not necessarily on the heap (and shouldn't be freed at this moment even if it was), as well as potential out-of-bounds reads and writes. Even though support for `externref`s (via the reference types proposal) is enabled by default, unless you are creating non-null `externref`s in your host code or explicitly triggering GCs, you cannot be affected by this bug. We have reason to believe that the effective impact of this bug is relatively small because usage of `externref` is currently quite rare. This bug has been patched and users should upgrade to Wasmtime version 0.30.0. If you cannot upgrade Wasmtime at this time, you can avoid this bug by disabling the reference types proposal by passing `false` to `wasmtime::Config::wasm_reference_types`.
CWE
Assigner
References
Impacted products
Vendor Product Version
bytecodealliance wasmtime Affected: >= 0.26.0, <= 0.29.0
Create a notification for this product.
Show details on NVD website

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CVE-2021-39820 (GCVE-0-2021-39820)

Vulnerability from cvelistv5 – Published: 2022-06-15 16:53 – Updated: 2025-04-23 18:15
VLAI
Title
Adobe InDesign Memory Corruption Vulnerability Could Lead to Arbitrary Code Execution
Summary
Adobe InDesign versions 16.3 (and earlier), and 16.3.1 (and earlier) is affected by an Out-of-bounds Write vulnerability due to insecure handling of a malicious TIFF file, potentially resulting in arbitrary code execution in the context of the current user. User interaction is required to exploit this vulnerability.
CWE
  • CWE-787 - Out-of-bounds Write (CWE-787)
Assigner
References
Impacted products
Vendor Product Version
Adobe InDesign Affected: 0 , ≤ 16.3.2 (semver)
Create a notification for this product.
Date Public
2021-09-14 17:00
Show details on NVD website

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CVE-2021-39822 (GCVE-0-2021-39822)

Vulnerability from cvelistv5 – Published: 2023-07-20 06:23 – Updated: 2025-03-05 18:48
VLAI
Title
Adobe InDesign BMP File Parsing Out-Of-Bounds Write Remote Code Execution Vulnerability
Summary
Adobe InDesign versions 16.3 (and earlier), and 16.3.1 (and earlier) are affected by an out-of-bounds write vulnerability that could result in arbitrary code execution in the context of the current user. Exploitation of this issue requires user interaction in that a victim must open a malicious BMP file.
CWE
  • CWE-787 - Out-of-bounds Write (CWE-787)
Assigner
References
Impacted products
Vendor Product Version
Adobe InDesign Affected: 0 , ≤ 16.3.2 (semver)
Create a notification for this product.
Date Public
2021-09-14 17:00
Show details on NVD website

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CVE-2021-39825 (GCVE-0-2021-39825)

Vulnerability from cvelistv5 – Published: 2021-09-27 15:43 – Updated: 2024-09-16 16:18
VLAI
Title
Adobe Photoshop Elements Edit 2021 TTF Font Parsing Out-Of-Bounds Write Remote Code Execution Vulnerability
Summary
Photoshop Elements versions 2021 build 19.0 (20210304.m.156367) (and earlier) are affected by an out-of-bounds write vulnerability that could result in arbitrary code execution in the context of the current user. Exploitation of this issue requires user interaction in that a victim must open a malicious TTF file.
CWE
  • CWE-787 - Out-of-bounds Write (CWE-787)
Assigner
References
Impacted products
Vendor Product Version
Adobe Photoshop Elements Affected: unspecified , ≤ 2021.156367 (custom)
Affected: unspecified , ≤ None (custom)
Create a notification for this product.
Date Public
2021-09-14 00:00
Show details on NVD website

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CVE-2021-39829 (GCVE-0-2021-39829)

Vulnerability from cvelistv5 – Published: 2021-09-29 15:37 – Updated: 2025-04-23 19:26
VLAI
Title
Adobe FrameMaker PDF File Parsing Out-Of-Bounds Write Remote Code Execution Vulnerability
Summary
Adobe Framemaker versions 2019 Update 8 (and earlier) and 2020 Release Update 2 (and earlier) are affected by an out-of-bounds write vulnerability that could result in arbitrary code execution in the context of the current user. Exploitation of this issue requires user interaction in that a victim must open a malicious PDF file.
CWE
  • CWE-787 - Out-of-bounds Write (CWE-787)
Assigner
References
Impacted products
Vendor Product Version
Adobe FrameMaker Affected: unspecified , ≤ 2020.2 (custom)
Affected: unspecified , ≤ 2019.8 (custom)
Affected: unspecified , ≤ None (custom)
Create a notification for this product.
Date Public
2021-09-14 00:00
Show details on NVD website

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Mitigation ID: MIT-3

Phase: Requirements

Strategy: Language Selection

Description:

  • Use a language that does not allow this weakness to occur or provides constructs that make this weakness easier to avoid.
  • For example, many languages that perform their own memory management, such as Java and Perl, are not subject to buffer overflows. Other languages, such as Ada and C#, typically provide overflow protection, but the protection can be disabled by the programmer.
  • Be wary that a language's interface to native code may still be subject to overflows, even if the language itself is theoretically safe.
Mitigation ID: MIT-4.1

Phase: Architecture and Design

Strategy: Libraries or Frameworks

Description:

  • Use a vetted library or framework that does not allow this weakness to occur or provides constructs that make this weakness easier to avoid.
  • Examples include the Safe C String Library (SafeStr) by Messier and Viega [REF-57], and the Strsafe.h library from Microsoft [REF-56]. These libraries provide safer versions of overflow-prone string-handling functions.
Mitigation ID: MIT-10

Phases: Operation, Build and Compilation

Strategy: Environment Hardening

Description:

  • Use 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 canary-based detection in detail.
Mitigation ID: MIT-9

Phase: Implementation

Description:

  • Consider adhering to the following rules when allocating and managing an application's memory:
  • Double check that the buffer is as large as specified.
  • When using functions that accept a number of bytes to copy, such as strncpy(), be aware that if the destination buffer size is equal to the source buffer size, it may not NULL-terminate the string.
  • Check buffer boundaries if accessing the buffer in a loop and make sure there is no danger of writing past the allocated space.
  • If necessary, truncate all input strings to a reasonable length before passing them to the copy and concatenation functions.
Mitigation ID: MIT-11

Phases: Operation, Build and Compilation

Strategy: Environment Hardening

Description:

  • Run 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 modules may be similarly realigned if their default memory addresses conflict with other modules, in a process known as "rebasing" (for Windows) and "prelinking" (for Linux) [REF-1332] using randomly generated addresses. ASLR for libraries cannot be used in conjunction with prelink since it would require relocating the libraries at run-time, defeating the whole purpose of prelinking.
  • For more information on these techniques see D3-SAOR (Segment Address Offset Randomization) from D3FEND [REF-1335].
Mitigation ID: MIT-12

Phase: Operation

Strategy: Environment Hardening

Description:

  • Use a CPU and operating system that offers Data Execution Protection (using hardware NX or XD bits) or the equivalent techniques that simulate this feature in software, such as PaX [REF-60] [REF-61]. These techniques ensure that any instruction executed is exclusively at a memory address that is part of the code segment.
  • For more information on these techniques see D3-PSEP (Process Segment Execution Prevention) from D3FEND [REF-1336].
Mitigation ID: MIT-13

Phase: Implementation

Description:

  • Replace unbounded copy functions with analogous functions that support length arguments, such as strcpy with strncpy. Create these if they are not available.

No CAPEC attack patterns related to this CWE.

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