CWE-732

Incorrect Permission Assignment for Critical Resource

The product specifies permissions for a security-critical resource in a way that allows that resource to be read or modified by unintended actors.

CVE-2019-3765 (GCVE-0-2019-3765)

Vulnerability from cvelistv5 – Published: 2019-10-09 19:20 – Updated: 2024-09-16 21:02
VLAI
Summary
Dell EMC Avamar Server versions 7.4.1, 7.5.0, 7.5.1, 18.2 and 19.1 and Dell EMC Integrated Data Protection Appliance (IDPA) versions 2.0, 2.1, 2.2, 2.3 and 2.4 contain an Incorrect Permission Assignment for Critical Resource vulnerability. A remote authenticated malicious user potentially could exploit this vulnerability to view or modify sensitive backup data. This could be used to make backups corrupt or potentially to trick a user into restoring a backup with malicious files in place.
CWE
  • CWE-732 - Incorrect Permission Assignment for Critical Resource
Assigner
References
Impacted products
Vendor Product Version
Dell Avamar Affected: 7.4.1
Affected: 7.5.0
Affected: 7.5.1
Affected: 18.2
Affected: 19.1
Create a notification for this product.
Dell Integrated Data Protection Appliance Affected: 2.0
Affected: 2.1
Affected: 2.2
Create a notification for this product.
Date Public
2019-10-04 00:00
Show details on NVD website

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CVE-2019-3866 (GCVE-0-2019-3866)

Vulnerability from cvelistv5 – Published: 2019-11-08 14:45 – Updated: 2024-08-04 19:19
VLAI
Summary
An information-exposure vulnerability was discovered where openstack-mistral's undercloud log files containing clear-text information were made world readable. A malicious system user could exploit this flaw to access sensitive user information.
CWE
Assigner
References
Impacted products
Show details on NVD website

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CVE-2019-3893 (GCVE-0-2019-3893)

Vulnerability from cvelistv5 – Published: 2019-04-09 15:17 – Updated: 2024-08-04 19:19
VLAI
Summary
In Foreman it was discovered that the delete compute resource operation, when executed from the Foreman API, leads to the disclosure of the plaintext password or token for the affected compute resource. A malicious user with the "delete_compute_resource" permission can use this flaw to take control over compute resources managed by foreman. Versions before 1.20.3, 1.21.1, 1.22.0 are vulnerable.
CWE
Assigner
Impacted products
Vendor Product Version
The Foreman Project foreman Affected: 1.20.3
Affected: 1.21.1
Affected: 1.22.0
Create a notification for this product.
Show details on NVD website

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CVE-2019-5642 (GCVE-0-2019-5642)

Vulnerability from cvelistv5 – Published: 2019-11-06 18:30 – Updated: 2024-09-17 04:24
VLAI
Title
MAGICK
Summary
Rapid7 Metasploit Pro version 4.16.0-2019081901 and prior suffers from an instance of CWE-732, wherein the unique server.key is written to the file system during installation with world-readable permissions. This can allow other users of the same system where Metasploit Pro is installed to intercept otherwise private communications to the Metasploit Pro web interface.
CWE
  • CWE-732 - Incorrect Permission Assignment for Critical Resource
Assigner
References
Impacted products
Vendor Product Version
Rapid7 Metasploit Pro Affected: unspecified , ≤ 4.16.0-2019081901 (custom)
Create a notification for this product.
Date Public
2019-09-12 00:00
Credits
This issue was discovered and reported to Rapid7 by Rodney Beele. It is being disclosed in accordance with Rapid7's vulnerability disclosure policy (https://www.rapid7.com/disclosure/).
Show details on NVD website

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CVE-2020-10140 (GCVE-0-2020-10140)

Vulnerability from cvelistv5 – Published: 2020-10-21 13:40 – Updated: 2024-08-04 10:50
VLAI
Summary
Acronis True Image 2021 fails to properly set ACLs of the C:\ProgramData\Acronis directory. Because some privileged processes are executed from the C:\ProgramData\Acronis, an unprivileged user can achieve arbitrary code execution with SYSTEM privileges by placing a DLL in one of several paths within C:\ProgramData\Acronis.
CWE
  • CWE-732 - Incorrect Permission Assignment for Critical Resource
Assigner
References
URL Tags
https://www.kb.cert.org/vuls/id/114757 x_refsource_MISC
Impacted products
Vendor Product Version
Acronis True Image Affected: 2021 , < 32010 (custom)
Create a notification for this product.
Credits
Will Dormann
Show details on NVD website

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CVE-2020-10642 (GCVE-0-2020-10642)

Vulnerability from cvelistv5 – Published: 2020-04-13 18:52 – Updated: 2024-08-04 11:06
VLAI
Summary
In Rockwell Automation RSLinx Classic versions 4.11.00 and prior, an authenticated local attacker could modify a registry key, which could lead to the execution of malicious code using system privileges when opening RSLinx Classic.
Severity
No CVSS data available.
CWE
  • CWE-732 - INCORRECT PERMISSION ASSIGNMENT FOR CRITICAL RESOURCE CWE-732
Assigner
References
Impacted products
Vendor Product Version
n/a Rockwell Automation RSLinx Classic versions 4.1.00 and prior Affected: Rockwell Automation RSLinx Classic versions 4.1.00 and prior
Show details on NVD website

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CVE-2020-10699 (GCVE-0-2020-10699)

Vulnerability from cvelistv5 – Published: 2020-04-15 00:00 – Updated: 2024-08-04 11:06
VLAI
Summary
A flaw was found in Linux, in targetcli-fb versions 2.1.50 and 2.1.51 where the socket used by targetclid was world-writable. If a system enables the targetclid socket, a local attacker can use this flaw to modify the iSCSI configuration and escalate their privileges to root.
CWE
Assigner
Impacted products
Vendor Product Version
Datera, Inc targetcli Affected: Fixed in targetcli-fb 2.1.52
Create a notification for this product.
Show details on NVD website

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CVE-2020-10762 (GCVE-0-2020-10762)

Vulnerability from cvelistv5 – Published: 2020-11-24 16:27 – Updated: 2024-08-04 11:14
VLAI
Summary
An information-disclosure flaw was found in the way that gluster-block before 0.5.1 logs the output from gluster-block CLI operations. This includes recording passwords to the cmd_history.log file which is world-readable. This flaw allows local users to obtain sensitive information by reading the log file. The highest threat from this vulnerability is to data confidentiality.
Severity
No CVSS data available.
CWE
Assigner
References
Impacted products
Vendor Product Version
n/a gluster-block Affected: gluster-block 0.5.1
Show details on NVD website

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CVE-2020-10781 (GCVE-0-2020-10781)

Vulnerability from cvelistv5 – Published: 2020-09-16 00:00 – Updated: 2024-08-04 11:14
VLAI
Summary
A flaw was found in the Linux Kernel before 5.8-rc6 in the ZRAM kernel module, where a user with a local account and the ability to read the /sys/class/zram-control/hot_add file can create ZRAM device nodes in the /dev/ directory. This read allocates kernel memory and is not accounted for a user that triggers the creation of that ZRAM device. With this vulnerability, continually reading the device may consume a large amount of system memory and cause the Out-of-Memory (OOM) killer to activate and terminate random userspace processes, possibly making the system inoperable.
CWE
Assigner
Impacted products
Vendor Product Version
Linux Kernel kernel Affected: before 5.8-rc6
Create a notification for this product.
Show details on NVD website

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CVE-2020-10883 (GCVE-0-2020-10883)

Vulnerability from cvelistv5 – Published: 2020-03-25 19:15 – Updated: 2024-08-04 11:14
VLAI
Summary
This vulnerability allows local attackers to escalate privileges on affected installations of TP-Link Archer A7 Firmware Ver: 190726 AC1750 routers. An attacker must first obtain the ability to execute low-privileged code on the target system in order to exploit this vulnerability. The specific flaw exists within the file system. The issue lies in the lack of proper permissions set on the file system. An attacker can leverage this vulnerability to escalate privileges. Was ZDI-CAN-9651.
CWE
  • CWE-732 - Incorrect Permission Assignment for Critical Resource
Assigner
zdi
References
Impacted products
Vendor Product Version
TP-Link Archer A7 Affected: Firmware Ver: 190726
Create a notification for this product.
Credits
Pedro Ribeiro and Radek Domanski of Team Flashback
Show details on NVD website

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Mitigation

Phase: Implementation

Description:

  • When using a critical resource such as a configuration file, check to see if the resource has insecure permissions (such as being modifiable by any regular user) [REF-62], and generate an error or even exit the software if there is a possibility that the resource could have been modified by an unauthorized party.
Mitigation

Phase: Architecture and Design

Description:

  • Divide the software into anonymous, normal, privileged, and administrative areas. Reduce the attack surface by carefully defining distinct user groups, privileges, and/or roles. Map these against data, functionality, and the related resources. Then set the permissions accordingly. This will allow you to maintain more fine-grained control over your resources. [REF-207]
Mitigation ID: MIT-22

Phases: Architecture and Design, Operation

Strategy: Sandbox or Jail

Description:

  • Run the code in a "jail" or similar sandbox environment that enforces strict boundaries between the process and the operating system. This may effectively restrict which files can be accessed in a particular directory or which commands can be executed by the software.
  • OS-level examples include the Unix chroot jail, AppArmor, and SELinux. In general, managed code may provide some protection. For example, java.io.FilePermission in the Java SecurityManager allows the software to specify restrictions on file operations.
  • This may not be a feasible solution, and it only limits the impact to the operating system; the rest of the application may still be subject to compromise.
  • Be careful to avoid CWE-243 and other weaknesses related to jails.
Mitigation

Phases: Implementation, Installation

Description:

  • During program startup, explicitly set the default permissions or umask to the most restrictive setting possible. Also set the appropriate permissions during program installation. This will prevent you from inheriting insecure permissions from any user who installs or runs the program.
Mitigation

Phase: System Configuration

Description:

  • For all configuration files, executables, and libraries, make sure that they are only readable and writable by the software's administrator.
Mitigation

Phase: Documentation

Description:

  • Do not suggest insecure configuration changes in documentation, especially if those configurations can extend to resources and other programs that are outside the scope of the application.
Mitigation

Phase: Installation

Description:

  • Do not assume that a system administrator will manually change the configuration to the settings that are recommended in the software's manual.
Mitigation ID: MIT-37

Phases: Operation, System Configuration

Strategy: Environment Hardening

Description:

  • Ensure that the software runs properly under the United States Government Configuration Baseline (USGCB) [REF-199] or an equivalent hardening configuration guide, which many organizations use to limit the attack surface and potential risk of deployed software.
Mitigation

Phases: Implementation, System Configuration, Operation

Description:

  • When storing data in the cloud (e.g., S3 buckets, Azure blobs, Google Cloud Storage, etc.), use the provider's controls to disable public access.
CAPEC-1: Accessing Functionality Not Properly Constrained by ACLs

In applications, particularly web applications, access to functionality is mitigated by an authorization framework. This framework maps Access Control Lists (ACLs) to elements of the application's functionality; particularly URL's for web apps. In the case that the administrator failed to specify an ACL for a particular element, an attacker may be able to access it with impunity. An attacker with the ability to access functionality not properly constrained by ACLs can obtain sensitive information and possibly compromise the entire application. Such an attacker can access resources that must be available only to users at a higher privilege level, can access management sections of the application, or can run queries for data that they otherwise not supposed to.

CAPEC-122: Privilege Abuse

An adversary is able to exploit features of the target that should be reserved for privileged users or administrators but are exposed to use by lower or non-privileged accounts. Access to sensitive information and functionality must be controlled to ensure that only authorized users are able to access these resources.

CAPEC-127: Directory Indexing

An adversary crafts a request to a target that results in the target listing/indexing the content of a directory as output. One common method of triggering directory contents as output is to construct a request containing a path that terminates in a directory name rather than a file name since many applications are configured to provide a list of the directory's contents when such a request is received. An adversary can use this to explore the directory tree on a target as well as learn the names of files. This can often end up revealing test files, backup files, temporary files, hidden files, configuration files, user accounts, script contents, as well as naming conventions, all of which can be used by an attacker to mount additional attacks.

CAPEC-17: Using Malicious Files

An attack of this type exploits a system's configuration that allows an adversary to either directly access an executable file, for example through shell access; or in a possible worst case allows an adversary to upload a file and then execute it. Web servers, ftp servers, and message oriented middleware systems which have many integration points are particularly vulnerable, because both the programmers and the administrators must be in synch regarding the interfaces and the correct privileges for each interface.

CAPEC-180: Exploiting Incorrectly Configured Access Control Security Levels

An attacker exploits a weakness in the configuration of access controls and is able to bypass the intended protection that these measures guard against and thereby obtain unauthorized access to the system or network. Sensitive functionality should always be protected with access controls. However configuring all but the most trivial access control systems can be very complicated and there are many opportunities for mistakes. If an attacker can learn of incorrectly configured access security settings, they may be able to exploit this in an attack.

CAPEC-206: Signing Malicious Code

The adversary extracts credentials used for code signing from a production environment and then uses these credentials to sign malicious content with the developer's key. Many developers use signing keys to sign code or hashes of code. When users or applications verify the signatures are accurate they are led to believe that the code came from the owner of the signing key and that the code has not been modified since the signature was applied. If the adversary has extracted the signing credentials then they can use those credentials to sign their own code bundles. Users or tools that verify the signatures attached to the code will likely assume the code came from the legitimate developer and install or run the code, effectively allowing the adversary to execute arbitrary code on the victim's computer. This differs from CAPEC-673, because the adversary is performing the code signing.

CAPEC-234: Hijacking a privileged process

An adversary gains control of a process that is assigned elevated privileges in order to execute arbitrary code with those privileges. Some processes are assigned elevated privileges on an operating system, usually through association with a particular user, group, or role. If an attacker can hijack this process, they will be able to assume its level of privilege in order to execute their own code.

CAPEC-60: Reusing Session IDs (aka Session Replay)

This attack targets the reuse of valid session ID to spoof the target system in order to gain privileges. The attacker tries to reuse a stolen session ID used previously during a transaction to perform spoofing and session hijacking. Another name for this type of attack is Session Replay.

CAPEC-61: Session Fixation

The attacker induces a client to establish a session with the target software using a session identifier provided by the attacker. Once the user successfully authenticates to the target software, the attacker uses the (now privileged) session identifier in their own transactions. This attack leverages the fact that the target software either relies on client-generated session identifiers or maintains the same session identifiers after privilege elevation.

CAPEC-62: Cross Site Request Forgery

An attacker crafts malicious web links and distributes them (via web pages, email, etc.), typically in a targeted manner, hoping to induce users to click on the link and execute the malicious action against some third-party application. If successful, the action embedded in the malicious link will be processed and accepted by the targeted application with the users' privilege level. This type of attack leverages the persistence and implicit trust placed in user session cookies by many web applications today. In such an architecture, once the user authenticates to an application and a session cookie is created on the user's system, all following transactions for that session are authenticated using that cookie including potential actions initiated by an attacker and simply "riding" the existing session cookie.

CAPEC-642: Replace Binaries

Adversaries know that certain binaries will be regularly executed as part of normal processing. If these binaries are not protected with the appropriate file system permissions, it could be possible to replace them with malware. This malware might be executed at higher system permission levels. A variation of this pattern is to discover self-extracting installation packages that unpack binaries to directories with weak file permissions which it does not clean up appropriately. These binaries can be replaced by malware, which can then be executed.

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