| CVE |
Vendors |
Products |
Updated |
CVSS v3.1 |
| Joyland AI app explicitly permits cleartext HTTP traffic on Android 9+ where the default is to block it. |
| Unencrypted traffic in the 802.11 network of Teledyne FLIR Aware2 versions through 6.9.0.2 allows adjacent unauthenticated attackers to intercept, hijack, or modify session traffic against Teledyne FLIR PackBot robots running this software via sniffing or hijacking network traffic. |
| Missing authentication in the web interface in Teledyne FLIR Aware2 versions through 6.9.0.2 allows remote unauthenticated attackers to achieve denial of service against Teledyne FLIR PackBot robots running this software via misuse of the reboot endpoint. |
| Unvalidated pathnames in the web interface in Teledyne FLIR Aware2 versions through 6.9.0.2 (PackBot) and 1.7.9 (FirstLook) allows remote unauthenticated attackers to read configuration and security parameters on Teledyne FLIR PackBot and FirstLook robots running this software via path traversal. |
| Hardcoded passwords in the access control in Teledyne FLIR Aware2 versions through 6.9.0.2 (PackBot) and 1.7.9 (FirstLook) allows remote unauthenticated attackers to access and reconfigure Teledyne FLIR PackBot and FirstLook robots running this software via reading the passwords from the firmware or documentation. |
| Cleartext transmission in the primary control endpoints of Teledyne FLIR Aware2 versions through 6.9.0.2 allows remote unauthenticated attackers to intercept, hijack, or modify session traffic against Teledyne FLIR PackBot robots running this software via sniffing or hijacking network traffic. |
| Cleartext transmission without a cryptographic integrity check in operator control unit to robot UDP traffic in Teledyne FLIR Aware2 versions through 6.9.0.2 (PackBot) and 1.7.9 (FirstLook) allows adjacent unauthenticated attackers to intercept, hijack, or modify control traffic against Teledyne FLIR PackBot and FirstLook robots running this software via sniffing or hijacking network traffic. |
| The Joyland AI app accepts invalid SSL certificates in the invisible advertisement WebView by default. |
| Wormhole.app as deployed before 2026-08-22 misconfigures the coturn TURN server and does not properly restrict TCP relay peers, allowing an unauthenticated attacker to access instance metadata or to source TCP connections from the Wormhole relay's IP. |
| The Cadmos LTI application hosted at cadmos.eummena.io had Laravel debug mode enabled (APP_DEBUG=true, APP_ENV=local) in a publicly accessible environment. An unauthenticated attacker could send a GET request and trigger an unhandled exception, causing Laravel to expose the entire server environment, including all .env configuration variables, in plaintext. Fixed on or before 2026-09-02. |
| OpenRun is an open-source, self-hosted GitOps platform for deploying web apps and internal tools to Docker or Kubernetes. Prior to version 0.17.7, the restrictions on redirect URLs in openrun can be bypassed by attackers, leading to open redirect attacks. This issue has been patched in version 0.17.7. |
| figlet.js is a FIG driver written in JavaScript that aims to implement the FIGfont specification. Prior to 1.11.3, text() and textSync() can enter an unbounded loop when whitespaceBreak is enabled and width is smaller than the rendered width of a single FIGlet character. Under these conditions, breakWord() cannot find a valid break point and returns without consuming a character, so generateFigTextLines() repeatedly processes the same input while consuming CPU and growing memory. The non-default option and attacker-controlled width must both reach an affected call. This issue is fixed in version 1.11.3. |
| Uncontrolled recursion in the Ion reader in Amazon Ion Python before 0.15.0 might allow a remote unauthenticated actor to crash the application using the library, resulting in a denial of service, via a crafted, deeply nested Ion value.
To remediate this issue, users should upgrade to version 0.15.0 or later. |
| Kasa EC70 v4
and EC71 v4 do not logically disable the production debug interface at the
firmware or chip level and do not lock the bootloader. Although the debug traces are physically
severed during manufacturing, an attacker with physical access can restore the
connection, interrupt the boot process, and manipulate boot parameters to enter
a non-standard initialization path that exposes an unauthenticated root shell
during startup.
Successful exploitation may allow an
attacker with physical access to obtain root-level command access during device
startup, resulting in loss of confidentiality, integrity, and availability for
the affected device. Exploitation requires device disassembly, restoration of
the severed debug connection, and manipulation of the boot process. |
| A fail-open error handling issue within the data masking utility of Powertools for AWS Lambda (Python) might allow actors to read sensitive field values that the application intended to mask.
To remediate this issue, users should upgrade to version 3.35.0. |
| This vulnerability enables unauthenticated remote code execution (RCE) on a victim's machine by exploiting a combination of cryptographic weaknesses and memory management issues in the SConnect native host component.
The attack leverages an unrestricted messaging interface between an attacker-controlled web page and the native host, allowing malicious input to bypass security checks. |
| API
key is hardcoded and retrievable from the application package. Since Android
applications can be reverse engineered, embedding sensitive API credentials
directly in the client application may allow unauthorized users to extract and
misuse the key. |
| Uncontrolled search path for some Hardware-Aware-Automated-MachineLearning NA before version 45cd723 within Ring 3: User Applications may allow an escalation of privilege. Unprivileged software adversary with a privileged user combined with a low complexity attack may enable escalation of privilege. This result may potentially occur via local access when attack requirements are present without special internal knowledge and requires passive user interaction. The potential vulnerability may impact the confidentiality (high), integrity (high) and availability (high) of the vulnerable system, resulting in subsequent system confidentiality (none), integrity (none) and availability (none) impacts. |
| An API key is
hardcoded and retrievable from the application package. Since Android
applications can be reverse engineered, embedding sensitive API credentials
directly in the client application may allow unauthorized users to extract and
misuse the key. |
| Transmission of a sensitive key in the URL
over an unencrypted HTTP connection. The
request is sent over HTTP rather than HTTPS, meaning the key is transmitted in
plaintext across the network. An attacker with the ability to monitor network
traffic could intercept the request and obtain the key |