Comparison Overview
Automated Industrial Robotics

Automated Industrial Robotics
LA, 90290, US
Last Update: 21/04/2026
AIR is a global automation leader with a team of over 500 automation experts, with a proven track record of delivering advanced, innovative solutions for the most challenging of manufacturing needs. Formed in response to the increasing demand for manufacturing automati...

KUKA
Zugspitzstr. 140, Augsburg, 86165, DE
Last Update: 01/04/2026
KUKA SE & Co. KGaA is a global leader in intelligent automation solutions, generating around 3.7 billion euro in sales and employing approximately 15,000 people worldwide. Headquartered in Augsburg, Germany, KUKA’s mission is to make automation accessible for everyone -...
Compliance Ranges Comparison

Automated Industrial Robotics







KUKA






Benchmark & Cyber Underwriting Signals
Incidents vs Automation Machinery Manufacturing Industry Avg (This Year)
No incidents recorded for Automated Industrial Robotics in 2026.
Incidents vs Automation Machinery Manufacturing Industry Avg (This Year)
No incidents recorded for KUKA in 2026.
Incident History - Automated Industrial Robotics (X = Date, Y = Severity)
Automated Industrial Robotics cyber incidents detection timeline including parent company and subsidiaries.
Incident History - KUKA (X = Date, Y = Severity)
KUKA cyber incidents detection timeline including parent company and subsidiaries.
Notable Incidents

Automated Industrial Robotics

KUKA
FAQ
Latest Global CVEs
A vulnerability in keras-team/keras version 3.15.0 allows unsafe deserialization of attacker-controlled PyTorch pickle data through the public `keras.layers.TorchModuleWrapper.from_config` method. This method invokes `torch.load(..., weights_only=False)` without requiring an explicit unsafe opt-in, such as a `safe_mode=False` parameter. When called outside a `SafeModeScope(True)` context, the absence of an ambient safe mode state permits unsafe deserialization by default. This issue can lead to arbitrary code execution if untrusted Keras layer configurations are processed using this method. The vulnerability arises because the method does not enforce safe deserialization practices unless explicitly guarded by Keras safe mode.
In the Linux kernel, the following vulnerability has been resolved: iommu/amd: Remove latent out-of-bounds access in IOMMU debugfs In iommu_mmio_write() and iommu_capability_write(), the variables dbg_mmio_offset and dbg_cap_offset are declared as int. However, they are populated using kstrtou32_from_user(). If a user provides a sufficiently large value, it can become a negative integer. Prior to this patch, the AMD IOMMU debugfs implementation was already protected by different mechanisms. 1. #define OFS_IN_SZ 8 ensures the user string <= 8 bytes, so e.g. 0xffffffff isn't a valid input. if (cnt > OFS_IN_SZ) return -EINVAL; 2. Implicit type promotion in iommu_mmio_write(), dbg_mmio_offset is int and iommu->mmio_phys_end is u64 if (dbg_mmio_offset > iommu->mmio_phys_end - sizeof(u64)) return -EINVAL; 3. The show handlers would currently catch the negative number and refuse to perform the read. Replace kstrtou32_from_user() with kstrtos32_from_user() to parse the input, and check for negative values to explicitly prevent out-of-bounds memory accesses directly in iommu_mmio_write() and iommu_capability_write().
In the Linux kernel, the following vulnerability has been resolved: sysfs: don't remove existing directory on update failure When sysfs_update_group() is called for a named group and create_files() fails (e.g. -ENOMEM), internal_create_group() calls kernfs_remove(kn) on the group directory. In the update path, kn was obtained via kernfs_find_and_get() and refers to a directory that already existed before this call. Removing it silently destroys a sysfs group that the caller did not create. Only remove the directory if we created it ourselves. On update failure the directory remains as it is left empty by remove_files() inside create_files(), but can be repopulated by a retry.
- https://git.kernel.org/stable/c/14f2c14ae86c4af17a0a9f8ab46dacf2d5fd1d8a
- https://git.kernel.org/stable/c/237557b8a81ab948e8332f7c0058e758f081c0a3
- https://git.kernel.org/stable/c/31527d80234caf83dc96ad478645e57df9de4472
- https://git.kernel.org/stable/c/48fa96538bd2868034d33429e4565fda384d0736
- https://git.kernel.org/stable/c/57b285e0368290aa55f79ba11419b96d0ebdb418
- https://git.kernel.org/stable/c/708f6926f61f71e09b5e9fd668b9882ccd46e69f
- https://git.kernel.org/stable/c/c5e125c828b701afaf7493b42a14aa89362ff36d
- https://git.kernel.org/stable/c/ccadd32cc1263802a5969c9efe0e96225450428c
In the Linux kernel, the following vulnerability has been resolved: mm/damon/sysfs-schemes: call missing mem_cgroup_iter_break() damon_sysfs_memcg_path_to_id() breaks mem_cgroup_iter() loop without calling mem_cgroup_iter_break(). This leaks the cgroup reference. Fix the issue by calling mem_cgroup_iter_break() before the break. The issue was discovered [1] by Sashiko.
- https://git.kernel.org/stable/c/082351f9d40007414ad6af062b3a26fa02fd4b5f
- https://git.kernel.org/stable/c/1bd31386ec3b9ccec10c04429948a306ec5897c0
- https://git.kernel.org/stable/c/302e02f9ba49f81418ec2a749ae6f5cac1d424e9
- https://git.kernel.org/stable/c/30a361be33f3793b9ecbd10ab7be6d0564819b79
- https://git.kernel.org/stable/c/d4e7b5c4cc353f154d5ab8bb2e1ce7714d77a6e9
In the Linux kernel, the following vulnerability has been resolved: efi: Allocate runtime workqueue before ACPI init Since commit 5894cf571e14 ("acpi/prmt: Use EFI runtime sandbox to invoke PRM handlers") ACPI PRM calls are delegated to a workqueue which runs in a kernel thread, making it easier to detect and mitigate faulting memory accesses performed by the firmware. Rafael reports that such PRM accesses may occur before efisubsys_init() executes, which is where the workqueue is allocated, leading to NULL pointer dereferences. Since acpi_init() [which triggers the early PRM accesses] executes as a subsys_initcall() as well, and has its own dependencies that may be sensitive to initcall ordering, deferring acpi_init() is not an option. So instead, split off the workqueue allocation into its own postcore initcall, as this is the only missing piece to allow EFI runtime calls to be made. This ensures that EFI runtime call (including PRM calls) are accessible to all code running at subsys_initcall() level.
- https://git.kernel.org/stable/c/13c6da02e767152c9ac4330962247a5e47011035
- https://git.kernel.org/stable/c/29cd94e678fcb3c4fd0f359deeac6d61334323fc
- https://git.kernel.org/stable/c/6996e954ae830f5b793ba6cf449885ca519dbdd2
- https://git.kernel.org/stable/c/c32a1fbe0f9a48453a552bb315cc4f1e7a74084e
- https://git.kernel.org/stable/c/e871549f7894ad4114b3dd53f241aa25a268ba8b