Comparison Overview
Israel Defense Forces

Israel Defense Forces
1 HaKirya, Tel Aviv, 6473209, IL
Last Update: 04/04/2026
The Israel Defense Forces (IDF) is the military of the State of Israel, responsible for the nation's defense and security. Founded in 1948, the IDF ranks among the most battle-tested armed forces in the world, having had to defend the country in six major wars. At the...

Swedish Armed Forces
Lidingövägen 24, Stockholm, SE, 107 85
Last Update: 04/04/2026
The Swedish Armed Forces is one of the biggest authorities in Sweden and is headed by a Supreme Commander. The deputy leader of the authority is the Director General. As the only authority permitted to engage in armed combat, the Swedish Armed Forces are Sweden’s ult...
Compliance Ranges Comparison

Israel Defense Forces







Swedish Armed Forces






Benchmark & Cyber Underwriting Signals
Incidents vs Armed Forces Industry Avg (This Year)
Israel Defense Forces has 57.98% fewer incidents than the average of same-industry companies with at least one recorded incident.
Incidents vs Armed Forces Industry Avg (This Year)
No incidents recorded for Swedish Armed Forces in 2026.
Incident History - Israel Defense Forces (X = Date, Y = Severity)
Israel Defense Forces cyber incidents detection timeline including parent company and subsidiaries.
Incident History - Swedish Armed Forces (X = Date, Y = Severity)
Swedish Armed Forces cyber incidents detection timeline including parent company and subsidiaries.
Notable Incidents

Israel Defense Forces

Swedish Armed Forces
FAQ
Latest Global CVEs
The CONS_HISTORY ioctl handler did not adequately validate the requested history size. A large value caused an integer overflow in the buffer size calculation, resulting in a heap allocation smaller than expected. Subsequent initialization of the buffer wrote beyond the end of the allocation. An unprivileged local user with access to a vt(4) device can trigger an out-of-bounds write in the kernel, potentially escalating privileges.
The ELF image activator cleared per-process ASLR preference flags for setuid binaries after the code that computes the PIE base address, rather than before. As a result, a user-requested ASLR disable was still in effect at the point where the base address was chosen. An unprivileged local user can disable ASLR for a setuid PIE binary by calling procctl(2) before execve(2). This makes exploitation of any separate memory corruption vulnerability in that binary significantly easier.
Second, the audio buffer backing a mapping could be freed when the device was closed even though the mapping remained valid. The freed memory could then be reused elsewhere while still accessible through the stale mapping. The /dev/dsp device nodes are world-accessible by default. On a system with an audio device, either issue allows an unprivileged local user to read and write kernel memory, which can be used to escalate privileges, potentially gaining full control of the affected system. At a minimum, an attacker can crash the kernel, resulting in a Denial of Service (DoS).
The Linuxulator determined whether a binary was set-user-ID or set-group-ID by checking the P_SUGID process flag. During execve(2), this flag is not yet set at the point where the auxiliary vector is constructed, so AT_SECURE was incorrectly set to zero for set-user-ID and set-group-ID executables. An unprivileged local user can inject a shared library via LD_PRELOAD into a set-user-ID or set-group-ID Linux binary, gaining the privileges of that binary.
The kernel handler for IPV6_MSFILTER dropped a serializing lock in order to copy the source-filter list from userspace, then reacquired the lock. During this window another thread could free the multicast filter structure, leaving the handler with a stale pointer to freed memory. An unprivileged local user can exploit this use-after-free to escalate privileges.