π¨ CVE-2026-19956
A vulnerability has been found in gomarble-ai facebook-ads-mcp-server 0.1.0. The impacted element is the function fetch_pagination_url of the file server.py. Such manipulation leads to server-side request forgery. The attack can be launched remotely. The name of the patch is 4e53875aa22e8991c2fa4a7660d86e1caba66659. Applying a patch is advised to resolve this issue.
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A vulnerability has been found in gomarble-ai facebook-ads-mcp-server 0.1.0. The impacted element is the function fetch_pagination_url of the file server.py. Such manipulation leads to server-side request forgery. The attack can be launched remotely. The name of the patch is 4e53875aa22e8991c2fa4a7660d86e1caba66659. Applying a patch is advised to resolve this issue.
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GitHub
GitHub - gomarble-ai/facebook-ads-mcp-server
Contribute to gomarble-ai/facebook-ads-mcp-server development by creating an account on GitHub.
π¨ CVE-2026-64868
New API is a large language mode (LLM) gateway and artificial intelligence (AI) asset management system. Prior to 1.0.0-rc.11, POST /api/stripe/webhook, POST /api/creem/webhook, and POST /api/waffo/webhook read and log full request bodies before signature validation in router/api-router.go and the payment controllers, allowing an unauthenticated attacker to cause memory pressure, container restarts, or disk exhaustion without forging a successful payment. This issue is fixed in version 1.0.0-rc.11.
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New API is a large language mode (LLM) gateway and artificial intelligence (AI) asset management system. Prior to 1.0.0-rc.11, POST /api/stripe/webhook, POST /api/creem/webhook, and POST /api/waffo/webhook read and log full request bodies before signature validation in router/api-router.go and the payment controllers, allowing an unauthenticated attacker to cause memory pressure, container restarts, or disk exhaustion without forging a successful payment. This issue is fixed in version 1.0.0-rc.11.
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GitHub
fix: limit anonymous request body (#5244) Β· QuantumNous/new-api@d2f7f9e
* fix: limit anonymous request body (env ANONYMOUS_REQUEST_BODY_LIMIT_KB = 512)
* fix: allow disabling anonymous request body limit
* fix: allow disabling anonymous request body limit
π¨ CVE-2026-68762
In JetBrains Ktor before 3.4.1 potential DoS attack via WebSocket decompression was possible
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In JetBrains Ktor before 3.4.1 potential DoS attack via WebSocket decompression was possible
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JetBrains
Fixed security issues
This page contains information about resolved security issues, including description, severity, assigned CVEs, and the product versions in which they were resolved.
π¨ CVE-2026-73646
PostCSS takes a CSS file and provides an API to analyze and modify its rules by transforming the rules into an Abstract Syntax Tree. Prior to 8.5.18, lib/previous-map.js loadMap() passes attacker-controlled sourceMappingURL values to join(dirname(opts.from), annotation), and loadFile() permits traversed or absolute .map paths, allowing untrusted CSS processed without map: false to disclose sourcesContent from arbitrary reachable .map files through result.map. This issue is fixed in version 8.5.18.
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PostCSS takes a CSS file and provides an API to analyze and modify its rules by transforming the rules into an Abstract Syntax Tree. Prior to 8.5.18, lib/previous-map.js loadMap() passes attacker-controlled sourceMappingURL values to join(dirname(opts.from), annotation), and loadFile() permits traversed or absolute .map paths, allowing untrusted CSS processed without map: false to disclose sourcesContent from arbitrary reachable .map files through result.map. This issue is fixed in version 8.5.18.
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GitHub
Limit where source map can be loaded for security reasons Β· postcss/postcss@95663d3
Transforming styles with JS plugins. Contribute to postcss/postcss development by creating an account on GitHub.
π¨ CVE-2026-75044
In JetBrains YouTrack before 2025.3.156085,
2026.1.13914,
2026.2.18095 missing authorisation allowed an authenticated user to delete arbitrary entities via the mailbox endpoint
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In JetBrains YouTrack before 2025.3.156085,
2026.1.13914,
2026.2.18095 missing authorisation allowed an authenticated user to delete arbitrary entities via the mailbox endpoint
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JetBrains
Fixed security issues
This page contains information about resolved security issues, including description, severity, assigned CVEs, and the product versions in which they were resolved.
π¨ CVE-2026-75046
In JetBrains YouTrack before 2026.2.18112 an authenticated user could enumerate accounts via the users search endpoint
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In JetBrains YouTrack before 2026.2.18112 an authenticated user could enumerate accounts via the users search endpoint
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JetBrains
Fixed security issues
This page contains information about resolved security issues, including description, severity, assigned CVEs, and the product versions in which they were resolved.
π¨ CVE-2026-75047
In JetBrains YouTrack before 2026.2.18177 doS attack was possible via a decompression bomb in the import endpoint
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In JetBrains YouTrack before 2026.2.18177 doS attack was possible via a decompression bomb in the import endpoint
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JetBrains
Fixed security issues
This page contains information about resolved security issues, including description, severity, assigned CVEs, and the product versions in which they were resolved.
π¨ CVE-2026-75048
In JetBrains YouTrack before 2026.2.18068 stored XSS via the fenced code-block language label was possible
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In JetBrains YouTrack before 2026.2.18068 stored XSS via the fenced code-block language label was possible
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JetBrains
Fixed security issues
This page contains information about resolved security issues, including description, severity, assigned CVEs, and the product versions in which they were resolved.
π¨ CVE-2026-75049
In JetBrains YouTrack before 2026.1.13903,
2026.2.17950 an authenticated user could read restricted articles from other projects via the draft creation endpoint
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In JetBrains YouTrack before 2026.1.13903,
2026.2.17950 an authenticated user could read restricted articles from other projects via the draft creation endpoint
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JetBrains
Fixed security issues
This page contains information about resolved security issues, including description, severity, assigned CVEs, and the product versions in which they were resolved.
π¨ CVE-2026-75050
In JetBrains YouTrack before 2026.1.13901,
2026.2.17950 doS attack was possible via crafted type parameters
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In JetBrains YouTrack before 2026.1.13901,
2026.2.17950 doS attack was possible via crafted type parameters
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JetBrains
Fixed security issues
This page contains information about resolved security issues, including description, severity, assigned CVEs, and the product versions in which they were resolved.
π¨ CVE-2026-75053
In JetBrains IntelliJ IDEA before 2026.2.1 sSRF was possible via the DevKit debug listener endpoint
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In JetBrains IntelliJ IDEA before 2026.2.1 sSRF was possible via the DevKit debug listener endpoint
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JetBrains
Fixed security issues
This page contains information about resolved security issues, including description, severity, assigned CVEs, and the product versions in which they were resolved.
π¨ CVE-2026-75055
In JetBrains IntelliJ IDEA before 2026.2.1 hadoop ResourceManager could read local files via XXE
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In JetBrains IntelliJ IDEA before 2026.2.1 hadoop ResourceManager could read local files via XXE
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JetBrains
Fixed security issues
This page contains information about resolved security issues, including description, severity, assigned CVEs, and the product versions in which they were resolved.
π¨ CVE-2026-75056
In JetBrains IntelliJ IDEA before 2026.2.1 rCE via Markdown export tool was possible
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In JetBrains IntelliJ IDEA before 2026.2.1 rCE via Markdown export tool was possible
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JetBrains
Fixed security issues
This page contains information about resolved security issues, including description, severity, assigned CVEs, and the product versions in which they were resolved.
π¨ CVE-2026-75059
In JetBrains PyCharm before 2026.2.1 code execution via Quick Documentation was possible
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In JetBrains PyCharm before 2026.2.1 code execution via Quick Documentation was possible
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JetBrains
Fixed security issues
This page contains information about resolved security issues, including description, severity, assigned CVEs, and the product versions in which they were resolved.
π¨ CVE-2026-12519
The WNC-M14A2A LTE-M modem driver mishandles unsolicited %NOTIFYEV: events in on_cmd_socknotifyev() (drivers/modem/vendor_standalone/wncm14a2a.c). The response line is linearized into a fixed 40-byte stack buffer via net_buf_linearize(), which caps the copy at 39 bytes and returns out_len <= 39. The two quote-delimiter scanning loops, however, were bounded by len β the full CR/LF-delimited frame length returned by net_buf_findcrlf() β rather than by out_len.
When a %NOTIFYEV: line longer than 39 bytes contains no " within the linearized region, the loop indices p1/p2 walk past value[39] and read adjacent stack memory until a stray quote byte is found or the index reaches len. The over-read string is then passed to strncmp()/atoi()/LOG_*, and if a quote byte is found out of bounds the subsequent value[p2] = '\0' performs a single-NUL out-of-bounds stack write at an attacker-influenced offset.
The %NOTIFYEV: payload carries network-derived content (LTIME network time, SIB1 base-station system information, CSPS/RRCSTATE), so a rogue cellular base station, a malicious or compromised modem module, or RF manipulation that induces an over-long notify line reaches the defect without any application interaction; the handler runs automatically on the unsolicited event in the modem RX thread.
The impact is out-of-bounds stack disclosure (into logs and parsing) and stack corruption that can crash the modem RX thread (denial of service). The write offset is only weakly controlled, so memory-safe code execution is not demonstrated. The fix bounds both scanning loops by out_len, keeping all accesses within the linearized buffer.
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The WNC-M14A2A LTE-M modem driver mishandles unsolicited %NOTIFYEV: events in on_cmd_socknotifyev() (drivers/modem/vendor_standalone/wncm14a2a.c). The response line is linearized into a fixed 40-byte stack buffer via net_buf_linearize(), which caps the copy at 39 bytes and returns out_len <= 39. The two quote-delimiter scanning loops, however, were bounded by len β the full CR/LF-delimited frame length returned by net_buf_findcrlf() β rather than by out_len.
When a %NOTIFYEV: line longer than 39 bytes contains no " within the linearized region, the loop indices p1/p2 walk past value[39] and read adjacent stack memory until a stray quote byte is found or the index reaches len. The over-read string is then passed to strncmp()/atoi()/LOG_*, and if a quote byte is found out of bounds the subsequent value[p2] = '\0' performs a single-NUL out-of-bounds stack write at an attacker-influenced offset.
The %NOTIFYEV: payload carries network-derived content (LTIME network time, SIB1 base-station system information, CSPS/RRCSTATE), so a rogue cellular base station, a malicious or compromised modem module, or RF manipulation that induces an over-long notify line reaches the defect without any application interaction; the handler runs automatically on the unsolicited event in the modem RX thread.
The impact is out-of-bounds stack disclosure (into logs and parsing) and stack corruption that can crash the modem RX thread (denial of service). The write offset is only weakly controlled, so memory-safe code execution is not demonstrated. The fix bounds both scanning loops by out_len, keeping all accesses within the linearized buffer.
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GitHub
drivers: modem: wncm14a2a: bound socket-notify parsing to linearized len Β· zephyrproject-rtos/zephyr@c516cb7
on_cmd_socknotifyev() scanned for quote delimiters using `len` (the
attacker-controlled frame length) as the loop bound, while the data was
linearized into a fixed 40-byte `value` buffer. A long re...
attacker-controlled frame length) as the loop bound, while the data was
linearized into a fixed 40-byte `value` buffer. A long re...
π¨ CVE-2026-12629
The ARM PL011 UART driver in drivers/serial/uart_pl011.c fails to acknowledge receive error interrupts. On the PL011, the framing, parity, break, and overrun error interrupts (PL011_IMSC_ERROR_MASK) are cleared only by writing the interrupt-clear register UARTICR; reading the data register clears the RX interrupt and the per-byte RSR status but not the error interrupt status in MIS. The interrupt service routine pl011_isr() acknowledged only the CTS modem-status interrupt and never wrote icr for the error bits, so an asserted error interrupt remains pending after the ISR returns.
When an application enables error-interrupt reporting via the public uart_irq_err_enable() API, an attacker who controls the serial peer can deterministically assert these error bits by injecting line errors on the RX line β a baud/stop-bit mismatch or mid-character break (framing/break error), a flipped parity bit (parity error), or FIFO flooding (overrun error). Because the error interrupt is never cleared, the interrupt line stays asserted and the CPU re-enters pl011_isr() immediately and indefinitely, producing an interrupt-storm livelock from which the core makes no forward progress.
The impact is an availability-only denial of service (permanent hang), reachable from an external or removable UART peer. Exploitation is gated by configuration: the error interrupt is off by default and no in-tree subsystem enables it, so only applications that explicitly call uart_irq_err_enable() on a PL011-based, interrupt-driven port are affected. The fix makes pl011_isr() acknowledge the pending error bits via uart->icr, breaking the loop, and additionally clears the latched RSR status in pl011_err_check().
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The ARM PL011 UART driver in drivers/serial/uart_pl011.c fails to acknowledge receive error interrupts. On the PL011, the framing, parity, break, and overrun error interrupts (PL011_IMSC_ERROR_MASK) are cleared only by writing the interrupt-clear register UARTICR; reading the data register clears the RX interrupt and the per-byte RSR status but not the error interrupt status in MIS. The interrupt service routine pl011_isr() acknowledged only the CTS modem-status interrupt and never wrote icr for the error bits, so an asserted error interrupt remains pending after the ISR returns.
When an application enables error-interrupt reporting via the public uart_irq_err_enable() API, an attacker who controls the serial peer can deterministically assert these error bits by injecting line errors on the RX line β a baud/stop-bit mismatch or mid-character break (framing/break error), a flipped parity bit (parity error), or FIFO flooding (overrun error). Because the error interrupt is never cleared, the interrupt line stays asserted and the CPU re-enters pl011_isr() immediately and indefinitely, producing an interrupt-storm livelock from which the core makes no forward progress.
The impact is an availability-only denial of service (permanent hang), reachable from an external or removable UART peer. Exploitation is gated by configuration: the error interrupt is off by default and no in-tree subsystem enables it, so only applications that explicitly call uart_irq_err_enable() on a PL011-based, interrupt-driven port are affected. The fix makes pl011_isr() acknowledge the pending error bits via uart->icr, breaking the loop, and additionally clears the latched RSR status in pl011_err_check().
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GitHub
serial: Fix PL011 error staying latched Β· zephyrproject-rtos/zephyr@1069b68
This commit fixes an issue where a framing error is never cleared
on the PL011 serial peripheral.
Assisted-by: Claude:claude-opus-4.7
Signed-off-by: Perry Naseck <pnaseck@media.mit.edu>
on the PL011 serial peripheral.
Assisted-by: Claude:claude-opus-4.7
Signed-off-by: Perry Naseck <pnaseck@media.mit.edu>
π¨ CVE-2026-12630
Zephyr's 6LoWPAN IP Header Compression (IPHC) uncompression code contains an out-of-bounds read in get_ihpc_inlined_size() (subsys/net/ip/6lo.c). The destination inline size is looked up in da_inline_size_table, which has 13 entries, using an index built from the M, DAC and DAM bits of the received IPHC dispatch word (iphc & NET_6LO_IPHC_DA_MASK, a 4-bit value of 0-15). The reserved combinations 13, 14 and 15 are not bounds-checked and read past the end of the table.
The iphc word is taken directly from the received frame, and get_ihpc_inlined_size() is reached on every inbound 6LoWPAN frame via net_6lo_uncompress() from the 802.15.4 receive path (subsys/net/l2/ieee802154/ieee802154_6lo.c and ieee802154_6lo_fragment.c). An unauthenticated attacker on the radio/adjacent link can therefore craft a frame whose destination addressing-mode nibble selects an out-of-range index, with no privileges or user interaction.
The out-of-bounds value becomes the computed inline_size, which then drives header reconstruction before the buffer-length check: it is used to dereference *(pkt->buffer->data + sizeof(iphc) + inline_size) and to compute a size_t diff that can underflow, leading to a further out-of-bounds read of the packet buffer and malformed uncompression. The practical impact is a radio-triggerable out-of-bounds read / denial-of-service on the receiver; the leaked byte is not returned to the attacker. The fix rejects any destination index beyond the table, aborting processing of the malformed frame.
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Zephyr's 6LoWPAN IP Header Compression (IPHC) uncompression code contains an out-of-bounds read in get_ihpc_inlined_size() (subsys/net/ip/6lo.c). The destination inline size is looked up in da_inline_size_table, which has 13 entries, using an index built from the M, DAC and DAM bits of the received IPHC dispatch word (iphc & NET_6LO_IPHC_DA_MASK, a 4-bit value of 0-15). The reserved combinations 13, 14 and 15 are not bounds-checked and read past the end of the table.
The iphc word is taken directly from the received frame, and get_ihpc_inlined_size() is reached on every inbound 6LoWPAN frame via net_6lo_uncompress() from the 802.15.4 receive path (subsys/net/l2/ieee802154/ieee802154_6lo.c and ieee802154_6lo_fragment.c). An unauthenticated attacker on the radio/adjacent link can therefore craft a frame whose destination addressing-mode nibble selects an out-of-range index, with no privileges or user interaction.
The out-of-bounds value becomes the computed inline_size, which then drives header reconstruction before the buffer-length check: it is used to dereference *(pkt->buffer->data + sizeof(iphc) + inline_size) and to compute a size_t diff that can underflow, leading to a further out-of-bounds read of the packet buffer and malformed uncompression. The practical impact is a radio-triggerable out-of-bounds read / denial-of-service on the receiver; the leaked byte is not returned to the attacker. The fix rejects any destination index beyond the table, aborting processing of the malformed frame.
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GitHub
net: 6lo: range-check destination addressing mode index Β· zephyrproject-rtos/zephyr@1bbb7ae
get_ihpc_inlined_size() indexed da_inline_size_table (13 entries) with a
4-bit destination index (M|DAC|DAM, 0-15). Reserved combinations 13-15
read past the table, yielding a bogus inline size use...
4-bit destination index (M|DAC|DAM, 0-15). Reserved combinations 13-15
read past the table, yielding a bogus inline size use...
π¨ CVE-2026-40145
A vulnerability exists in the interaction between a Endpoint Privilege Management (Windows Deployment) support utility and the agent's tamper protection controls. Under certain conditions, the protections applied to the utility process may not be enforced as intended.
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A vulnerability exists in the interaction between a Endpoint Privilege Management (Windows Deployment) support utility and the agent's tamper protection controls. Under certain conditions, the protections applied to the utility process may not be enforced as intended.
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π¨ CVE-2026-68517
Glances is an open-source system cross-platform monitoring tool. Prior to 4.5.6, the cors_origins guard in glances/outputs/glances_restful_api.py uses exact list equality instead of wildcard membership, allowing a multi-origin list containing the wildcard to retain cors_credentials and expose authenticated REST API data to an untrusted website visited by a previously authenticated user. This issue is fixed in 4.5.6.
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Glances is an open-source system cross-platform monitoring tool. Prior to 4.5.6, the cors_origins guard in glances/outputs/glances_restful_api.py uses exact list equality instead of wildcard membership, allowing a multi-origin list containing the wildcard to retain cors_credentials and expose authenticated REST API data to an untrusted website visited by a previously authenticated user. This issue is fixed in 4.5.6.
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GitHub
REST API CORS Credentials Guard Uses Exact-Match Instead of Membershi⦠· nicolargo/glances@8908589
β¦p Test β Bypassed by Any Multi-Origin Allowlist Containing the Wildcard
π¨ CVE-2026-68518
Glances is an open-source system cross-platform monitoring tool. Prior to 4.5.6, _sanitize_mustache_dict() in glances/actions.py sanitizes individual Mustache values before chevron.render(), allowing adjacent unescaped Mustache variables to reconstruct shell operators that secure_popen() executes when attacker-controlled process or container fields are rendered by an administrator-configured action template. This issue is fixed in 4.5.6.
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Glances is an open-source system cross-platform monitoring tool. Prior to 4.5.6, _sanitize_mustache_dict() in glances/actions.py sanitizes individual Mustache values before chevron.render(), allowing adjacent unescaped Mustache variables to reconstruct shell operators that secure_popen() executes when attacker-controlled process or container fields are rendered by an administrator-configured action template. This issue is fixed in 4.5.6.
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GitHub
Command injection bypass of action-template sanitizer via cross-field⦠· nicolargo/glances@9c280ea
β¦ shell-operator reconstruction
π¨ CVE-2026-9771
The flash_copy() system call is verified by z_vrfy_flash_copy() in drivers/flash/flash_util.c. On builds with CONFIG_USERSPACE enabled, this handler is the kernel-side trust boundary for a user-mode caller. Prior to the fix it validated only the output buffer (K_SYSCALL_MEMORY_WRITE) and passed the two struct device * arguments, src_dev and dst_dev, directly into the implementation without any object validation β unlike every sibling flash syscall, which guards its device pointer with K_SYSCALL_DRIVER_FLASH.
A user-mode thread fully controls the values of src_dev/dst_dev and the contents of its own address space. The implementation z_impl_flash_copy() dereferences these pointers and calls through their driver-API function tables (e.g. api->get_parameters(dst_dev), flash_read(src_dev, ...), flash_write(dst_dev, ...)). By supplying a pointer to a forged struct device whose api table contains attacker-chosen function pointers, an unprivileged thread can cause the kernel to call arbitrary code in supervisor mode; passing any arbitrary or invalid address otherwise yields a kernel crash or out-of-bounds read.
The result is a local privilege escalation out of the userspace sandbox (with kernel denial-of-service and information disclosure as lesser outcomes). The fix adds K_SYSCALL_DRIVER_FLASH(src_dev, read) and K_SYSCALL_DRIVER_FLASH(dst_dev, write) to z_vrfy_flash_copy(), which verify each device is a registered flash-driver kernel object the calling thread is permitted to use before any dereference, closing the path completely.
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The flash_copy() system call is verified by z_vrfy_flash_copy() in drivers/flash/flash_util.c. On builds with CONFIG_USERSPACE enabled, this handler is the kernel-side trust boundary for a user-mode caller. Prior to the fix it validated only the output buffer (K_SYSCALL_MEMORY_WRITE) and passed the two struct device * arguments, src_dev and dst_dev, directly into the implementation without any object validation β unlike every sibling flash syscall, which guards its device pointer with K_SYSCALL_DRIVER_FLASH.
A user-mode thread fully controls the values of src_dev/dst_dev and the contents of its own address space. The implementation z_impl_flash_copy() dereferences these pointers and calls through their driver-API function tables (e.g. api->get_parameters(dst_dev), flash_read(src_dev, ...), flash_write(dst_dev, ...)). By supplying a pointer to a forged struct device whose api table contains attacker-chosen function pointers, an unprivileged thread can cause the kernel to call arbitrary code in supervisor mode; passing any arbitrary or invalid address otherwise yields a kernel crash or out-of-bounds read.
The result is a local privilege escalation out of the userspace sandbox (with kernel denial-of-service and information disclosure as lesser outcomes). The fix adds K_SYSCALL_DRIVER_FLASH(src_dev, read) and K_SYSCALL_DRIVER_FLASH(dst_dev, write) to z_vrfy_flash_copy(), which verify each device is a registered flash-driver kernel object the calling thread is permitted to use before any dereference, closing the path completely.
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GitHub
drivers: flash: add device validation in flash_copy syscall Β· zephyrproject-rtos/zephyr@1b1ecdc
Add K_SYSCALL_DRIVER_FLASH checks for src_dev and dst_dev in
z_vrfy_flash_copy() to ensure both devices implement the required
flash driver API before proceeding with the copy operation.
Signed-of...
z_vrfy_flash_copy() to ensure both devices implement the required
flash driver API before proceeding with the copy operation.
Signed-of...