| CVE |
Vendors |
Products |
Updated |
CVSS v3.1 |
| In the Linux kernel, the following vulnerability has been resolved:
riscv, bpf: Fix memory leak in bpf_jit_free
When bpf_int_jit_compile() is called for subprograms, it returns early
during the first pass (!prog->is_func || extra_pass is false), keeping
ctx->offset alive for the subsequent extra pass.
If JIT compilation fails for a later subprogram, the BPF core aborts
and calls bpf_jit_free() to clean up the first subprogram. However,
bpf_jit_free() fails to free jit_data->ctx.offset, which causes a
memory leak of the JIT context offsets array.
Fix this by adding the missing kfree(jit_data->ctx.offset) in
bpf_jit_free(). |
| In the Linux kernel, the following vulnerability has been resolved:
ACPI: processor: validate MADT IOAPIC entry bounds
The IOAPIC hotplug lookup parses both MADT and _MAT records directly.
The MADT walk previously used a subtable's declared length to advance
the cursor after only locating a generic header. The _MAT path likewise
passed a generic header to the IOAPIC helper.
Validate that a current record has a complete generic header, that its
declared length is contained in the available record range, and that a
typed IOAPIC record contains the full fixed IOAPIC body before reading
its fields. Use the same relation for both MADT and _MAT provider
paths. |
| In the Linux kernel, the following vulnerability has been resolved:
RDMA/hfi1: Propagate sdma_txinit_ahg() errors
set_txreq_header_ahg() ignores the return value of sdma_txinit_ahg().
If sdma_txinit_ahg() fails, it returns before initializing tx->txreq.
However, set_txreq_header_ahg() ignores the error and returns the AHG
change count, causing the caller to continue processing the request as
though initialization had succeeded.
Propagate sdma_txinit_ahg() failures to the caller and abort request
processing when initialization fails.
Found by Linux Verification Center (linuxtesting.org) with SVACE. |
| In the Linux kernel, the following vulnerability has been resolved:
IB/isert: reject login PDUs declaring more data than was received
isert_login_recv_done() records how many bytes the HCA actually placed in
the login buffer, but nothing compares that against the length the login
PDU's BHS declares. isert_rx_login_req() copies min(login_req_len,
MAX_KEY_VALUE_PAIRS) bytes into login->req_buf, and the login code then
reads the declared length back out of that buffer - for the first PDU in
iscsi_target_locate_portal(),
payload_length = ntoh24(login_req->dlength);
tmpbuf = kmemdup_nul(login->req_buf, payload_length, GFP_KERNEL);
and for the ones after it in iscsi_decode_text_input(), reached from
iscsi_target_do_login().
login->req_buf is a fixed MAX_KEY_VALUE_PAIRS (8192) byte allocation, so
an initiator that declares more than it sends reads off the end of it,
before authentication and with the length under its control:
BUG: KASAN: slab-out-of-bounds in kmemdup_nul+0x43/0x80
Read of size 8193 at addr ffff8881056a8000 by task iscsi_np/167
__asan_memcpy+0x23/0x60
kmemdup_nul+0x43/0x80
iscsi_target_locate_portal+0x48d/0x1180
iscsi_target_login_thread+0x19a9/0x3350
Allocated by task 167:
__kmalloc_cache_noprof+0x158/0x370
iscsi_target_login_thread+0x971/0x3350
which belongs to the cache kmalloc-8k of size 8192
allocated 8192-byte region
Falsifying the second login PDU instead reaches the other reader, on the
same buffer:
BUG: KASAN: slab-out-of-bounds in kmemdup_nul+0x43/0x80
Read of size 8193 at addr ffff888104d10000 by task kworker/1:1/50
Workqueue: isert_login_wq iscsi_target_do_login_rx
__asan_memcpy+0x23/0x60
kmemdup_nul+0x43/0x80
iscsi_decode_text_input+0xc6/0x11c0
iscsi_target_do_login+0x261/0x1470
iscsi_target_do_login_rx+0x51d/0x7d0
iscsit over TCP is not exposed: iscsit_get_login_rx() validates the
declared length with iscsi_target_check_login_request() and then reads
exactly that many bytes off the socket, so the declared length governs
how much arrives rather than how much is copied out of an already-filled
buffer. isert does not call iscsi_target_check_login_request() at all.
Reject a login PDU whose declared DataSegmentLength exceeds what was
received, in both paths that reach isert_rx_login_req():
isert_get_login_rx() for the first login PDU and isert_login_recv_done()
for the ones after it. dlength <= login_req_len is allowed because the
received count can include up to three bytes of iSCSI padding.
Once the check is in place the copy out can no longer exceed the copy in:
the posted login SGE is ISER_RX_PAYLOAD_SIZE, so login_req_len cannot
exceed MAX_KEY_VALUE_PAIRS and the min() in isert_rx_login_req() is
login_req_len.
Like the existing short-PDU check added by 29e7b925ae6d, the reject in
isert_login_recv_done() returns without completing login_req_comp, so a
malformed subsequent PDU leaves the login to be torn down by the login
timer rather than failing immediately. The first-PDU path returns an
error and fails straight away.
Reproduced on 7.2.0-rc4 with soft-RoCE (rdma_rxe) under KASAN, using an
initiator that sends the real key=value payload while declaring 8193 in
the BHS, on the first login PDU and on the second in separate runs. The
reported read size tracks the declared value exactly; 16384 and 61440
behave the same. Unpatched 3 of 3 runs report on each of the two paths,
patched 0 of 3 on both, run alternately in a single session, and a normal
login still completes on the patched build. |
| In the Linux kernel, the following vulnerability has been resolved:
IB/isert: reject PDUs declaring more data than was received
isert_recv_done() hands each received PDU to the opcode handlers without
ever looking at wc->byte_len, the number of bytes the HCA actually placed
in the receive descriptor. The handlers then copy that many bytes - the
data-segment length the initiator declared in the BHS
(ntoh24(hdr->dlength), via the derived unsol_data_len / imm_data_len) -
out of the fixed-size descriptor:
isert_handle_iscsi_dataout():
sg_copy_from_buffer(sg_start, sg_nents, isert_get_data(rx_desc),
unsol_data_len);
isert_handle_scsi_cmd():
sg_copy_from_buffer(cmd->se_cmd.t_data_sg, sg_nents,
isert_get_data(rx_desc), imm_data_len);
Because the declared length is never checked against wc->byte_len, an
initiator can declare a data segment larger than the bytes it actually
sent (and larger than the descriptor) and cause an out-of-bounds read of
the receive buffer.
Nothing upstream of isert closes this door:
- __iscsit_check_dataout_hdr() bounds the inbound payload against
conn_ops->MaxXmitDataSegmentLength (MXDSL) - a transmit parameter,
used here for the inbound check.
- iscsi_set_connection_parameters() sets
ops->MaxXmitDataSegmentLength = ops->TargetRecvDataSegmentLength;
and TARGETRECVDATASEGMENTLENGTH is absent from the min()-clamp list in
iscsi_check_acceptor_state(), so the value the initiator declares is
adopted verbatim (type range 512..16777215). The initiator effectively
raises its own ceiling.
- isert never clamps the negotiated value to its own fixed receive
descriptor (ISER_RX_SIZE, 9216 bytes), so the target core's bound and
the descriptor size are unrelated.
The imm_data_len == data_len path is more than an over-read: it aliases
the receive descriptor via sg_set_buf() and passes it to the backend as
the data source for the SCSI WRITE, so an over-declared length causes heap
contents past the descriptor to be written through the backend to the
backing store. The backend is the victim of the oversized scatterlist
isert hands it, not the cause; no read-back of the written bytes was
demonstrated.
Trigger: after login completes (full feature phase), an initiator that has
declared a large TargetRecvDataSegmentLength and a FirstBurstLength that
permits unsolicited/immediate data sends a PDU whose declared data-segment
length exceeds what was received. With KASAN:
BUG: KASAN: slab-out-of-bounds in sg_copy_buffer+0x150/0x1c0
Read of size 4096 at addr ffff888109720800 by task kworker/1:0H/25
Workqueue: ib-comp-wq ib_cq_poll_work
Call Trace:
sg_copy_buffer+0x150/0x1c0
isert_recv_done+0xba6/0x2390
__ib_process_cq+0xe1/0x390
ib_cq_poll_work+0x46/0x150
isert_recv_done+0xba6 resolves to isert_handle_iscsi_dataout()
(ib_isert.c:1160), inlined through isert_rx_opcode().
Validate wc->byte_len against the framing in isert_recv_done() before the
PDU reaches any handler, and reinstate the connection if it is short.
Because the test compares without subtracting the header length, it also
rejects PDUs shorter than the iSER and iSCSI headers, which would otherwise
be parsed out of stale descriptor contents. The login handler rejects PDUs
shorter than ISER_HEADERS_LEN (commit 29e7b925ae6d ("IB/isert: Reject login
PDUs shorter than ISER_HEADERS_LEN")) but does not bound the declared
length either; that is fixed in the next patch. The data handlers had no
length check at all.
isert reads the data segment from a fixed offset: isert_get_data()
returns the iSER header plus ISER_HEADERS_LEN and makes no adjustment for
an AHS. The bytes the handlers touch are therefore exactly
[ISER_HEADERS_LEN, ISER_HEADERS_LEN + dlength), and comparing that sum
against wc->byte_len bounds precisely the region that is read. An AHS
term would only make the test stricter without bounding anything furth
---truncated--- |
| In the Linux kernel, the following vulnerability has been resolved:
RDMA/cxgb4: free STAG index when TPT entry write fails
write_tpt_entry() allocates a new STAG index with c4iw_get_resource() and
bumps stats.stag.cur before programming the entry. When
write_adapter_mem() fails, it returns the error without releasing the index
or reversing the statistic. No MR is inserted into rhp->mrs, so
deregistration never reclaims it, leaking the index until device teardown.
Record whether this call allocated the index and, on a failed write, return
it to tpt_table and decrement stats.stag.cur. Key the rollback on both the
write error and that flag, not the error alone: a non-reset update carries
a caller-owned STAG that this call did not allocate and must not free. |
| In the Linux kernel, the following vulnerability has been resolved:
ASoC: meson: Keep link pointers valid on realloc failure
meson_card_reallocate_links() grows the DAI link and private data
arrays with two consecutive krealloc() calls and updates the owner
pointers only after both calls have succeeded.
A successful krealloc() may move the data: it frees the old block and
returns a new one. When that happens for the link array and the second
krealloc() then fails, card->dai_link still points to the block that
krealloc() already freed, and the error path frees the new block too.
The probe error path then calls meson_card_clean_references(), which
dereferences card->dai_link and kfree()s it again, resulting in a
use-after-free and a double free.
Commit card->dai_link and card->num_links right after the first
krealloc() succeeds, so the pointer always refers to a valid allocation
that meson_card_clean_references() can walk and free. krealloc() with
__GFP_ZERO zero-initializes the added entries, so walking them on the
error path is safe. With both failure paths reduced to a plain return,
drop the goto labels and the error message. |
| In the Linux kernel, the following vulnerability has been resolved:
dmaengine: dw-edma: Serialize abort state updates
dw_edma_abort_interrupt() drops vc.lock before changing request and
status. issue_pending() can acquire the lock in that small window,
observe the old busy state, and skip starting queued descriptors. Then
the abort handler overwrites the channel status as idle, leaving the new
descriptors stranded for good.
Keep descriptor completion and the state transition in the same critical
section. |
| In the Linux kernel, the following vulnerability has been resolved:
RDMA/rxe: Fix UAF in ODP init error-handling path
rxe_odp_mr_init_user() stores &umem_odp->umem in mr->umem before
calling rxe_odp_init_pages(). If rxe_odp_init_pages() fails,
rxe_odp_mr_init_user() releases umem_odp and returns an error.
rxe_reg_user_mr() then unwinds the error through rxe_cleanup(),
rxe_mr_cleanup(), ib_umem_release(mr->umem). There is an
IS_ERR_OR_NULL(umem) check at the start of ib_umem_release().
But since mr->umem is NOT reset to NULL in the error handling
path of rxe_odp_mr_init_user(), the check passes and it reads
already-freed fields like umem->is_dmabuf, causing UAF.
Fix the UAF by clearing mr->umem after releasing the failed
ODP umem so the MR cleanup path does not release it again. |
| In the Linux kernel, the following vulnerability has been resolved:
iommu/tegra241-cmdqv: Free the error IRQ before tearing down VINTFs
tegra241_cmdqv_remove() tears each VINTF down first, then calls free_irq().
Tearing a VINTF down frees vintf0 and clears cmdqv->vintfs[0]. An error in
that window makes tegra241_cmdqv_isr() read the stale slot and hand it to
tegra241_vintf0_handle_error(), which dereferences a NULL or freed pointer.
Free the IRQ before tearing the VINTFs down. free_irq() waits for in-flight
handlers to finish and blocks new ones, so no ISR can observe a VINTF as it
is torn down.
Note: a user-owned VINTF (viommu) could outlive this teardown, which unmaps
cmdqv->base and frees cmdqv->vintfs, so a later viommu close then touches
freed memory. This is neither introduced nor fixed here: a physical IOMMU
is not a pluggable device, so iommufd by design holds no reference on the
one behind a viommu, and this teardown is not expected while that viommu is
still alive. |
| In the Linux kernel, the following vulnerability has been resolved:
iommu/tegra241-cmdqv: Don't run the error ISR before probe sets up vintfs
__tegra241_cmdqv_probe() requests the error IRQ before it has allocated the
cmdqv->vintfs array and set cmdqv->num_vintfs. A CMDQV left enabled with a
latched error across a kexec fires the IRQ as soon as it is requested, and
tegra241_cmdqv_isr() then walks the uninitialized cmdqv->vintfs array.
Request the IRQ only after cmdqv->vintfs is allocated and zeroed, so that
a latched interrupt firing early runs the ISR against a valid array of NULL
slots that it safely skips. |
| In the Linux kernel, the following vulnerability has been resolved:
scsi: ufs: core: Validate connected lane counts
The connected lane count is used by TX equalization code to index arrays
sized by UFS_MAX_LANES. Reject zero and out-of-range RX or TX lane counts
before they can be propagated. |
| In the Linux kernel, the following vulnerability has been resolved:
scsi: ufs: core: Validate string descriptors
The string descriptor length includes a two-byte header while the UTF-16
payload starts after it. utf16s_to_utf8s() expects a count of UTF-16 code
units, not bytes. Passing the payload byte count can make it read beyond
the descriptor buffer.
Validate that the payload has an even byte count, pass a code-unit count to
the converter, and allocate sufficient UTF-8 output space.
The raw string buffer starts after the descriptor header but its size is
bLength. Copying bLength bytes from that pointer can read beyond the
response buffer.
Allocate a zeroed bLength-sized buffer and copy only the UTF-16
payload. This preserves the raw buffer size consumed by the RPMB device-ID
ABI while avoiding the overread. |
| In the Linux kernel, the following vulnerability has been resolved:
pinctrl: mediatek: free EINT resources on unbind
mtk_eint_do_init() creates an IRQ domain, populates it with a mapping for
every EINT line and installs a chained handler on the parent interrupt,
but none of these are ever released. This was harmless while the drivers
were built-in, but now that they can be built as modules and
unbound/rmmod'd it leaves behind a dangling IRQ domain, interrupt mappings
whose chip data points at freed memory, and a chained handler that keeps
firing into that freed data.
The plain allocations in mtk_eint_do_init() already use the device-managed
devm_*() helpers, so tear the remaining resources down the same way:
register a devm action that detaches the chained handler, waits for any
in-flight handler to finish, disposes of the per-line mappings and removes
the IRQ domain. This mirrors the device-managed lifecycle adopted for the
GPIO chip and keeps the whole EINT setup self-cleaning on unbind. |
| A security flaw has been discovered in Totolink A3002MU Hh-B20211125.1046. Affected by this vulnerability is the function formWlWds of the file /boafrm/formWlWds. The manipulation of the argument submit-url results in buffer overflow. It is possible to launch the attack remotely. The exploit has been released to the public and may be used for attacks. |
| In the Linux kernel, the following vulnerability has been resolved:
wifi: mt76: mt7915: fix ext PHY use-after-free on register error path
After mt7915_register_ext_phy() succeeded, a failure of the main PHY
mt7915_init_debugfs() or mt7915_coredump_register() unwound through
free_phy2, which called ieee80211_free_hw() on the ext PHY hw while it
was still registered with mac80211, since mt76_unregister_device() only
unregisters the main hw. Unregister the ext PHY (thermal + phy + hw)
first and skip the redundant free. |
| In the Linux kernel, the following vulnerability has been resolved:
bpf: Reject >8 byte return values on return-reading trampoline paths
btf_distill_func_proto() builds the function model used for the
fentry/fexit/fmod_ret/fsession trampolines and struct_ops. It has
accepted a 16-byte __int128 return value since the trampoline was
introduced: __get_type_size() returns the integer's type size, and the
return-type check only rejected ret < 0.
But the BPF trampoline preserves only 8 bytes of the return value (RAX on
x86, i.e. R0). For an attach type that reads the target's return value the
second half (RDX / R3) is neither saved nor restored, so a program
attached to a function returning a 16-byte value corrupts the value seen
by the real caller and itself observes only half of it. struct_ops
trampolines have the same limitation.
This affects the attach types that read the target's return value: fexit,
fmod_ret and fsession (plus the _multi variants of fexit and fsession),
and struct_ops. fentry/fentry_multi run before the target returns and are
unaffected.
Reject a >8 byte return value for these attach types in
bpf_check_attach_target() and bpf_check_attach_btf_id_multi(), and for
struct_ops in bpf_struct_ops_desc_init(). |
| In the Linux kernel, the following vulnerability has been resolved:
drm/msm/dsi: Drop dev_pm_opp_set_rate(0)
dev_pm_opp_set_rate(0) removes the vote specified in required-opps but
does not actually park the clock, making it run without the necessary
power backing. Drop the explicit call to it.
Every call site of ops->link_clk_disable() is followed by
pm_runtime_put(), so the power vote will be rescinded if deemed safe.
Patchwork: https://patchwork.freedesktop.org/patch/742783/ |
| In the Linux kernel, the following vulnerability has been resolved:
exfat: fix valid_size extension over a shared writable mapping
When a shared writable mapping has its valid_size extended by a buffered
write or a page fault, exfat zeroes the page-cache gap below the new
valid_size. A store through the mapping can race with this zeroing and be
overwritten.
Fix this by zeroing the gap lazily. Drop ->map_pages so that every first
write fault goes through exfat_page_mkwrite(), which advances valid_size to
cover the faulting page. With fault-around enabled, a store could install a
writable PTE, skip ->page_mkwrite(), and land past valid_size without
advancing it. Extending valid_size one faulting page at a time also leaves
never-written pages in a large mapping alone.
The gap is filled with block granularity, zeroing only the not-uptodate
blocks and preserving blocks that may hold data stored through the mapping.
On the buffered-write path the invalidate lock is held and the gap is
unmapped before zeroing, so a racing store re-faults and, under the inode
lock, completes only after the gap has been zeroed and valid_size covers
it. |
| In the Linux kernel, the following vulnerability has been resolved:
RDMA/erdma: complete object teardown when the destroy command fails
erdma_destroy_qp(), erdma_destroy_cq(), erdma_dereg_mr(), and
erdma_destroy_ah() returned early when erdma_post_cmd_wait() failed,
leaking the queue buffers, MTTs, doorbells and the STAG, QPN, CQN and AHN
identifiers. A command timeout clears ERDMA_CMDQ_STATE_OK_BIT and
permanently disables the command queue, so no retry can succeed; the RDMA
core keeps the object after a failed destructor and forced uverbs cleanup
then nulls the pointers, making the resources unreachable.
Warn on failure but release every software-owned resource and return
success, since during terminal destruction the hardware command result is
only diagnostic. |