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A module reaches a kernel object's delete service through the Module Manager's dispatch layer, which asked one question about the pointer: does the object lie outside the module's own code and data. That is the policy for using an object, and using an object a module does not own is supported and intended -- txm_module_object_pointer_get_extended searches the system's created objects by name and hands back objects the application created and objects other modules created, so that a module can send to a shared queue, take a shared semaphore or get a shared mutex. Destroying one of those is not sharing it. A module could name any object it had a pointer to and have the privileged dispatcher delete it: a host service lost its queue, waiters were resumed with TX_DELETED, an owned mutex's priority inheritance was unwound, and an active timer stopped. Nothing in the manager intended that. The deallocation the delete path performs afterwards has always required the memory to belong to the calling module, so a delete of anything else could only ever end in TX_PTR_ERROR -- the ownership requirement was already there and was enforced one step too late, after the kernel object had been irreversibly destroyed and its waiters woken. An error returned at that point describes a cleanup failure and restores nothing. The eight delete dispatchers now ask the question before the delete rather than after it. A memory-protected module may delete an object only if the object is one it allocated from the manager's object pool, at the exact address the manager returned to it, for an allocation made for that type's control block size -- the same conditions the create dispatchers already apply, since deletion is the inverse of creation. Anything else returns TXM_MODULE_INVALID_MEMORY, which is what every other parameter rejection in the dispatch table returns, so no new value enters the module ABI and a module cannot use a delete request to tell "not yours" apart from "not a usable address". The object stays created, nothing waiting on it is resumed, and no created count moves, because the kernel was never asked. The ownership question is deliberately separate from whether an object is there at all and of the expected type. It establishes nothing about liveness or type, and it is composed with the checks that do rather than replacing them. _txm_module_manager_object_deallocate reached the manager's private header by subtracting from whatever address the caller supplied, and read it before deciding whether it was a header. All eight delete dispatchers call that function directly, so an object the module does not own arrived there as a matter of course rather than exceptionally: for an object the application allocated statically, or for any address outside the object pool, the words in front of it were unrelated memory read in privileged mode -- and acted on, since an address whose preceding words happened to name the calling module was unlinked from that module's allocation list and handed to the byte pool. It now finds the allocation by searching the module's own allocation list. The caller's address is compared and never dereferenced, so an address that names none of this module's allocations is refused without a privileged read of anything in front of it, and the search establishes what the header read could not: that the address is the exact start of an allocation rather than somewhere inside one. The search is bounded by the count the manager keeps beside the list and runs with interrupts disabled, so a damaged list cannot make it run on and it cannot observe the list being changed under it. The fix is in the deallocation itself rather than at a call site, so it covers all eight delete dispatchers, the deallocation request a module can make directly, protected and unprotected modules alike. txm_module_manager_stop needs no exemption and was not given one. It deletes the objects a module created by calling the internal _tx_*_delete services directly, and identifies them with _txm_module_manager_created_object_check rather than through a module request, so no caller-facing check stands in its way. The 209 expectations in the new test drive all eight object types through allocation, an ownership check by the owning module and by another, a check against a larger and a smaller expected size, and a deallocation that succeeds. They cover an object the application owns, deliberately preceded by a header naming the requesting module so that reading it can be seen to have happened; another module's object, checked and refused from both sides; every aligned interior offset of an allocation and the addresses of its header, its end, the pool's ends and one past the pool; a null pointer and an address with no room for a header in front of it; a request from no module at all; memory that has changed hands, where a stale pointer names an address that now belongs to another module; the bounds on the search, against a count smaller than the list and against a count larger than a list whose links are broken; releasing the head, the middle and the last of a list of three; and an object pool that was never created. Every call asserts that the interrupt lock came back balanced, and that the search ran with interrupts disabled exactly one deep. Restoring the previous deallocation fails four of them and then segmentation faults, on the null-pointer case, where the header in front of address zero is read; removing the ownership check fails 74. Line and branch coverage of the two new functions and of the changed _txm_module_manager_object_deallocate is 100%, with two branch outcomes excepted that are test scaffolding rather than product code: the host shim's stand-ins for TX_DISABLE and TX_RESTORE carry a maximum-depth test and an underflow guard, and the real ports' primitives are inline assembly with no branch at all. All 99 tests pass in each of the five configurations the tree builds with GCC 14. Nothing in the tree compiles the dispatch header, so the eight changed dispatchers were cross-compiled by hand: the two changed C files and a translation unit that includes the header build at -Werror with arm-none-eabi-gcc 13.2.1 for every GNU 32-bit module port -- Cortex-A7, M0+, M23, M3, M33, M4 and M7 -- and produce the same -Wall -Wextra warning counts as before the change, 117 on Cortex-A7 and 116 on each of the others. Cortex-R4 and RXv2 have no GNU module port, and the two AArch64 module ports have no toolchain available here; the new arithmetic is a comparison of two addresses of the same type, so a wider ALIGN_TYPE changes nothing about it. MISRA: all if bodies are braced, the address comparison goes through ALIGN_TYPE, no pointer the caller supplied is dereferenced, and no goto appears. No deviation is required. Assisted-by: Claude Code (Opus 5) <noreply@anthropic.com>