Saves power and responds faster. Pass in the atomic to `WaitPred` with
the predicate checking if the buffer has been flushed yet. Same
behaviour as previous code but more efficient on our hardware.
A few games were generating "Can't handle adddress size".
I implemented 0x67 prefix handling for CMPSOp and SCASOP and improved
the error messages for the remainder. This will implement the address
modifier on 64bit systems, and keep issuing an error on 32bits.
Shared code buffer support introduced the concept of having a single
GuestToHostMaps shared across many threads. In the common case all
threads will share one however if e.g. a resize recently occured and
specific thread is yet to compile any code with the new codebuffer it
will still use the old GuestToHostMap. The current invalidation
approach handles this by repeatedly calling erase for every single
thread's GuestToHostMap, even if it is repeated. An accumulator is used
to ensure when two threads share a map, the L1/L2 cache entries in the
second thread will still be invalidated even if the the iteration for
the first thread removed them from the map.
Unfortunately this is incredibly slow in cases with many threads, as
a significant number of redundant map lookups and L1/L2 cache erasures
on threads that never even observed a given block can occur. Solve this
by introducing a two-pass model:
- First, all active codebuffers (and their associated GuestToHostMaps)
have their entries invalidated for the given range, these codebuffers
are tracked internally within FEXCore. It is at this point that delinking
callbacks are ran.
- Second, each thread will have its caches invalidated. But rather than
naively invalidating the L1/L2 caches for every invalidated block for
every thread, threads now track on their own what specific entries
have been potentially fetched into their L1/L2 caches. This is
aided by GuestToHostMap now tracking the pages each block touches. (an
inverse CodePages so to speak).
We currently rely on the frontend to keep track of threads and then
iterate over all threads to perform per-codebuffer operations. However
as codebuffers are shared between many threads (the common case is a
single code buffer across all) this ends up being inefficient. Introduce
a list of codebuffers to solve that (new codebuffers are very rare, so a
vector is plenty fine here for erasing invalid weak refs).
Adds it to the VDSO handling, it's not necessarily a VDSO function but
it behaves as such as it is in every single process. This means we get
to reuse the mapped page for every process when thunks are built,
shaving a page out of 32-bit processes.
Also, fixes a bug in guest VDSO symbol loading where clang sticks all
symbols in to `.dynsym` where gcc sticks them in to `.symtab`. Search
both. This effectively meant the couple of guest VDSO symbols were
always failing to get found, causing us to allocate yet another page on
32-bit. So effectively three pages stolen.
This also means we can remove the Linux specific X86HelperGen stuff from
FEXCore, only passing a single "VDSO" function pointer to the backend
for the dispatcher. Once again moving the Linux stuff to the frontend is
good.
Fixes an assert about about untracked noexec code `NoExec
instruction in entry block: FFFFE000` whenever thunk callbacks were
used.
Enables memcpy optimization of 80bit floats on reduced precision.
Also uncovered a bug where if we had done 80bit memcpy
optimization, we wouldn't have properly stored the 80bits.
This was caught by the existing tests when we enabled the optimization.
This is the only usage of LSE atomics that isn't the fetch variety.
[This article](https://www.phoronix.com/news/Linux-6.18-ARM64-Atomics-Issue)
reminded me that this was a thing and that I should double check the IR.
This was the only IR operation remaining that still didn't use the fetch
variety. Convert it over to the fetch to avoid the expectation that it
can be a "remote atomic". Change is going to fall in to noise, but might
as well as be consistent.
While this worked great for the singular unit test. I remembered thatour
pool allocator returns the minimum working size asked for but will
return larger sizes if exact fitment couldn't occur.
Because we are dealing with guard pages, we need to return the full
buffer size to the "client" so they can tell the frontend where the
guard page actually lives. Otherwise the JIT will tell the frontend the
guard page is at the end of the requested size, blow past the limit,
and fault in a completely different location.
With a bit of logging I saw in a multithreaded environment that we were
basically always getting a larger requested buffer while Steam was
starting up.
Primary fix here is returning the current CPU index in function 01h.
Intel Quartus uses this alongside affinity setting to check if all cores
can be used for its calculation. Since we had hardcoded apicid 0 here,
it assumed to only have one core and never generated worker threads.
Additional fix for apicid size. This is the size of the bitmask required
for apic ids, we weren't calculating this correctly at all. This mask is
a "maximum" number of APICs that the CPU reserves in power of two.
Say the core supports 256 APICs, but the processor only supports 16, or
any other combination.
When the JIT CodeBuffer overflows, we will now catch accesses to the
guard page and longjump while restarting the JIT with a larger buffer
request.
Fixes#4877
ARM64 branches have fairly small relative distances they can encode.
These can be +-1MB, or even +-32KB. The largest relative branch is
+-128MB, which we already set as an upper limit of our block JIT cache
size.
We have for a long time just compiled these without checking with the
expectation that things just happen to work. We didn't hit the asserts
so it was relatively low priority. Apparently now with Steam and a
MaxInst limit of 5000, we are now hitting an assert where we are
encoding too large of a range.
Implement support for long jumping from anywhere in the JIT for when a
long jump tries to be encoded and fails, allowing us to restart the JIT
at any moment. This is implemented as a long jump when this singular
feature could have gotten away with some sort of invasive check and
early exit path for two reasons. For one, that would be even more
invasive, effectively doing try-catch logic manually. And two, the next
step is supporting JIT buffer overflow for when our block size heuristic
fails.
This next step will mandate longjump on SIGSEGV (with cooperative
interaction with the frontend) from effectively /anywhere/ in the JIT.
One of the design goals of the CodeEmitter is that every code emission
function doesn't do a size remaining check to allow the compiler to do
some very effective optimization of emitting code blocks to memory (and
it works!).
But we lose the ability to sanely size check. When writing the emitter I
knew we were going to need to write this cooperative guard page handler,
and we're finally at a point where it needs to be done. This will be in
the next PR although.