These are a Linux construct and should live here. Removes a weird
passthrough API from FEXCore and keeps it in the frontend instead.
This isn't even typically allocated in a real setup, as it's only a
fallback for if VDSO isn't loaded.
The CallbackReturn function stays in FEXCore because it would have
caused an API in the other direction instead.
The MIDR querying is inherently OS specific and needs a bit of special
casing. Instead let the frontend inform FEXCore how many CPU cores there
are and their MIDRs instead.
This lets us keep the Linux specific code in the frontend.
This used to exist in the FEXCore header since the unaligned handler was
done in the frontend. Once it got moved in to FEXCore it had stayed
there. Move it over now.
ARM64EC doesn't have an explicit callback for suspend, instead this task
is delegated to the kernel setting a bool at a JIT-defined memory
location, as such the faulting based approach as was done for WOW64
cannot be used.
The class constructor for ContextImpl::CPUID requires HostFeatures to be
available at construction time. Pass the host features struct directly
through during construction time instead, which cleans up the interface
slightly and fixes that issue.
These are only missing if using the hostrunner and the CI machine
doesn't support that particular feature. FEX otherwise always supports
these feature flags so they don't need to exist as options.
Just check the feature bit directly in the HostRunner frontend for these
bits.
This moves the CPU feature querying to the frontend. The primary purpose
here is for the wow64 frontend to not require linux-isms for querying
these features. This is required since non-Linux environments don't have
the "CPUID" feature for reading EL1 MSRs in EL0.
Wiring up the remaining wow64 registry querying is left for a future
exercise.
This also technically removes an xbyak requirement from FEXCore for when
building the x86 Test harness runner, but that doesn't really matter for
regular use cases.
This has been leaked state to FEXCore for quite a while. FEXCore never
actually needed this information, moves the bits to the frontend that
are necessary.
Minor behaviour change that `RunUntilExit` now just assumes the primary
thread is using it. This behaviour is on the chopping block to get
removed next anyway.
Instead of passing the TID back to the exit handler, just pass the whole
thread object. This will allow some cleanups with the frontend thread
tracking soon
NFC
This is no longer necessary and it also no longer provides us any useful
information. Since we expose the AVX CPUID flag, basically everything
uses VEX encoding now, so it is basically always set.
When AFP is supported then we can actually support DAZ. This might also
fix the audio corruption in Animal Well but I can't test it until Steam
is running on Oryon. Requires a bit of plumbing for MXCSR which we were
hacking around before but now we actually want to store the value.
Fixes#3856
A disowned buffer could be unclaimed or claimed by a different thread in
the time between the !IsFree check and locking the allocation mutex.
Fix this and prevent such errors in the future by always checking
ownership with the allocator locked before attempting to unclaim
buffers.
nothing is optimizing around this, it's just adding pointless complexity. if we
want to actually optimize F80Cmp, the right way would be to lift the
implementation into the OpcodeDispatcher or JIT. it wouldn't be terribly
difficult. This kludge doesn't get us closer there.
Signed-off-by: Alyssa Rosenzweig <alyssa@rosenzweig.io>
This causes a global initializer that registers an atexit handler.
Be smarter, use an std::array and pass its data around using a span
instead.
Removes the global initializer and removes the atexit installation
We never use more than one logging method at a time so this was
overengineered for what it is doing.
Instead only allow one handler for messages and throw messages each
which just is a pointer.
Removes a global initializer and an atexit handler being installed
FEX allocations can get in the way of allocations that are 4gb-limited
even in 65-bit mode (i.e. those from LuaJIT), so allocate starting from
the top of the AS to prevent conflicts.
Because we have two views of the YMM registers depending on if the host
supports SVE256 or not, add helper functions to fetch them correctly.
We fetch them in the way that Linux desires them in signal handlers, if
we want to return the converged view directly, that is easy to add
support for. It's unnecessary for now.
This is a different feature flag than regular AES as the default AES+AVX
only operates on 128-bit wide vectors.
With the newer `VAES` extension this is expanded to 256-bit.
Needed something inbetween the `InlineJITBlockHeader` and `avx_high` in
order to match alignment requirements of 16-byte for avx_high. Chose the
`DeferredSignalRefCount` because we hit it quite frequently and it is
basically the only 64-bit variable that we end up touching
significantly.
In the future the CPUState object is going to need to change its view of
the object depending on if the device supports SVE256 or not, but we
don't need to frontload the work right now. It'll become significantly
easier to support that path once the RCLSE pass gets deleted.
This is required to be less than the maximum range for LDP and STP in
the Arm64 Dispatcher otherwise it breaks. Necessary to ensure this when
reorganizing the CoreState.
In quite a few locations we are mixing the case that SVE256 == AVX or
that AVX means the guest register size is 256-bit.
While this is true today, this is entanglement is going to change very
quickly and cause confusion in follow-up PRs.
Now we have SVE128, SVE256, and SVE2 HostFeatures to disambiguate the
different features which mean different things.
This PR keeps the alias that `SupportsAVX` = `SupportsSVE256 && SupportsSVE2`
but that alias is going to very quickly change its definition.