We can merge the lsr+and in to a single lsr by 18 and then use ldr with
LSL of 3 to accomplish the same result. Modern Cortex doesn't even
generate an additional integer pipeline uop for this ldr+lsl instruction
anymore.
There's no longer a distinction between AArch64 and x86 and everything
effectively falls under "Common" now. This means flattening the entire
structure just cleans it up.
NFC. (Although instcountCI will update because of a couple pointer
offsets changing)
Fixes crash in thunks that use callbacks, introduced in #5148.
The dispatcher would call the syscallhandler to get the VDSO thunk
callback. But due to reordering initialization, the VDSO thunk would
have not been loaded at that point. This would cause thunks that use
callbacks to crash with a nullptr exception.
Instead, defer the thunk callback pointer loading until the thread
starts executing, and load the pointer in to our thread state's pointer
struct instead.
Didn't get caught in my initial test sweep since I didn't run a Wine
game with thunks.
Most constants don't need to be padded for relocations. So now that
these have all been audited, switch to defaulting to NoPad to reduce
verbosity.
The number of constant that need to be explicitly padded are now marked
and with all the prior changes, this allows bisecting if something has
gone wrong.
- Do compiler/architecture checks EARLY, don't waste time doing random
configuration stuff if the user can't even compile in the first place
- MSVC is unsupported, I assume? So add a check to disallow. There's
literally no MSVC or MSC_VER checks anywhere, so...
- Rather than using the MSVC architecture definitions, use our own
`ARCHITECTURE_arm64` et al. Hijacking existing "standard" definitions
is a very bad idea. Also makes it more readable in CMake
- Change the x86 host check to `x86|amd64`. Some systems still refer to
themselves as x86 despite being 64-bit for... reasons, and I saw one a
very long time ago that referred to it as amd64. This should
basically never come up, nor is it really relevant given that FEX is
for arm64... but it kinda annoyed me so whatever.
TODOs:
- Should we check `CMAKE_SIZEOF_VOID_P (equal) 64`? I don't think anyone
is even trying to compile this thing on armv7 or older, but might as
well? maybe?
- What's the status of *BSD, Solaris, macOS? Technically macOS does
support Wine, not sure about the others.
Signed-off-by: crueter <crueter@eden-emu.dev>
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.
L1 cache residency can get quite large. Solution, start out small and
scale quickly on L1 cache misses but L2/L3 cache hits.
Some stats on L1 cache residency change:
- Teardown: 40MB -> 16MB (40%)
- Ender Lilies: 79MB -> 32MB (40.5%)
- Death Stranding: 186MB -> 93MB (50%)
- Steam: 75MB -> 7MB (9.3%)
The cost of this option is effectively free in our JIT. It changes a
single LDR to be a single LDP, which on Cortex CPUs cost the same. We do
this by moving the L1 pointer mask in to the CPUState object, making it
dynamic so it lives next to the L1 pointer. We then use that directly
rather than having the hardcoded value.
The lookup cache does a little bit of additional tracking and heuristics
to determine when the current L1 cache should increase or decrease in
size. From 128KB to 16MB per thread, allocating the full VA range as
previously.
Once the heuristic determines that L1 should be increased, it simply
changes the max and the L1 pointer size to compensate, the kernel will
fault in whichever pages are necessary.
Decreasing the size is a little bit more complex, as we want to madvise
the resulting L1 range to ensure we don't have that memory as resident
anymore. Same heuristic but going in the opposite direction otherwise.
Tends to be the case that L1 cache increases a bit on loading screens
then backs down once in-game.
These heuristic values are exposed for increasing and decreasing because
while I think I've picked reasonable values, we will likely need some
more fine tuning over time. Kind of expert user toggles at that point.
Based on #4940 as a base which needs to be merged first.
Full tracked stats from steam as an example of where we are:
```
Total (1000 millisecond sample period):
JIT Time: 0.486630 ms/second (0.00 percent)
Signal Time: 0.065880 ms/second (0.00 percent)
SIGBUS Cnt: 38 (38.160780 per second)
SMC Cnt: 0
Softfloat Cnt: 0
FEX JIT Load: 0.004585 (cycles: 552510)
Total FEX Anon memory resident: 368 mB
JIT resident: 95 mB
OpDispatcher resident: 38 mB
Frontend resident: 8 mB
CPUBackend resident: 624 kB
Lookup cache resident: 0 (null)
Lookup L1 cache resident: 7 mB
ThreadStates resident: 460 kB
Unaccounted resident: 217 mB
```
This saves a whole bunch of memory. Cutting `Just Cause 2`'s title
screen from 1132MB anonymous FEX memory down to 438MB. 629MB in L2
alone.
L2 is primarily a means to reduce overhead in map queries, so it's all
about performance. But because it consumes a lot of people it's kind of
hard.
One idea is that the L2 lookups can be moved to shared data structures,
since we already pull the shared lock when doing an L2 lookup this is
already halfway there.
Side note, we're using unique locks even with read-only code paths
which we can't use the shared lock because this terrible recursive
mutex!
Instead of outright changing L2 behaviour and potentially wrecking
havoc, add a config option for now so testing can happen over time.
before:
```
Total FEX Anon memory resident: 1132 mB
JIT resident: 60 mB
OpDispatcher resident: 97 mB
Frontend resident: 37 mB
CPUBackend resident: 500 kB
Lookup cache resident: 629 mB
Lookup L1 cache resident: 108 mB
ThreadStates resident: 436 kB
```
after:
```
Total FEX Anon memory resident: 438 mB
JIT resident: 62 mB
OpDispatcher resident: 56 mB
Frontend resident: 22 mB
CPUBackend resident: 496 kB
Lookup cache resident: 0 (null)
Lookup L1 cache resident: 109 mB
ThreadStates resident: 436 kB
```
This captures the remaining FEX allocations that /aren't/ coming from
JEMalloc, allowing us to separate our mapped regions versus just
jemalloc allocations.
With some additional naming in jemalloc (which I'm not adding here) this
gets us interesting results:
```
Misc resident: 54 MiB
JEMalloc resident: 208 MiB
```
So 208MB of active jemalloc allocations in this particular case. These will be able to be tracked in heaptrack-like applications if careful.
This should let us target down whatever live allocations we're keeping
large amounts of data around if possible.
Profiling shows this is by far the hottest path, as every DX call will
hit this (as arm64ec functions in a vtable). L2 hits are much rarer and
L1 almost never hits since that is looked up inline in most cases.
Since all of the information comes from the Dispatcher, we can have the dispatcher
provide that information. This way we can also eliminate a bunch of now-redundant
public interface members and simplify the config setup within InitCoreImpl().
Conveniently, this also allows making all members of the dispatcher non-public.
These x87 f64 reduced precision operations don't use FCW so we don't
need to load it from the context. So just remove loading it. This falls
within noise while benchmarking.
Turns out Bayonetta hammers SINCOS, our splitting the operation is
actually harming the performance of games that heavily use FSINCOS. We
instead can actually combine the operation which improves performance.
Not enough to get the game running full speed consistently on my Radxa,
but good numbers in my microbenchmark.
```
Test, Total Cycles, Total Runs, Cycles Average, Internal Loops, Average cycles per internal, per/second
64-bit:
Before:
FSIN, 2691031290, 50000, 53820.6, 1000, 53.8206, 18580.237319
FCOS, 2719397120, 50000, 54387.9, 1000, 54.3879, 18386.428239
FSINCOS, 5586917530, 50000, 111738, 1000, 111.738, 8949.478801
After:
FSIN, 2669959250, 50000, 53399.2, 1000, 53.3992, 18726.877573
FCOS, 2740942260, 50000, 54818.8, 1000, 54.8188, 18241.901965
FSINCOS, 3189472870, 50000, 63789.5, 1000, 63.7895, 15676.571659
80-bit:
Before:
FSIN, 24702939380, 50000, 494059, 1000, 494.059, 2024.050629
FCOS, 19127131020, 50000, 382543, 1000, 382.543, 2614.087808
FSINCOS, 40386785260, 50000, 807736, 1000, 807.736, 1238.028719
After:
FSIN, 24869980710, 50000, 497400, 1000, 497.4, 2010.455922
FCOS, 19131849590, 50000, 382637, 1000, 382.637, 2613.443084
FSINCOS, 38329985570, 50000, 766600, 1000, 766.6, 1304.461749
Improvement 64-bit: 1.75x
Improvement 80-bit: 1.05x
```
Only a minor improvement at 80-bit precision since cephes doesn't provide a combined sincos operation, but the f64 implementation is significantly improved, allowing 75% more operations per second.
Disabled in the simulator because we can't easily support pairs of
vector registers being returned.
Fixes#4535
A handful of improvements on this.
* Reduces codegen around interpreter fallbacks
* Keeps ABI handling code in common Dispatcher code
* Improves I$ hitrate by most of the heavy code staying in Dispatcher
This cuts the amount of codegen inside the JIT for most interpreter
fallbacks by 1/2 or 1/3, by only doing the minimal amount of work in the
code blocks and doing most things in the dispatcher. The cost of which
is an additional branch per operation.
This should bring marginal performance improvements, but it should also
basically fall within noise. The bigger thing to care about here is a
smaller amount of code being generated for x87 blocks.
stop doing weird special cases. just dump all the regs except what aapcs64 says
we don't have to.
this fixes saving x18 across thunks and things. so probably fixes things *cry*
Signed-off-by: Alyssa Rosenzweig <alyssa@rosenzweig.io>
When set - either via POPF or a thread context operation - the trap flag
raises a single step exception after the execution of each instruction.
As e.g. a JUMP instruction with TF set will raise an exception at the
jump target. Handle this on the FEX side by storing both the flag itself
(in bit 0) and a 'block exceptions' flag (in bit 1, inverted). Each
generated block when TF is set is then forced to a single instruction
with logic to raise the exception at the start. Initially after setting
TF exceptions are blocked, then at the start of the block they are
unblocked so that after the instruction executes an exception is raised
at the start of the next block.
The prior approach using the L2 cache was flawed as it assumed L2
page entries had a 1-1 correspondence with actual pages. While the L2
cache could be extended to handle aliases with EC, this could lead to
thrashing etc. The cost of a lookup in the actual EC code bitmap is
cheap enough to perform every time considering the infrequency of calls
to ARM64EC code when compare to X86 L2 hits.