perf/x86: Optimize stack walk user accesses

Change the perf user stack walking to use the new
__copy_from_user_nmi(), and split each access into word sized transfer
sizes. This allows to inline the complete access and optimize it all
into a single load.

The main advantage is that this avoids the overhead of double page
faults.  When normal copy_from_user() fails it reexecutes the copy to
compute an accurate number of non copied bytes. This leads to
executing the expensive page fault twice.

While walking stacks having a fault at some point is relatively common
(typically when some part of the program isn't compiled with frame
pointers), so this is a large overhead.

With the optimized copies we avoid this problem because they only do
all accesses once. And of course they're much faster too when the
access does not fault because they're just single instructions instead
of complex function calls.

While profiling a kernel build with -g, the patch brings down the
average time of the PMI handler from 966ns to 552ns (-43%).

Signed-off-by: Andi Kleen <[email protected]>
Signed-off-by: Peter Zijlstra (Intel) <[email protected]>
Cc: Arnaldo Carvalho de Melo <[email protected]>
Cc: Jiri Olsa <[email protected]>
Cc: Linus Torvalds <[email protected]>
Cc: Mike Galbraith <[email protected]>
Cc: Peter Zijlstra <[email protected]>
Cc: Stephane Eranian <[email protected]>
Cc: Thomas Gleixner <[email protected]>
Cc: Vince Weaver <[email protected]>
Link: http://lkml.kernel.org/r/[email protected]
Signed-off-by: Ingo Molnar <[email protected]>
This commit is contained in:
Andi Kleen authored and Ingo Molnar committed 2015-11-23 09:58:25 +01:00
1 parent 10013ebb5d
commit 75925e1ad7
1 file changed
+19 -3
+19 -3
View File
@@ -2250,12 +2250,19 @@ perf_callchain_user32(struct pt_regs *regs, struct perf_callchain_entry *entry)
ss_base = get_segment_base(regs->ss);
fp = compat_ptr(ss_base + regs->bp);
pagefault_disable();
while (entry->nr < PERF_MAX_STACK_DEPTH) {
unsigned long bytes;
frame.next_frame = 0;
frame.return_address = 0;
bytes = copy_from_user_nmi(&frame, fp, sizeof(frame));
if (!access_ok(VERIFY_READ, fp, 8))
break;
bytes = __copy_from_user_nmi(&frame.next_frame, fp, 4);
if (bytes != 0)
break;
bytes = __copy_from_user_nmi(&frame.return_address, fp+4, 4);
if (bytes != 0)
break;
@@ -2265,6 +2272,7 @@ perf_callchain_user32(struct pt_regs *regs, struct perf_callchain_entry *entry)
perf_callchain_store(entry, cs_base + frame.return_address);
fp = compat_ptr(ss_base + frame.next_frame);
}
pagefault_enable();
return 1;
}
#else
@@ -2302,12 +2310,19 @@ perf_callchain_user(struct perf_callchain_entry *entry, struct pt_regs *regs)
if (perf_callchain_user32(regs, entry))
return;
pagefault_disable();
while (entry->nr < PERF_MAX_STACK_DEPTH) {
unsigned long bytes;
frame.next_frame = NULL;
frame.return_address = 0;
bytes = copy_from_user_nmi(&frame, fp, sizeof(frame));
if (!access_ok(VERIFY_READ, fp, 16))
break;
bytes = __copy_from_user_nmi(&frame.next_frame, fp, 8);
if (bytes != 0)
break;
bytes = __copy_from_user_nmi(&frame.return_address, fp+8, 8);
if (bytes != 0)
break;
@@ -2315,8 +2330,9 @@ perf_callchain_user(struct perf_callchain_entry *entry, struct pt_regs *regs)
break;
perf_callchain_store(entry, frame.return_address);
fp = frame.next_frame;
fp = (void __user *)frame.next_frame;
}
pagefault_enable();
}
/*