Commit Graph

6 Commits

Author SHA1 Message Date
Kazu Hirata 098e935174 [llvm] Use range-based for loops with CallBase::args (NFC) 2021-11-14 09:32:36 -08:00
Anton Afanasyev ce4fa93db8 [SCCP] Tune cast instruction handling for overdefined operand
Extended value is known to be inside range smaller than full one.
Prevent SCCP to mark such value as overdefined.

Fixes PR52253

Differential Revision: https://reviews.llvm.org/D112721
2021-11-08 18:34:30 +03:00
Sjoerd Meijer cdfc678572 [SCCPSolver] Fix use-after-free in markArgInFuncSpecialization
In SCCPSolver::markArgInFuncSpecialization, the ValueState map may be
reallocated *after* the initial ValueLatticeElement reference is grabbed, but
*before* its use in copy initialization. This causes a use-after-free.  To fix
this, this commit changes the behavior to create the new ValueLatticeElement
before assigning the old one to it.

Patch by: https://github.com/duck-37/

Differential Revision: https://reviews.llvm.org/D111112
2021-10-05 12:56:32 +01:00
Sjoerd Meijer c4a0969b9c Function Specialization Pass
This adds a function specialization pass to LLVM. Constant parameters
like function pointers and constant globals are propagated to the callee by
specializing the function.

This is a first version with a number of limitations:
- The pass is off by default, so needs to be enabled on the command line,
- It does not handle specialization of recursive functions,
- It does not yet handle constants and constant ranges,
- Only 1 argument per function is specialised,
- The cost-model could be further looked into, and perhaps related,
- We are not yet caching analysis results.

This is based on earlier work by Matthew Simpson (D36432) and Vinay Madhusudan.
More recently this was also discussed on the list, see:

https://lists.llvm.org/pipermail/llvm-dev/2021-March/149380.html.

The motivation for this work is that function specialisation often comes up as
a reason for performance differences of generated code between LLVM and GCC,
which has this enabled by default from optimisation level -O3 and up. And while
this certainly helps a few cpu benchmark cases, this also triggers in real
world codes and is thus a generally useful transformation to have in LLVM.

Function specialisation has great potential to increase compile-times and
code-size.  The summary from some investigations with this patch is:
- Compile-time increases for short compile jobs is high relatively, but the
  increase in absolute numbers still low.
- For longer compile-jobs, the extra compile time is around 1%, and very much
  in line with GCC.
- It is difficult to blame one thing for compile-time increases: it looks like
  everywhere a little bit more time is spent processing more functions and
  instructions.
- But the function specialisation pass itself is not very expensive; it doesn't
  show up very high in the profile of the optimisation passes.

The goal of this work is to reach parity with GCC which means that eventually
we would like to get this enabled by default. But first we would like to address
some of the limitations before that.

Differential Revision: https://reviews.llvm.org/D93838
2021-06-11 09:11:29 +01:00
Sjoerd Meijer 39d29817f3 [SCCP] Follow up of rGbbab9f986c6d. NFC.
This addresses the linter messages, mainly the inconsistent capitalisation of
member functions.
2021-04-14 17:14:46 +01:00
Sjoerd Meijer bbab9f986c [SCCP] Create SCCP Solver
This refactors SCCP and creates a SCCPSolver interface and class so that it can
be used by other passes and transformations. We will use this in D93838, which
adds a function specialisation pass.

This is based on an early version by Vinay Madhusudan.

Differential Revision: https://reviews.llvm.org/D93762
2021-04-14 14:58:03 +01:00