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Craig Topper fa8bb22466 [RISCV] Optimize vector_shuffles that are interleaving the lowest elements of two vectors.
RISCV only has a unary shuffle that requires places indices in a
register. For interleaving two vectors this means we need at least
two vrgathers and a vmerge to do a shuffle of two vectors.

This patch teaches shuffle lowering to use a widening addu followed
by a widening vmaccu to implement the interleave. First we extract
the low half of both V1 and V2. Then we implement
(zext(V1) + zext(V2)) + (zext(V2) * zext(2^eltbits - 1)) which
simplifies to (zext(V1) + zext(V2) * 2^eltbits). This further
simplifies to (zext(V1) + zext(V2) << eltbits). Then we bitcast the
result back to the original type splitting the wide elements in half.

We can only do this if we have a type with wider elements available.
Because we're using extends we also have to be careful with fractional
lmuls. Floating point types are supported by bitcasting to/from integer.

The tests test a varied combination of LMULs split across VLEN>=128 and
VLEN>=512 tests. There a few tests with shuffle indices commuted as well
as tests for undef indices. There's one test for a vXi64/vXf64 vector which
we can't optimize, but verifies we don't crash.

Reviewed By: rogfer01

Differential Revision: https://reviews.llvm.org/D117743
2022-01-20 14:44:47 -08:00
.github workflows: Make issue-subscriber more robust for labels with special characters 2022-01-14 22:04:54 -08:00
bolt [BOLT] Remove unreachable uncond branch after return 2022-01-19 22:06:26 +03:00
clang [clang-format][NFC] Clean up tryMergeLessLess() 2022-01-20 14:35:07 -08:00
clang-tools-extra [clang-tidy][NFC] Remove redundant string creation for comparison 2022-01-20 22:20:10 +00:00
cmake [cmake] Duplicate `{llvm,compiler_rt}_check_linker_flag` for runtime libs and llvm 2022-01-20 21:18:42 +00:00
compiler-rt [cmake] Duplicate `{llvm,compiler_rt}_check_linker_flag` for runtime libs and llvm 2022-01-20 21:18:42 +00:00
cross-project-tests [mlir] Finish removing Identifier from the C++ API 2022-01-12 11:58:23 -08:00
flang [cmake] Make include(GNUInstallDirs) always below project(..) 2022-01-20 18:59:17 +00:00
libc [libc] Make log2f correctly rounded for all rounding modes when FMA is not available. 2022-01-20 16:16:11 -05:00
libclc libclc: Add clspv64 target 2022-01-13 09:28:19 +00:00
libcxx [cmake] Duplicate `{llvm,compiler_rt}_check_linker_flag` for runtime libs and llvm 2022-01-20 21:18:42 +00:00
libcxxabi [demangler][NFC] Small cleanups and sync 2022-01-20 11:47:06 -08:00
libunwind [cmake] Duplicate `{llvm,compiler_rt}_check_linker_flag` for runtime libs and llvm 2022-01-20 21:18:42 +00:00
lld [lld][macho] Stop grouping symbols by sections in mapfile. 2022-01-20 12:16:37 -08:00
lldb Work around a module build failure on the bots. 2022-01-20 13:39:48 -08:00
llvm [RISCV] Optimize vector_shuffles that are interleaving the lowest elements of two vectors. 2022-01-20 14:44:47 -08:00
mlir [mlir][tosa] Limit right-shift to 31 bits 2022-01-20 14:39:57 -08:00
openmp [OpenMP] Avoid costly shadow map traversals whenever possible 2022-01-19 22:14:41 -06:00
polly [cmake] Make include(GNUInstallDirs) always below project(..) 2022-01-20 18:59:17 +00:00
pstl [cmake] Make include(GNUInstallDirs) always below project(..) 2022-01-20 18:59:17 +00:00
runtimes [cmake] Duplicate `{llvm,compiler_rt}_check_linker_flag` for runtime libs and llvm 2022-01-20 21:18:42 +00:00
third-party Ensure newlines at the end of files (NFC) 2021-12-26 08:51:06 -08:00
utils [mlir][bufferization] Move one-shot bufferization to Bufferization dialect 2022-01-20 18:21:20 +09:00
.arcconfig Add modern arc config for default "onto" branch 2021-02-22 11:58:13 -08:00
.arclint PR46997: don't run clang-format on clang's testcases. 2020-08-04 17:53:25 -07:00
.clang-format Revert "Title: [RISCV] Add missing part of instruction vmsge {u}. VX Review By: craig.topper Differential Revision : https://reviews.llvm.org/D100115" 2021-04-14 08:04:37 +01:00
.clang-tidy Add IgnoreBaseInCopyConstructors to .clang-tidy 2022-01-03 13:41:32 -08:00
.git-blame-ignore-revs [lldb] Add 9494c510af to .git-blame-ignore-revs 2021-06-10 09:29:59 -07:00
.gitignore [NFC] Add CMakeUserPresets.json filename to .gitignore 2021-01-22 12:45:29 +01:00
.mailmap Add self to .mailmap 2021-10-12 15:51:01 +02:00
CONTRIBUTING.md docs: update some bug tracker references (NFC) 2022-01-10 15:59:08 -08:00
README.md Remove unused parallel-libs project 2021-10-21 14:34:39 -07:00
SECURITY.md [docs] Describe reporting security issues on the chromium tracker. 2021-05-19 15:21:50 -07:00

README.md

The LLVM Compiler Infrastructure

This directory and its sub-directories contain source code for LLVM, a toolkit for the construction of highly optimized compilers, optimizers, and run-time environments.

The README briefly describes how to get started with building LLVM. For more information on how to contribute to the LLVM project, please take a look at the Contributing to LLVM guide.

Getting Started with the LLVM System

Taken from https://llvm.org/docs/GettingStarted.html.

Overview

Welcome to the LLVM project!

The LLVM project has multiple components. The core of the project is itself called "LLVM". This contains all of the tools, libraries, and header files needed to process intermediate representations and convert them into object files. Tools include an assembler, disassembler, bitcode analyzer, and bitcode optimizer. It also contains basic regression tests.

C-like languages use the Clang front end. This component compiles C, C++, Objective-C, and Objective-C++ code into LLVM bitcode -- and from there into object files, using LLVM.

Other components include: the libc++ C++ standard library, the LLD linker, and more.

Getting the Source Code and Building LLVM

The LLVM Getting Started documentation may be out of date. The Clang Getting Started page might have more accurate information.

This is an example work-flow and configuration to get and build the LLVM source:

  1. Checkout LLVM (including related sub-projects like Clang):

    • git clone https://github.com/llvm/llvm-project.git

    • Or, on windows, git clone --config core.autocrlf=false https://github.com/llvm/llvm-project.git

  2. Configure and build LLVM and Clang:

    • cd llvm-project

    • cmake -S llvm -B build -G <generator> [options]

      Some common build system generators are:

      • Ninja --- for generating Ninja build files. Most llvm developers use Ninja.
      • Unix Makefiles --- for generating make-compatible parallel makefiles.
      • Visual Studio --- for generating Visual Studio projects and solutions.
      • Xcode --- for generating Xcode projects.

      Some common options:

      • -DLLVM_ENABLE_PROJECTS='...' --- semicolon-separated list of the LLVM sub-projects you'd like to additionally build. Can include any of: clang, clang-tools-extra, compiler-rt,cross-project-tests, flang, libc, libclc, libcxx, libcxxabi, libunwind, lld, lldb, mlir, openmp, polly, or pstl.

        For example, to build LLVM, Clang, libcxx, and libcxxabi, use -DLLVM_ENABLE_PROJECTS="clang;libcxx;libcxxabi".

      • -DCMAKE_INSTALL_PREFIX=directory --- Specify for directory the full path name of where you want the LLVM tools and libraries to be installed (default /usr/local).

      • -DCMAKE_BUILD_TYPE=type --- Valid options for type are Debug, Release, RelWithDebInfo, and MinSizeRel. Default is Debug.

      • -DLLVM_ENABLE_ASSERTIONS=On --- Compile with assertion checks enabled (default is Yes for Debug builds, No for all other build types).

    • cmake --build build [-- [options] <target>] or your build system specified above directly.

      • The default target (i.e. ninja or make) will build all of LLVM.

      • The check-all target (i.e. ninja check-all) will run the regression tests to ensure everything is in working order.

      • CMake will generate targets for each tool and library, and most LLVM sub-projects generate their own check-<project> target.

      • Running a serial build will be slow. To improve speed, try running a parallel build. That's done by default in Ninja; for make, use the option -j NNN, where NNN is the number of parallel jobs, e.g. the number of CPUs you have.

    • For more information see CMake

Consult the Getting Started with LLVM page for detailed information on configuring and compiling LLVM. You can visit Directory Layout to learn about the layout of the source code tree.