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Split AllOpts.h into lots of little .h files.
git-svn-id: https://llvm.org/svn/llvm-project/llvm/trunk@108 91177308-0d34-0410-b5e6-96231b3b80d8
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@ -39,6 +39,8 @@
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#include "llvm/Instruction.h"
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#include "llvm/Type.h"
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namespace opt {
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//===----------------------------------------------------------------------===//
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// Implement == directly...
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//===----------------------------------------------------------------------===//
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@ -174,4 +176,5 @@ inline ConstPoolVal *ConstantFoldBinaryInstruction(unsigned Opcode,
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return 0;
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}
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} // end namespace opt
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#endif
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@ -1,4 +1,4 @@
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//===-- llvm/AllOpts.h - Header file to get all opt passes -------*- C++ -*--=//
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//===-- llvm/Opt/AllOpts.h - Header file to get all opt passes ---*- C++ -*--=//
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//
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// This file #include's all of the small optimization header files.
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//
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@ -10,136 +10,33 @@
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#ifndef LLVM_OPT_ALLOPTS_H
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#define LLVM_OPT_ALLOPTS_H
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#include "llvm/Module.h"
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#include "llvm/BasicBlock.h"
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#include "llvm/Tools/STLExtras.h"
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class Method;
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class CallInst;
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class TerminatorInst;
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//===----------------------------------------------------------------------===//
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// Helper functions
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// Dead Code Elimination
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//
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static inline bool ApplyOptToAllMethods(Module *C, bool (*Opt)(Method*)) {
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return reduce_apply_bool(C->begin(), C->end(), ptr_fun(Opt));
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}
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#include "llvm/Optimizations/DCE.h"
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//===----------------------------------------------------------------------===//
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// Dead Code Elimination Pass
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// Constant Propogation
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//
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bool DoDeadCodeElimination(Method *M); // DCE a method
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bool DoRemoveUnusedConstants(SymTabValue *S); // RUC a method or module
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bool DoDeadCodeElimination(Module *C); // DCE & RUC a whole module
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//===----------------------------------------------------------------------===//
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// Constant Propogation Pass
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//
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bool DoConstantPropogation(Method *M);
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static inline bool DoConstantPropogation(Module *C) {
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return ApplyOptToAllMethods(C, DoConstantPropogation);
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}
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// ConstantFoldTerminator - If a terminator instruction is predicated on a
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// constant value, convert it into an unconditional branch to the constant
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// destination.
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//
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bool ConstantFoldTerminator(TerminatorInst *T);
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//===----------------------------------------------------------------------===//
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// Constant Pool Merging Pass
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//
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// This function merges all constants in the specified constant pool that have
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// identical types and values. This is useful for passes that generate lots of
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// constants as a side effect of running.
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//
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bool DoConstantPoolMerging(ConstantPool &CP);
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bool DoConstantPoolMerging(Method *M);
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static inline bool DoConstantPoolMerging(Module *M) {
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return ApplyOptToAllMethods(M, DoConstantPoolMerging) |
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DoConstantPoolMerging(M->getConstantPool());
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}
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//===----------------------------------------------------------------------===//
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// Sparse Conditional Constant Propogation Pass
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//
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bool DoSparseConditionalConstantProp(Method *M);
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static inline bool DoSparseConditionalConstantProp(Module *M) {
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return ApplyOptToAllMethods(M, DoSparseConditionalConstantProp);
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}
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// Define a shorter version of the name...
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template <class Unit> bool DoSCCP(Unit *M) {
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return DoSparseConditionalConstantProp(M);
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}
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#include "llvm/Optimizations/ConstantProp.h"
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//===----------------------------------------------------------------------===//
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// Method Inlining Pass
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//
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// DoMethodInlining - Use a heuristic based approach to inline methods that seem
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// to look good.
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//
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bool DoMethodInlining(Method *M);
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static inline bool DoMethodInlining(Module *C) {
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return ApplyOptToAllMethods(C, DoMethodInlining);
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}
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// InlineMethod - This function forcibly inlines the called method into the
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// basic block of the caller. This returns true if it is not possible to inline
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// this call. The program is still in a well defined state if this occurs
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// though.
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//
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// Note that this only does one level of inlining. For example, if the
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// instruction 'call B' is inlined, and 'B' calls 'C', then the call to 'C' now
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// exists in the instruction stream. Similiarly this will inline a recursive
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// method by one level.
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//
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bool InlineMethod(CallInst *C);
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bool InlineMethod(BasicBlock::iterator CI); // *CI must be CallInst
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#include "llvm/Optimizations/MethodInlining.h"
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//===----------------------------------------------------------------------===//
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// Symbol Stripping Pass
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//
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// DoSymbolStripping - Remove all symbolic information from a method
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//
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bool DoSymbolStripping(Method *M);
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// DoSymbolStripping - Remove all symbolic information from all methods in a
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// module
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//
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static inline bool DoSymbolStripping(Module *M) {
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return ApplyOptToAllMethods(M, DoSymbolStripping);
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}
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// DoFullSymbolStripping - Remove all symbolic information from all methods
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// in a module, and all module level symbols. (method names, etc...)
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//
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bool DoFullSymbolStripping(Module *M);
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#include "llvm/Optimizations/SymbolStripping.h"
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//===----------------------------------------------------------------------===//
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// Induction Variable Cannonicalization
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//
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// DoInductionVariableCannonicalize - Simplify induction variables in loops
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//
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bool DoInductionVariableCannonicalize(Method *M);
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static inline bool DoInductionVariableCannonicalize(Module *M) {
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return ApplyOptToAllMethods(M, DoInductionVariableCannonicalize);
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}
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#include "llvm/Optimizations/InductionVars.h"
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#endif
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40
include/llvm/Transforms/FunctionInlining.h
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40
include/llvm/Transforms/FunctionInlining.h
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//===-- MethodInlining.h - Functions that perform Inlining -------*- C++ -*--=//
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//
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// This family of functions is useful for performing method inlining.
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//
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//===----------------------------------------------------------------------===//
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#ifndef LLVM_OPT_METHOD_INLINING_H
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#define LLVM_OPT_METHOD_INLINING_H
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#include "llvm/Module.h"
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#include "llvm/BasicBlock.h"
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class CallInst;
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namespace opt {
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// DoMethodInlining - Use a heuristic based approach to inline methods that seem
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// to look good.
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//
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bool DoMethodInlining(Method *M);
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static inline bool DoMethodInlining(Module *M) {
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return M->reduceApply(DoMethodInlining);
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}
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// InlineMethod - This function forcibly inlines the called method into the
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// basic block of the caller. This returns true if it is not possible to inline
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// this call. The program is still in a well defined state if this occurs
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// though.
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//
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// Note that this only does one level of inlining. For example, if the
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// instruction 'call B' is inlined, and 'B' calls 'C', then the call to 'C' now
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// exists in the instruction stream. Similiarly this will inline a recursive
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// method by one level.
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//
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bool InlineMethod(CallInst *C);
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bool InlineMethod(BasicBlock::iterator CI); // *CI must be CallInst
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} // end namespace opt
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#endif
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include/llvm/Transforms/Scalar/ConstantProp.h
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include/llvm/Transforms/Scalar/ConstantProp.h
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//===-- ConstantProp.h - Functions for Constant Propogation ------*- C++ -*--=//
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//
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// This family of functions are useful for performing constant propogation.
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//
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//===----------------------------------------------------------------------===//
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#ifndef LLVM_OPT_CONSTANT_PROPOGATION_H
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#define LLVM_OPT_CONSTANT_PROPOGATION_H
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#include "llvm/Module.h"
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class Method;
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class TerminatorInst;
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class ConstantPool;
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namespace opt {
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// DoConstantPropogation - Do trivial constant propogation and expression
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// folding
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bool DoConstantPropogation(Method *M);
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static inline bool DoConstantPropogation(Module *M) {
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return M->reduceApply(DoConstantPropogation);
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}
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// ConstantFoldTerminator - If a terminator instruction is predicated on a
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// constant value, convert it into an unconditional branch to the constant
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// destination.
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//
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bool ConstantFoldTerminator(TerminatorInst *T);
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//===----------------------------------------------------------------------===//
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// Constant Pool Merging Pass
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//
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// This function merges all constants in the specified constant pool that have
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// identical types and values. This is useful for passes that generate lots of
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// constants as a side effect of running.
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//
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bool DoConstantPoolMerging(ConstantPool &CP);
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bool DoConstantPoolMerging(Method *M);
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static inline bool DoConstantPoolMerging(Module *M) {
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return M->reduceApply(DoConstantPoolMerging) |
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DoConstantPoolMerging(M->getConstantPool());
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}
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//===----------------------------------------------------------------------===//
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// Sparse Conditional Constant Propogation Pass
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//
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bool DoSparseConditionalConstantProp(Method *M);
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static inline bool DoSparseConditionalConstantProp(Module *M) {
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return M->reduceApply(DoSparseConditionalConstantProp);
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}
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// Define a shorter version of the name...
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template <class Unit> bool DoSCCP(Unit *M) {
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return DoSparseConditionalConstantProp(M);
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}
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} // End Namespace opt
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#endif
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include/llvm/Transforms/Scalar/DCE.h
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include/llvm/Transforms/Scalar/DCE.h
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//===-- DCE.h - Functions that perform Dead Code Elimination -----*- C++ -*--=//
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//
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// This family of functions is useful for performing dead code elimination of
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// various sorts.
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//
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//===----------------------------------------------------------------------===//
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#ifndef LLVM_OPT_DCE_H
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#define LLVM_OPT_DCE_H
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#include "llvm/Method.h"
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class Module;
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class SymTabValue;
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class BasicBlock;
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namespace opt {
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bool DoDeadCodeElimination(Method *M); // DCE a method
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bool DoRemoveUnusedConstants(SymTabValue *S); // RUC a method or module
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bool DoDeadCodeElimination(Module *C); // DCE & RUC a whole module
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// SimplifyCFG - This function is used to do simplification of a CFG. For
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// example, it adjusts branches to branches to eliminate the extra hop, it
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// eliminates unreachable basic blocks, and does other "peephole" optimization
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// of the CFG. It returns true if a modification was made, and returns an
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// iterator that designates the first element remaining after the block that
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// was deleted.
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//
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// WARNING: The entry node of a method may not be simplified.
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//
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bool SimplifyCFG(Method::iterator &BBIt);
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} // End namespace opt
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#endif
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include/llvm/Transforms/Scalar/InductionVars.h
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include/llvm/Transforms/Scalar/InductionVars.h
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//===-- InductionVars.h - Induction Variable Recognition ---------*- C++ -*--=//
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//
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// This family of functions is useful for Induction variable recognition,
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// removal and optimizations.
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//
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//===----------------------------------------------------------------------===//
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#ifndef LLVM_OPT_INDUCTION_VARS_H
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#define LLVM_OPT_INDUCTION_VARS_H
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#include "llvm/Module.h"
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namespace opt {
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// DoInductionVariableCannonicalize - Simplify induction variables in loops
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//
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bool DoInductionVariableCannonicalize(Method *M);
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static inline bool DoInductionVariableCannonicalize(Module *M) {
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return M->reduceApply(DoInductionVariableCannonicalize);
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}
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} // end namespace opt
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#endif
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include/llvm/Transforms/Scalar/SymbolStripping.h
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include/llvm/Transforms/Scalar/SymbolStripping.h
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//===-- SymbolStripping.h - Functions that Strip Symbol Tables ---*- C++ -*--=//
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//
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// This family of functions removes symbols from the symbol tables of methods
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// and classes.
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//
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//===----------------------------------------------------------------------===//
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#ifndef LLVM_OPT_SYMBOL_STRIPPING_H
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#define LLVM_OPT_SYMBOL_STRIPPING_H
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class Method;
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class Module;
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namespace opt {
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// DoSymbolStripping - Remove all symbolic information from a method
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//
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bool DoSymbolStripping(Method *M);
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// DoSymbolStripping - Remove all symbolic information from all methods in a
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// module
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//
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static inline bool DoSymbolStripping(Module *M) {
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return M->reduceApply(DoSymbolStripping);
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}
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// DoFullSymbolStripping - Remove all symbolic information from all methods
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// in a module, and all module level symbols. (method names, etc...)
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//
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bool DoFullSymbolStripping(Module *M);
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} // End namespace opt
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#endif
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@ -39,6 +39,8 @@
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#include "llvm/Instruction.h"
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#include "llvm/Type.h"
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namespace opt {
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//===----------------------------------------------------------------------===//
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// Implement == directly...
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//===----------------------------------------------------------------------===//
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@ -174,4 +176,5 @@ inline ConstPoolVal *ConstantFoldBinaryInstruction(unsigned Opcode,
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return 0;
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}
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} // end namespace opt
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#endif
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#include "llvm/Instruction.h"
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#include "llvm/Type.h"
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namespace opt {
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//===----------------------------------------------------------------------===//
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// Implement == directly...
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//===----------------------------------------------------------------------===//
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@ -174,4 +176,5 @@ inline ConstPoolVal *ConstantFoldBinaryInstruction(unsigned Opcode,
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return 0;
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}
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} // end namespace opt
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#endif
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