1596f483aSJessica Paquette //===---- MachineOutliner.cpp - Outline instructions -----------*- C++ -*-===//
2596f483aSJessica Paquette //
3596f483aSJessica Paquette //                     The LLVM Compiler Infrastructure
4596f483aSJessica Paquette //
5596f483aSJessica Paquette // This file is distributed under the University of Illinois Open Source
6596f483aSJessica Paquette // License. See LICENSE.TXT for details.
7596f483aSJessica Paquette //
8596f483aSJessica Paquette //===----------------------------------------------------------------------===//
9596f483aSJessica Paquette ///
10596f483aSJessica Paquette /// \file
11596f483aSJessica Paquette /// Replaces repeated sequences of instructions with function calls.
12596f483aSJessica Paquette ///
13596f483aSJessica Paquette /// This works by placing every instruction from every basic block in a
14596f483aSJessica Paquette /// suffix tree, and repeatedly querying that tree for repeated sequences of
15596f483aSJessica Paquette /// instructions. If a sequence of instructions appears often, then it ought
16596f483aSJessica Paquette /// to be beneficial to pull out into a function.
17596f483aSJessica Paquette ///
184cf187b5SJessica Paquette /// The MachineOutliner communicates with a given target using hooks defined in
194cf187b5SJessica Paquette /// TargetInstrInfo.h. The target supplies the outliner with information on how
204cf187b5SJessica Paquette /// a specific sequence of instructions should be outlined. This information
214cf187b5SJessica Paquette /// is used to deduce the number of instructions necessary to
224cf187b5SJessica Paquette ///
234cf187b5SJessica Paquette /// * Create an outlined function
244cf187b5SJessica Paquette /// * Call that outlined function
254cf187b5SJessica Paquette ///
264cf187b5SJessica Paquette /// Targets must implement
274cf187b5SJessica Paquette ///   * getOutliningCandidateInfo
284cf187b5SJessica Paquette ///   * insertOutlinerEpilogue
294cf187b5SJessica Paquette ///   * insertOutlinedCall
304cf187b5SJessica Paquette ///   * insertOutlinerPrologue
314cf187b5SJessica Paquette ///   * isFunctionSafeToOutlineFrom
324cf187b5SJessica Paquette ///
334cf187b5SJessica Paquette /// in order to make use of the MachineOutliner.
344cf187b5SJessica Paquette ///
35596f483aSJessica Paquette /// This was originally presented at the 2016 LLVM Developers' Meeting in the
36596f483aSJessica Paquette /// talk "Reducing Code Size Using Outlining". For a high-level overview of
37596f483aSJessica Paquette /// how this pass works, the talk is available on YouTube at
38596f483aSJessica Paquette ///
39596f483aSJessica Paquette /// https://www.youtube.com/watch?v=yorld-WSOeU
40596f483aSJessica Paquette ///
41596f483aSJessica Paquette /// The slides for the talk are available at
42596f483aSJessica Paquette ///
43596f483aSJessica Paquette /// http://www.llvm.org/devmtg/2016-11/Slides/Paquette-Outliner.pdf
44596f483aSJessica Paquette ///
45596f483aSJessica Paquette /// The talk provides an overview of how the outliner finds candidates and
46596f483aSJessica Paquette /// ultimately outlines them. It describes how the main data structure for this
47596f483aSJessica Paquette /// pass, the suffix tree, is queried and purged for candidates. It also gives
48596f483aSJessica Paquette /// a simplified suffix tree construction algorithm for suffix trees based off
49596f483aSJessica Paquette /// of the algorithm actually used here, Ukkonen's algorithm.
50596f483aSJessica Paquette ///
51596f483aSJessica Paquette /// For the original RFC for this pass, please see
52596f483aSJessica Paquette ///
53596f483aSJessica Paquette /// http://lists.llvm.org/pipermail/llvm-dev/2016-August/104170.html
54596f483aSJessica Paquette ///
55596f483aSJessica Paquette /// For more information on the suffix tree data structure, please see
56596f483aSJessica Paquette /// https://www.cs.helsinki.fi/u/ukkonen/SuffixT1withFigs.pdf
57596f483aSJessica Paquette ///
58596f483aSJessica Paquette //===----------------------------------------------------------------------===//
59596f483aSJessica Paquette #include "llvm/ADT/DenseMap.h"
60596f483aSJessica Paquette #include "llvm/ADT/Statistic.h"
61596f483aSJessica Paquette #include "llvm/ADT/Twine.h"
62596f483aSJessica Paquette #include "llvm/CodeGen/MachineFunction.h"
63596f483aSJessica Paquette #include "llvm/CodeGen/MachineModuleInfo.h"
64ffe4abc5SJessica Paquette #include "llvm/CodeGen/MachineOptimizationRemarkEmitter.h"
6582203c41SGeoff Berry #include "llvm/CodeGen/MachineRegisterInfo.h"
66596f483aSJessica Paquette #include "llvm/CodeGen/Passes.h"
673f833edcSDavid Blaikie #include "llvm/CodeGen/TargetInstrInfo.h"
68b3bde2eaSDavid Blaikie #include "llvm/CodeGen/TargetRegisterInfo.h"
69b3bde2eaSDavid Blaikie #include "llvm/CodeGen/TargetSubtargetInfo.h"
70729e6869SJessica Paquette #include "llvm/IR/DIBuilder.h"
71596f483aSJessica Paquette #include "llvm/IR/IRBuilder.h"
72a499c3c2SJessica Paquette #include "llvm/IR/Mangler.h"
73596f483aSJessica Paquette #include "llvm/Support/Allocator.h"
741eca23bdSJessica Paquette #include "llvm/Support/CommandLine.h"
75596f483aSJessica Paquette #include "llvm/Support/Debug.h"
76596f483aSJessica Paquette #include "llvm/Support/raw_ostream.h"
77596f483aSJessica Paquette #include <functional>
78596f483aSJessica Paquette #include <map>
79596f483aSJessica Paquette #include <sstream>
80596f483aSJessica Paquette #include <tuple>
81596f483aSJessica Paquette #include <vector>
82596f483aSJessica Paquette 
83596f483aSJessica Paquette #define DEBUG_TYPE "machine-outliner"
84596f483aSJessica Paquette 
85596f483aSJessica Paquette using namespace llvm;
86ffe4abc5SJessica Paquette using namespace ore;
87596f483aSJessica Paquette 
88596f483aSJessica Paquette STATISTIC(NumOutlined, "Number of candidates outlined");
89596f483aSJessica Paquette STATISTIC(FunctionsCreated, "Number of functions created");
90596f483aSJessica Paquette 
911eca23bdSJessica Paquette // Set to true if the user wants the outliner to run on linkonceodr linkage
921eca23bdSJessica Paquette // functions. This is false by default because the linker can dedupe linkonceodr
931eca23bdSJessica Paquette // functions. Since the outliner is confined to a single module (modulo LTO),
941eca23bdSJessica Paquette // this is off by default. It should, however, be the default behaviour in
951eca23bdSJessica Paquette // LTO.
961eca23bdSJessica Paquette static cl::opt<bool> EnableLinkOnceODROutlining(
971eca23bdSJessica Paquette     "enable-linkonceodr-outlining",
981eca23bdSJessica Paquette     cl::Hidden,
991eca23bdSJessica Paquette     cl::desc("Enable the machine outliner on linkonceodr functions"),
1001eca23bdSJessica Paquette     cl::init(false));
1011eca23bdSJessica Paquette 
102596f483aSJessica Paquette namespace {
103596f483aSJessica Paquette 
1045f8f34e4SAdrian Prantl /// An individual sequence of instructions to be replaced with a call to
105acffa28cSJessica Paquette /// an outlined function.
106acffa28cSJessica Paquette struct Candidate {
107c9ab4c26SJessica Paquette private:
108c9ab4c26SJessica Paquette   /// The start index of this \p Candidate in the instruction list.
1094cf187b5SJessica Paquette   unsigned StartIdx;
110acffa28cSJessica Paquette 
111acffa28cSJessica Paquette   /// The number of instructions in this \p Candidate.
1124cf187b5SJessica Paquette   unsigned Len;
113acffa28cSJessica Paquette 
114a499c3c2SJessica Paquette   /// The MachineFunction containing this \p Candidate.
115a499c3c2SJessica Paquette   MachineFunction *MF = nullptr;
116a499c3c2SJessica Paquette 
117c9ab4c26SJessica Paquette public:
118c9ab4c26SJessica Paquette   /// Set to false if the candidate overlapped with another candidate.
119c9ab4c26SJessica Paquette   bool InCandidateList = true;
120c9ab4c26SJessica Paquette 
1215f8f34e4SAdrian Prantl   /// The index of this \p Candidate's \p OutlinedFunction in the list of
122acffa28cSJessica Paquette   /// \p OutlinedFunctions.
1234cf187b5SJessica Paquette   unsigned FunctionIdx;
124acffa28cSJessica Paquette 
1254cf187b5SJessica Paquette   /// Contains all target-specific information for this \p Candidate.
1264cf187b5SJessica Paquette   TargetInstrInfo::MachineOutlinerInfo MInfo;
127d87f5449SJessica Paquette 
128a499c3c2SJessica Paquette   /// If there is a DISubprogram associated with the function that this
129a499c3c2SJessica Paquette   /// Candidate lives in, return it.
130a499c3c2SJessica Paquette   DISubprogram *getSubprogramOrNull() const {
131a499c3c2SJessica Paquette     assert(MF && "Candidate has no MF!");
132a499c3c2SJessica Paquette     if (DISubprogram *SP = MF->getFunction().getSubprogram())
133a499c3c2SJessica Paquette       return SP;
134a499c3c2SJessica Paquette     return nullptr;
135a499c3c2SJessica Paquette   }
136a499c3c2SJessica Paquette 
137c9ab4c26SJessica Paquette   /// Return the number of instructions in this Candidate.
1381934fd2cSJessica Paquette   unsigned getLength() const { return Len; }
139c9ab4c26SJessica Paquette 
140c9ab4c26SJessica Paquette   /// Return the start index of this candidate.
1411934fd2cSJessica Paquette   unsigned getStartIdx() const { return StartIdx; }
142c9ab4c26SJessica Paquette 
143c9ab4c26SJessica Paquette   // Return the end index of this candidate.
1441934fd2cSJessica Paquette   unsigned getEndIdx() const { return StartIdx + Len - 1; }
145c9ab4c26SJessica Paquette 
1465f8f34e4SAdrian Prantl   /// The number of instructions that would be saved by outlining every
147acffa28cSJessica Paquette   /// candidate of this type.
148acffa28cSJessica Paquette   ///
149acffa28cSJessica Paquette   /// This is a fixed value which is not updated during the candidate pruning
150acffa28cSJessica Paquette   /// process. It is only used for deciding which candidate to keep if two
151acffa28cSJessica Paquette   /// candidates overlap. The true benefit is stored in the OutlinedFunction
152acffa28cSJessica Paquette   /// for some given candidate.
153acffa28cSJessica Paquette   unsigned Benefit = 0;
154acffa28cSJessica Paquette 
155a499c3c2SJessica Paquette   Candidate(unsigned StartIdx, unsigned Len, unsigned FunctionIdx,
156a499c3c2SJessica Paquette             MachineFunction *MF)
157a499c3c2SJessica Paquette       : StartIdx(StartIdx), Len(Len), MF(MF), FunctionIdx(FunctionIdx) {}
158acffa28cSJessica Paquette 
159acffa28cSJessica Paquette   Candidate() {}
160acffa28cSJessica Paquette 
1615f8f34e4SAdrian Prantl   /// Used to ensure that \p Candidates are outlined in an order that
162acffa28cSJessica Paquette   /// preserves the start and end indices of other \p Candidates.
163c9ab4c26SJessica Paquette   bool operator<(const Candidate &RHS) const {
1641934fd2cSJessica Paquette     return getStartIdx() > RHS.getStartIdx();
165c9ab4c26SJessica Paquette   }
166acffa28cSJessica Paquette };
167acffa28cSJessica Paquette 
1685f8f34e4SAdrian Prantl /// The information necessary to create an outlined function for some
169acffa28cSJessica Paquette /// class of candidate.
170acffa28cSJessica Paquette struct OutlinedFunction {
171acffa28cSJessica Paquette 
17285af63d0SJessica Paquette private:
17385af63d0SJessica Paquette   /// The number of candidates for this \p OutlinedFunction.
17485af63d0SJessica Paquette   unsigned OccurrenceCount = 0;
17585af63d0SJessica Paquette 
17685af63d0SJessica Paquette public:
1779df7fde2SJessica Paquette   std::vector<std::shared_ptr<Candidate>> Candidates;
1789df7fde2SJessica Paquette 
179acffa28cSJessica Paquette   /// The actual outlined function created.
180acffa28cSJessica Paquette   /// This is initialized after we go through and create the actual function.
181acffa28cSJessica Paquette   MachineFunction *MF = nullptr;
182acffa28cSJessica Paquette 
1834cf187b5SJessica Paquette   /// A number assigned to this function which appears at the end of its name.
1844cf187b5SJessica Paquette   unsigned Name;
185acffa28cSJessica Paquette 
1865f8f34e4SAdrian Prantl   /// The sequence of integers corresponding to the instructions in this
187acffa28cSJessica Paquette   /// function.
188acffa28cSJessica Paquette   std::vector<unsigned> Sequence;
189acffa28cSJessica Paquette 
1904cf187b5SJessica Paquette   /// Contains all target-specific information for this \p OutlinedFunction.
1914cf187b5SJessica Paquette   TargetInstrInfo::MachineOutlinerInfo MInfo;
192acffa28cSJessica Paquette 
193a499c3c2SJessica Paquette   /// If there is a DISubprogram for any Candidate for this outlined function,
194a499c3c2SJessica Paquette   /// then return it. Otherwise, return nullptr.
195a499c3c2SJessica Paquette   DISubprogram *getSubprogramOrNull() const {
196a499c3c2SJessica Paquette     for (const auto &C : Candidates)
197a499c3c2SJessica Paquette       if (DISubprogram *SP = C->getSubprogramOrNull())
198a499c3c2SJessica Paquette         return SP;
199a499c3c2SJessica Paquette     return nullptr;
200a499c3c2SJessica Paquette   }
201a499c3c2SJessica Paquette 
20285af63d0SJessica Paquette   /// Return the number of candidates for this \p OutlinedFunction.
20360d31fc3SJessica Paquette   unsigned getOccurrenceCount() { return OccurrenceCount; }
20485af63d0SJessica Paquette 
20585af63d0SJessica Paquette   /// Decrement the occurrence count of this OutlinedFunction and return the
20685af63d0SJessica Paquette   /// new count.
20785af63d0SJessica Paquette   unsigned decrement() {
20885af63d0SJessica Paquette     assert(OccurrenceCount > 0 && "Can't decrement an empty function!");
20985af63d0SJessica Paquette     OccurrenceCount--;
21085af63d0SJessica Paquette     return getOccurrenceCount();
21185af63d0SJessica Paquette   }
21285af63d0SJessica Paquette 
2135f8f34e4SAdrian Prantl   /// Return the number of instructions it would take to outline this
214acc15e12SJessica Paquette   /// function.
215acc15e12SJessica Paquette   unsigned getOutliningCost() {
216acc15e12SJessica Paquette     return (OccurrenceCount * MInfo.CallOverhead) + Sequence.size() +
217acc15e12SJessica Paquette            MInfo.FrameOverhead;
218acc15e12SJessica Paquette   }
219acc15e12SJessica Paquette 
2205f8f34e4SAdrian Prantl   /// Return the number of instructions that would be saved by outlining
221acc15e12SJessica Paquette   /// this function.
222acc15e12SJessica Paquette   unsigned getBenefit() {
223acc15e12SJessica Paquette     unsigned NotOutlinedCost = OccurrenceCount * Sequence.size();
224acc15e12SJessica Paquette     unsigned OutlinedCost = getOutliningCost();
225acc15e12SJessica Paquette     return (NotOutlinedCost < OutlinedCost) ? 0
226acc15e12SJessica Paquette                                             : NotOutlinedCost - OutlinedCost;
227acc15e12SJessica Paquette   }
228acc15e12SJessica Paquette 
2294cf187b5SJessica Paquette   OutlinedFunction(unsigned Name, unsigned OccurrenceCount,
230acc15e12SJessica Paquette                    const std::vector<unsigned> &Sequence,
2314cf187b5SJessica Paquette                    TargetInstrInfo::MachineOutlinerInfo &MInfo)
23285af63d0SJessica Paquette       : OccurrenceCount(OccurrenceCount), Name(Name), Sequence(Sequence),
233acc15e12SJessica Paquette         MInfo(MInfo) {}
234acffa28cSJessica Paquette };
235acffa28cSJessica Paquette 
236596f483aSJessica Paquette /// Represents an undefined index in the suffix tree.
2374cf187b5SJessica Paquette const unsigned EmptyIdx = -1;
238596f483aSJessica Paquette 
239596f483aSJessica Paquette /// A node in a suffix tree which represents a substring or suffix.
240596f483aSJessica Paquette ///
241596f483aSJessica Paquette /// Each node has either no children or at least two children, with the root
242596f483aSJessica Paquette /// being a exception in the empty tree.
243596f483aSJessica Paquette ///
244596f483aSJessica Paquette /// Children are represented as a map between unsigned integers and nodes. If
245596f483aSJessica Paquette /// a node N has a child M on unsigned integer k, then the mapping represented
246596f483aSJessica Paquette /// by N is a proper prefix of the mapping represented by M. Note that this,
247596f483aSJessica Paquette /// although similar to a trie is somewhat different: each node stores a full
248596f483aSJessica Paquette /// substring of the full mapping rather than a single character state.
249596f483aSJessica Paquette ///
250596f483aSJessica Paquette /// Each internal node contains a pointer to the internal node representing
251596f483aSJessica Paquette /// the same string, but with the first character chopped off. This is stored
252596f483aSJessica Paquette /// in \p Link. Each leaf node stores the start index of its respective
253596f483aSJessica Paquette /// suffix in \p SuffixIdx.
254596f483aSJessica Paquette struct SuffixTreeNode {
255596f483aSJessica Paquette 
256596f483aSJessica Paquette   /// The children of this node.
257596f483aSJessica Paquette   ///
258596f483aSJessica Paquette   /// A child existing on an unsigned integer implies that from the mapping
259596f483aSJessica Paquette   /// represented by the current node, there is a way to reach another
260596f483aSJessica Paquette   /// mapping by tacking that character on the end of the current string.
261596f483aSJessica Paquette   DenseMap<unsigned, SuffixTreeNode *> Children;
262596f483aSJessica Paquette 
263596f483aSJessica Paquette   /// A flag set to false if the node has been pruned from the tree.
264596f483aSJessica Paquette   bool IsInTree = true;
265596f483aSJessica Paquette 
266596f483aSJessica Paquette   /// The start index of this node's substring in the main string.
2674cf187b5SJessica Paquette   unsigned StartIdx = EmptyIdx;
268596f483aSJessica Paquette 
269596f483aSJessica Paquette   /// The end index of this node's substring in the main string.
270596f483aSJessica Paquette   ///
271596f483aSJessica Paquette   /// Every leaf node must have its \p EndIdx incremented at the end of every
272596f483aSJessica Paquette   /// step in the construction algorithm. To avoid having to update O(N)
273596f483aSJessica Paquette   /// nodes individually at the end of every step, the end index is stored
274596f483aSJessica Paquette   /// as a pointer.
2754cf187b5SJessica Paquette   unsigned *EndIdx = nullptr;
276596f483aSJessica Paquette 
277596f483aSJessica Paquette   /// For leaves, the start index of the suffix represented by this node.
278596f483aSJessica Paquette   ///
279596f483aSJessica Paquette   /// For all other nodes, this is ignored.
2804cf187b5SJessica Paquette   unsigned SuffixIdx = EmptyIdx;
281596f483aSJessica Paquette 
2825f8f34e4SAdrian Prantl   /// For internal nodes, a pointer to the internal node representing
283596f483aSJessica Paquette   /// the same sequence with the first character chopped off.
284596f483aSJessica Paquette   ///
2854602c343SJessica Paquette   /// This acts as a shortcut in Ukkonen's algorithm. One of the things that
286596f483aSJessica Paquette   /// Ukkonen's algorithm does to achieve linear-time construction is
287596f483aSJessica Paquette   /// keep track of which node the next insert should be at. This makes each
288596f483aSJessica Paquette   /// insert O(1), and there are a total of O(N) inserts. The suffix link
289596f483aSJessica Paquette   /// helps with inserting children of internal nodes.
290596f483aSJessica Paquette   ///
291596f483aSJessica Paquette   /// Say we add a child to an internal node with associated mapping S. The
292596f483aSJessica Paquette   /// next insertion must be at the node representing S - its first character.
293596f483aSJessica Paquette   /// This is given by the way that we iteratively build the tree in Ukkonen's
294596f483aSJessica Paquette   /// algorithm. The main idea is to look at the suffixes of each prefix in the
295596f483aSJessica Paquette   /// string, starting with the longest suffix of the prefix, and ending with
296596f483aSJessica Paquette   /// the shortest. Therefore, if we keep pointers between such nodes, we can
297596f483aSJessica Paquette   /// move to the next insertion point in O(1) time. If we don't, then we'd
298596f483aSJessica Paquette   /// have to query from the root, which takes O(N) time. This would make the
299596f483aSJessica Paquette   /// construction algorithm O(N^2) rather than O(N).
300596f483aSJessica Paquette   SuffixTreeNode *Link = nullptr;
301596f483aSJessica Paquette 
302596f483aSJessica Paquette   /// The parent of this node. Every node except for the root has a parent.
303596f483aSJessica Paquette   SuffixTreeNode *Parent = nullptr;
304596f483aSJessica Paquette 
305596f483aSJessica Paquette   /// The number of times this node's string appears in the tree.
306596f483aSJessica Paquette   ///
307596f483aSJessica Paquette   /// This is equal to the number of leaf children of the string. It represents
308596f483aSJessica Paquette   /// the number of suffixes that the node's string is a prefix of.
3094cf187b5SJessica Paquette   unsigned OccurrenceCount = 0;
310596f483aSJessica Paquette 
311acffa28cSJessica Paquette   /// The length of the string formed by concatenating the edge labels from the
312acffa28cSJessica Paquette   /// root to this node.
3134cf187b5SJessica Paquette   unsigned ConcatLen = 0;
314acffa28cSJessica Paquette 
315596f483aSJessica Paquette   /// Returns true if this node is a leaf.
316596f483aSJessica Paquette   bool isLeaf() const { return SuffixIdx != EmptyIdx; }
317596f483aSJessica Paquette 
318596f483aSJessica Paquette   /// Returns true if this node is the root of its owning \p SuffixTree.
319596f483aSJessica Paquette   bool isRoot() const { return StartIdx == EmptyIdx; }
320596f483aSJessica Paquette 
321596f483aSJessica Paquette   /// Return the number of elements in the substring associated with this node.
322596f483aSJessica Paquette   size_t size() const {
323596f483aSJessica Paquette 
324596f483aSJessica Paquette     // Is it the root? If so, it's the empty string so return 0.
325596f483aSJessica Paquette     if (isRoot())
326596f483aSJessica Paquette       return 0;
327596f483aSJessica Paquette 
328596f483aSJessica Paquette     assert(*EndIdx != EmptyIdx && "EndIdx is undefined!");
329596f483aSJessica Paquette 
330596f483aSJessica Paquette     // Size = the number of elements in the string.
331596f483aSJessica Paquette     // For example, [0 1 2 3] has length 4, not 3. 3-0 = 3, so we have 3-0+1.
332596f483aSJessica Paquette     return *EndIdx - StartIdx + 1;
333596f483aSJessica Paquette   }
334596f483aSJessica Paquette 
3354cf187b5SJessica Paquette   SuffixTreeNode(unsigned StartIdx, unsigned *EndIdx, SuffixTreeNode *Link,
336596f483aSJessica Paquette                  SuffixTreeNode *Parent)
337596f483aSJessica Paquette       : StartIdx(StartIdx), EndIdx(EndIdx), Link(Link), Parent(Parent) {}
338596f483aSJessica Paquette 
339596f483aSJessica Paquette   SuffixTreeNode() {}
340596f483aSJessica Paquette };
341596f483aSJessica Paquette 
342596f483aSJessica Paquette /// A data structure for fast substring queries.
343596f483aSJessica Paquette ///
344596f483aSJessica Paquette /// Suffix trees represent the suffixes of their input strings in their leaves.
345596f483aSJessica Paquette /// A suffix tree is a type of compressed trie structure where each node
346596f483aSJessica Paquette /// represents an entire substring rather than a single character. Each leaf
347596f483aSJessica Paquette /// of the tree is a suffix.
348596f483aSJessica Paquette ///
349596f483aSJessica Paquette /// A suffix tree can be seen as a type of state machine where each state is a
350596f483aSJessica Paquette /// substring of the full string. The tree is structured so that, for a string
351596f483aSJessica Paquette /// of length N, there are exactly N leaves in the tree. This structure allows
352596f483aSJessica Paquette /// us to quickly find repeated substrings of the input string.
353596f483aSJessica Paquette ///
354596f483aSJessica Paquette /// In this implementation, a "string" is a vector of unsigned integers.
355596f483aSJessica Paquette /// These integers may result from hashing some data type. A suffix tree can
356596f483aSJessica Paquette /// contain 1 or many strings, which can then be queried as one large string.
357596f483aSJessica Paquette ///
358596f483aSJessica Paquette /// The suffix tree is implemented using Ukkonen's algorithm for linear-time
359596f483aSJessica Paquette /// suffix tree construction. Ukkonen's algorithm is explained in more detail
360596f483aSJessica Paquette /// in the paper by Esko Ukkonen "On-line construction of suffix trees. The
361596f483aSJessica Paquette /// paper is available at
362596f483aSJessica Paquette ///
363596f483aSJessica Paquette /// https://www.cs.helsinki.fi/u/ukkonen/SuffixT1withFigs.pdf
364596f483aSJessica Paquette class SuffixTree {
36578681be2SJessica Paquette public:
36678681be2SJessica Paquette   /// Stores each leaf node in the tree.
36778681be2SJessica Paquette   ///
36878681be2SJessica Paquette   /// This is used for finding outlining candidates.
36978681be2SJessica Paquette   std::vector<SuffixTreeNode *> LeafVector;
37078681be2SJessica Paquette 
371596f483aSJessica Paquette   /// Each element is an integer representing an instruction in the module.
372596f483aSJessica Paquette   ArrayRef<unsigned> Str;
373596f483aSJessica Paquette 
37478681be2SJessica Paquette private:
375596f483aSJessica Paquette   /// Maintains each node in the tree.
376d4cb9c6dSJessica Paquette   SpecificBumpPtrAllocator<SuffixTreeNode> NodeAllocator;
377596f483aSJessica Paquette 
378596f483aSJessica Paquette   /// The root of the suffix tree.
379596f483aSJessica Paquette   ///
380596f483aSJessica Paquette   /// The root represents the empty string. It is maintained by the
381596f483aSJessica Paquette   /// \p NodeAllocator like every other node in the tree.
382596f483aSJessica Paquette   SuffixTreeNode *Root = nullptr;
383596f483aSJessica Paquette 
384596f483aSJessica Paquette   /// Maintains the end indices of the internal nodes in the tree.
385596f483aSJessica Paquette   ///
386596f483aSJessica Paquette   /// Each internal node is guaranteed to never have its end index change
387596f483aSJessica Paquette   /// during the construction algorithm; however, leaves must be updated at
388596f483aSJessica Paquette   /// every step. Therefore, we need to store leaf end indices by reference
389596f483aSJessica Paquette   /// to avoid updating O(N) leaves at every step of construction. Thus,
390596f483aSJessica Paquette   /// every internal node must be allocated its own end index.
391596f483aSJessica Paquette   BumpPtrAllocator InternalEndIdxAllocator;
392596f483aSJessica Paquette 
393596f483aSJessica Paquette   /// The end index of each leaf in the tree.
3944cf187b5SJessica Paquette   unsigned LeafEndIdx = -1;
395596f483aSJessica Paquette 
3965f8f34e4SAdrian Prantl   /// Helper struct which keeps track of the next insertion point in
397596f483aSJessica Paquette   /// Ukkonen's algorithm.
398596f483aSJessica Paquette   struct ActiveState {
399596f483aSJessica Paquette     /// The next node to insert at.
400596f483aSJessica Paquette     SuffixTreeNode *Node;
401596f483aSJessica Paquette 
402596f483aSJessica Paquette     /// The index of the first character in the substring currently being added.
4034cf187b5SJessica Paquette     unsigned Idx = EmptyIdx;
404596f483aSJessica Paquette 
405596f483aSJessica Paquette     /// The length of the substring we have to add at the current step.
4064cf187b5SJessica Paquette     unsigned Len = 0;
407596f483aSJessica Paquette   };
408596f483aSJessica Paquette 
4095f8f34e4SAdrian Prantl   /// The point the next insertion will take place at in the
410596f483aSJessica Paquette   /// construction algorithm.
411596f483aSJessica Paquette   ActiveState Active;
412596f483aSJessica Paquette 
413596f483aSJessica Paquette   /// Allocate a leaf node and add it to the tree.
414596f483aSJessica Paquette   ///
415596f483aSJessica Paquette   /// \param Parent The parent of this node.
416596f483aSJessica Paquette   /// \param StartIdx The start index of this node's associated string.
417596f483aSJessica Paquette   /// \param Edge The label on the edge leaving \p Parent to this node.
418596f483aSJessica Paquette   ///
419596f483aSJessica Paquette   /// \returns A pointer to the allocated leaf node.
4204cf187b5SJessica Paquette   SuffixTreeNode *insertLeaf(SuffixTreeNode &Parent, unsigned StartIdx,
421596f483aSJessica Paquette                              unsigned Edge) {
422596f483aSJessica Paquette 
423596f483aSJessica Paquette     assert(StartIdx <= LeafEndIdx && "String can't start after it ends!");
424596f483aSJessica Paquette 
42578681be2SJessica Paquette     SuffixTreeNode *N = new (NodeAllocator.Allocate())
42678681be2SJessica Paquette         SuffixTreeNode(StartIdx, &LeafEndIdx, nullptr, &Parent);
427596f483aSJessica Paquette     Parent.Children[Edge] = N;
428596f483aSJessica Paquette 
429596f483aSJessica Paquette     return N;
430596f483aSJessica Paquette   }
431596f483aSJessica Paquette 
432596f483aSJessica Paquette   /// Allocate an internal node and add it to the tree.
433596f483aSJessica Paquette   ///
434596f483aSJessica Paquette   /// \param Parent The parent of this node. Only null when allocating the root.
435596f483aSJessica Paquette   /// \param StartIdx The start index of this node's associated string.
436596f483aSJessica Paquette   /// \param EndIdx The end index of this node's associated string.
437596f483aSJessica Paquette   /// \param Edge The label on the edge leaving \p Parent to this node.
438596f483aSJessica Paquette   ///
439596f483aSJessica Paquette   /// \returns A pointer to the allocated internal node.
4404cf187b5SJessica Paquette   SuffixTreeNode *insertInternalNode(SuffixTreeNode *Parent, unsigned StartIdx,
4414cf187b5SJessica Paquette                                      unsigned EndIdx, unsigned Edge) {
442596f483aSJessica Paquette 
443596f483aSJessica Paquette     assert(StartIdx <= EndIdx && "String can't start after it ends!");
444596f483aSJessica Paquette     assert(!(!Parent && StartIdx != EmptyIdx) &&
445596f483aSJessica Paquette            "Non-root internal nodes must have parents!");
446596f483aSJessica Paquette 
4474cf187b5SJessica Paquette     unsigned *E = new (InternalEndIdxAllocator) unsigned(EndIdx);
44878681be2SJessica Paquette     SuffixTreeNode *N = new (NodeAllocator.Allocate())
44978681be2SJessica Paquette         SuffixTreeNode(StartIdx, E, Root, Parent);
450596f483aSJessica Paquette     if (Parent)
451596f483aSJessica Paquette       Parent->Children[Edge] = N;
452596f483aSJessica Paquette 
453596f483aSJessica Paquette     return N;
454596f483aSJessica Paquette   }
455596f483aSJessica Paquette 
4565f8f34e4SAdrian Prantl   /// Set the suffix indices of the leaves to the start indices of their
457596f483aSJessica Paquette   /// respective suffixes. Also stores each leaf in \p LeafVector at its
458596f483aSJessica Paquette   /// respective suffix index.
459596f483aSJessica Paquette   ///
460596f483aSJessica Paquette   /// \param[in] CurrNode The node currently being visited.
461596f483aSJessica Paquette   /// \param CurrIdx The current index of the string being visited.
4624cf187b5SJessica Paquette   void setSuffixIndices(SuffixTreeNode &CurrNode, unsigned CurrIdx) {
463596f483aSJessica Paquette 
464596f483aSJessica Paquette     bool IsLeaf = CurrNode.Children.size() == 0 && !CurrNode.isRoot();
465596f483aSJessica Paquette 
466acffa28cSJessica Paquette     // Store the length of the concatenation of all strings from the root to
467acffa28cSJessica Paquette     // this node.
468acffa28cSJessica Paquette     if (!CurrNode.isRoot()) {
469acffa28cSJessica Paquette       if (CurrNode.ConcatLen == 0)
470acffa28cSJessica Paquette         CurrNode.ConcatLen = CurrNode.size();
471acffa28cSJessica Paquette 
472acffa28cSJessica Paquette       if (CurrNode.Parent)
473acffa28cSJessica Paquette         CurrNode.ConcatLen += CurrNode.Parent->ConcatLen;
474acffa28cSJessica Paquette     }
475acffa28cSJessica Paquette 
476596f483aSJessica Paquette     // Traverse the tree depth-first.
477596f483aSJessica Paquette     for (auto &ChildPair : CurrNode.Children) {
478596f483aSJessica Paquette       assert(ChildPair.second && "Node had a null child!");
47978681be2SJessica Paquette       setSuffixIndices(*ChildPair.second, CurrIdx + ChildPair.second->size());
480596f483aSJessica Paquette     }
481596f483aSJessica Paquette 
482596f483aSJessica Paquette     // Is this node a leaf?
483596f483aSJessica Paquette     if (IsLeaf) {
484596f483aSJessica Paquette       // If yes, give it a suffix index and bump its parent's occurrence count.
485596f483aSJessica Paquette       CurrNode.SuffixIdx = Str.size() - CurrIdx;
486596f483aSJessica Paquette       assert(CurrNode.Parent && "CurrNode had no parent!");
487596f483aSJessica Paquette       CurrNode.Parent->OccurrenceCount++;
488596f483aSJessica Paquette 
489596f483aSJessica Paquette       // Store the leaf in the leaf vector for pruning later.
490596f483aSJessica Paquette       LeafVector[CurrNode.SuffixIdx] = &CurrNode;
491596f483aSJessica Paquette     }
492596f483aSJessica Paquette   }
493596f483aSJessica Paquette 
4945f8f34e4SAdrian Prantl   /// Construct the suffix tree for the prefix of the input ending at
495596f483aSJessica Paquette   /// \p EndIdx.
496596f483aSJessica Paquette   ///
497596f483aSJessica Paquette   /// Used to construct the full suffix tree iteratively. At the end of each
498596f483aSJessica Paquette   /// step, the constructed suffix tree is either a valid suffix tree, or a
499596f483aSJessica Paquette   /// suffix tree with implicit suffixes. At the end of the final step, the
500596f483aSJessica Paquette   /// suffix tree is a valid tree.
501596f483aSJessica Paquette   ///
502596f483aSJessica Paquette   /// \param EndIdx The end index of the current prefix in the main string.
503596f483aSJessica Paquette   /// \param SuffixesToAdd The number of suffixes that must be added
504596f483aSJessica Paquette   /// to complete the suffix tree at the current phase.
505596f483aSJessica Paquette   ///
506596f483aSJessica Paquette   /// \returns The number of suffixes that have not been added at the end of
507596f483aSJessica Paquette   /// this step.
5084cf187b5SJessica Paquette   unsigned extend(unsigned EndIdx, unsigned SuffixesToAdd) {
509596f483aSJessica Paquette     SuffixTreeNode *NeedsLink = nullptr;
510596f483aSJessica Paquette 
511596f483aSJessica Paquette     while (SuffixesToAdd > 0) {
512596f483aSJessica Paquette 
513596f483aSJessica Paquette       // Are we waiting to add anything other than just the last character?
514596f483aSJessica Paquette       if (Active.Len == 0) {
515596f483aSJessica Paquette         // If not, then say the active index is the end index.
516596f483aSJessica Paquette         Active.Idx = EndIdx;
517596f483aSJessica Paquette       }
518596f483aSJessica Paquette 
519596f483aSJessica Paquette       assert(Active.Idx <= EndIdx && "Start index can't be after end index!");
520596f483aSJessica Paquette 
521596f483aSJessica Paquette       // The first character in the current substring we're looking at.
522596f483aSJessica Paquette       unsigned FirstChar = Str[Active.Idx];
523596f483aSJessica Paquette 
524596f483aSJessica Paquette       // Have we inserted anything starting with FirstChar at the current node?
525596f483aSJessica Paquette       if (Active.Node->Children.count(FirstChar) == 0) {
526596f483aSJessica Paquette         // If not, then we can just insert a leaf and move too the next step.
527596f483aSJessica Paquette         insertLeaf(*Active.Node, EndIdx, FirstChar);
528596f483aSJessica Paquette 
529596f483aSJessica Paquette         // The active node is an internal node, and we visited it, so it must
530596f483aSJessica Paquette         // need a link if it doesn't have one.
531596f483aSJessica Paquette         if (NeedsLink) {
532596f483aSJessica Paquette           NeedsLink->Link = Active.Node;
533596f483aSJessica Paquette           NeedsLink = nullptr;
534596f483aSJessica Paquette         }
535596f483aSJessica Paquette       } else {
536596f483aSJessica Paquette         // There's a match with FirstChar, so look for the point in the tree to
537596f483aSJessica Paquette         // insert a new node.
538596f483aSJessica Paquette         SuffixTreeNode *NextNode = Active.Node->Children[FirstChar];
539596f483aSJessica Paquette 
5404cf187b5SJessica Paquette         unsigned SubstringLen = NextNode->size();
541596f483aSJessica Paquette 
542596f483aSJessica Paquette         // Is the current suffix we're trying to insert longer than the size of
543596f483aSJessica Paquette         // the child we want to move to?
544596f483aSJessica Paquette         if (Active.Len >= SubstringLen) {
545596f483aSJessica Paquette           // If yes, then consume the characters we've seen and move to the next
546596f483aSJessica Paquette           // node.
547596f483aSJessica Paquette           Active.Idx += SubstringLen;
548596f483aSJessica Paquette           Active.Len -= SubstringLen;
549596f483aSJessica Paquette           Active.Node = NextNode;
550596f483aSJessica Paquette           continue;
551596f483aSJessica Paquette         }
552596f483aSJessica Paquette 
553596f483aSJessica Paquette         // Otherwise, the suffix we're trying to insert must be contained in the
554596f483aSJessica Paquette         // next node we want to move to.
555596f483aSJessica Paquette         unsigned LastChar = Str[EndIdx];
556596f483aSJessica Paquette 
557596f483aSJessica Paquette         // Is the string we're trying to insert a substring of the next node?
558596f483aSJessica Paquette         if (Str[NextNode->StartIdx + Active.Len] == LastChar) {
559596f483aSJessica Paquette           // If yes, then we're done for this step. Remember our insertion point
560596f483aSJessica Paquette           // and move to the next end index. At this point, we have an implicit
561596f483aSJessica Paquette           // suffix tree.
562596f483aSJessica Paquette           if (NeedsLink && !Active.Node->isRoot()) {
563596f483aSJessica Paquette             NeedsLink->Link = Active.Node;
564596f483aSJessica Paquette             NeedsLink = nullptr;
565596f483aSJessica Paquette           }
566596f483aSJessica Paquette 
567596f483aSJessica Paquette           Active.Len++;
568596f483aSJessica Paquette           break;
569596f483aSJessica Paquette         }
570596f483aSJessica Paquette 
571596f483aSJessica Paquette         // The string we're trying to insert isn't a substring of the next node,
572596f483aSJessica Paquette         // but matches up to a point. Split the node.
573596f483aSJessica Paquette         //
574596f483aSJessica Paquette         // For example, say we ended our search at a node n and we're trying to
575596f483aSJessica Paquette         // insert ABD. Then we'll create a new node s for AB, reduce n to just
576596f483aSJessica Paquette         // representing C, and insert a new leaf node l to represent d. This
577596f483aSJessica Paquette         // allows us to ensure that if n was a leaf, it remains a leaf.
578596f483aSJessica Paquette         //
579596f483aSJessica Paquette         //   | ABC  ---split--->  | AB
580596f483aSJessica Paquette         //   n                    s
581596f483aSJessica Paquette         //                     C / \ D
582596f483aSJessica Paquette         //                      n   l
583596f483aSJessica Paquette 
584596f483aSJessica Paquette         // The node s from the diagram
585596f483aSJessica Paquette         SuffixTreeNode *SplitNode =
58678681be2SJessica Paquette             insertInternalNode(Active.Node, NextNode->StartIdx,
58778681be2SJessica Paquette                                NextNode->StartIdx + Active.Len - 1, FirstChar);
588596f483aSJessica Paquette 
589596f483aSJessica Paquette         // Insert the new node representing the new substring into the tree as
590596f483aSJessica Paquette         // a child of the split node. This is the node l from the diagram.
591596f483aSJessica Paquette         insertLeaf(*SplitNode, EndIdx, LastChar);
592596f483aSJessica Paquette 
593596f483aSJessica Paquette         // Make the old node a child of the split node and update its start
594596f483aSJessica Paquette         // index. This is the node n from the diagram.
595596f483aSJessica Paquette         NextNode->StartIdx += Active.Len;
596596f483aSJessica Paquette         NextNode->Parent = SplitNode;
597596f483aSJessica Paquette         SplitNode->Children[Str[NextNode->StartIdx]] = NextNode;
598596f483aSJessica Paquette 
599596f483aSJessica Paquette         // SplitNode is an internal node, update the suffix link.
600596f483aSJessica Paquette         if (NeedsLink)
601596f483aSJessica Paquette           NeedsLink->Link = SplitNode;
602596f483aSJessica Paquette 
603596f483aSJessica Paquette         NeedsLink = SplitNode;
604596f483aSJessica Paquette       }
605596f483aSJessica Paquette 
606596f483aSJessica Paquette       // We've added something new to the tree, so there's one less suffix to
607596f483aSJessica Paquette       // add.
608596f483aSJessica Paquette       SuffixesToAdd--;
609596f483aSJessica Paquette 
610596f483aSJessica Paquette       if (Active.Node->isRoot()) {
611596f483aSJessica Paquette         if (Active.Len > 0) {
612596f483aSJessica Paquette           Active.Len--;
613596f483aSJessica Paquette           Active.Idx = EndIdx - SuffixesToAdd + 1;
614596f483aSJessica Paquette         }
615596f483aSJessica Paquette       } else {
616596f483aSJessica Paquette         // Start the next phase at the next smallest suffix.
617596f483aSJessica Paquette         Active.Node = Active.Node->Link;
618596f483aSJessica Paquette       }
619596f483aSJessica Paquette     }
620596f483aSJessica Paquette 
621596f483aSJessica Paquette     return SuffixesToAdd;
622596f483aSJessica Paquette   }
623596f483aSJessica Paquette 
624596f483aSJessica Paquette public:
625596f483aSJessica Paquette   /// Construct a suffix tree from a sequence of unsigned integers.
626596f483aSJessica Paquette   ///
627596f483aSJessica Paquette   /// \param Str The string to construct the suffix tree for.
628596f483aSJessica Paquette   SuffixTree(const std::vector<unsigned> &Str) : Str(Str) {
629596f483aSJessica Paquette     Root = insertInternalNode(nullptr, EmptyIdx, EmptyIdx, 0);
630596f483aSJessica Paquette     Root->IsInTree = true;
631596f483aSJessica Paquette     Active.Node = Root;
632596f483aSJessica Paquette     LeafVector = std::vector<SuffixTreeNode *>(Str.size());
633596f483aSJessica Paquette 
634596f483aSJessica Paquette     // Keep track of the number of suffixes we have to add of the current
635596f483aSJessica Paquette     // prefix.
6364cf187b5SJessica Paquette     unsigned SuffixesToAdd = 0;
637596f483aSJessica Paquette     Active.Node = Root;
638596f483aSJessica Paquette 
639596f483aSJessica Paquette     // Construct the suffix tree iteratively on each prefix of the string.
640596f483aSJessica Paquette     // PfxEndIdx is the end index of the current prefix.
641596f483aSJessica Paquette     // End is one past the last element in the string.
6424cf187b5SJessica Paquette     for (unsigned PfxEndIdx = 0, End = Str.size(); PfxEndIdx < End;
6434cf187b5SJessica Paquette          PfxEndIdx++) {
644596f483aSJessica Paquette       SuffixesToAdd++;
645596f483aSJessica Paquette       LeafEndIdx = PfxEndIdx; // Extend each of the leaves.
646596f483aSJessica Paquette       SuffixesToAdd = extend(PfxEndIdx, SuffixesToAdd);
647596f483aSJessica Paquette     }
648596f483aSJessica Paquette 
649596f483aSJessica Paquette     // Set the suffix indices of each leaf.
650596f483aSJessica Paquette     assert(Root && "Root node can't be nullptr!");
651596f483aSJessica Paquette     setSuffixIndices(*Root, 0);
652596f483aSJessica Paquette   }
653596f483aSJessica Paquette };
654596f483aSJessica Paquette 
6555f8f34e4SAdrian Prantl /// Maps \p MachineInstrs to unsigned integers and stores the mappings.
656596f483aSJessica Paquette struct InstructionMapper {
657596f483aSJessica Paquette 
6585f8f34e4SAdrian Prantl   /// The next available integer to assign to a \p MachineInstr that
659596f483aSJessica Paquette   /// cannot be outlined.
660596f483aSJessica Paquette   ///
661596f483aSJessica Paquette   /// Set to -3 for compatability with \p DenseMapInfo<unsigned>.
662596f483aSJessica Paquette   unsigned IllegalInstrNumber = -3;
663596f483aSJessica Paquette 
6645f8f34e4SAdrian Prantl   /// The next available integer to assign to a \p MachineInstr that can
665596f483aSJessica Paquette   /// be outlined.
666596f483aSJessica Paquette   unsigned LegalInstrNumber = 0;
667596f483aSJessica Paquette 
668596f483aSJessica Paquette   /// Correspondence from \p MachineInstrs to unsigned integers.
669596f483aSJessica Paquette   DenseMap<MachineInstr *, unsigned, MachineInstrExpressionTrait>
670596f483aSJessica Paquette       InstructionIntegerMap;
671596f483aSJessica Paquette 
672596f483aSJessica Paquette   /// Corresponcence from unsigned integers to \p MachineInstrs.
673596f483aSJessica Paquette   /// Inverse of \p InstructionIntegerMap.
674596f483aSJessica Paquette   DenseMap<unsigned, MachineInstr *> IntegerInstructionMap;
675596f483aSJessica Paquette 
676596f483aSJessica Paquette   /// The vector of unsigned integers that the module is mapped to.
677596f483aSJessica Paquette   std::vector<unsigned> UnsignedVec;
678596f483aSJessica Paquette 
6795f8f34e4SAdrian Prantl   /// Stores the location of the instruction associated with the integer
680596f483aSJessica Paquette   /// at index i in \p UnsignedVec for each index i.
681596f483aSJessica Paquette   std::vector<MachineBasicBlock::iterator> InstrList;
682596f483aSJessica Paquette 
6835f8f34e4SAdrian Prantl   /// Maps \p *It to a legal integer.
684596f483aSJessica Paquette   ///
685596f483aSJessica Paquette   /// Updates \p InstrList, \p UnsignedVec, \p InstructionIntegerMap,
686596f483aSJessica Paquette   /// \p IntegerInstructionMap, and \p LegalInstrNumber.
687596f483aSJessica Paquette   ///
688596f483aSJessica Paquette   /// \returns The integer that \p *It was mapped to.
689596f483aSJessica Paquette   unsigned mapToLegalUnsigned(MachineBasicBlock::iterator &It) {
690596f483aSJessica Paquette 
691596f483aSJessica Paquette     // Get the integer for this instruction or give it the current
692596f483aSJessica Paquette     // LegalInstrNumber.
693596f483aSJessica Paquette     InstrList.push_back(It);
694596f483aSJessica Paquette     MachineInstr &MI = *It;
695596f483aSJessica Paquette     bool WasInserted;
696596f483aSJessica Paquette     DenseMap<MachineInstr *, unsigned, MachineInstrExpressionTrait>::iterator
697596f483aSJessica Paquette         ResultIt;
698596f483aSJessica Paquette     std::tie(ResultIt, WasInserted) =
699596f483aSJessica Paquette         InstructionIntegerMap.insert(std::make_pair(&MI, LegalInstrNumber));
700596f483aSJessica Paquette     unsigned MINumber = ResultIt->second;
701596f483aSJessica Paquette 
702596f483aSJessica Paquette     // There was an insertion.
703596f483aSJessica Paquette     if (WasInserted) {
704596f483aSJessica Paquette       LegalInstrNumber++;
705596f483aSJessica Paquette       IntegerInstructionMap.insert(std::make_pair(MINumber, &MI));
706596f483aSJessica Paquette     }
707596f483aSJessica Paquette 
708596f483aSJessica Paquette     UnsignedVec.push_back(MINumber);
709596f483aSJessica Paquette 
710596f483aSJessica Paquette     // Make sure we don't overflow or use any integers reserved by the DenseMap.
711596f483aSJessica Paquette     if (LegalInstrNumber >= IllegalInstrNumber)
712596f483aSJessica Paquette       report_fatal_error("Instruction mapping overflow!");
713596f483aSJessica Paquette 
71478681be2SJessica Paquette     assert(LegalInstrNumber != DenseMapInfo<unsigned>::getEmptyKey() &&
71578681be2SJessica Paquette            "Tried to assign DenseMap tombstone or empty key to instruction.");
71678681be2SJessica Paquette     assert(LegalInstrNumber != DenseMapInfo<unsigned>::getTombstoneKey() &&
71778681be2SJessica Paquette            "Tried to assign DenseMap tombstone or empty key to instruction.");
718596f483aSJessica Paquette 
719596f483aSJessica Paquette     return MINumber;
720596f483aSJessica Paquette   }
721596f483aSJessica Paquette 
722596f483aSJessica Paquette   /// Maps \p *It to an illegal integer.
723596f483aSJessica Paquette   ///
724596f483aSJessica Paquette   /// Updates \p InstrList, \p UnsignedVec, and \p IllegalInstrNumber.
725596f483aSJessica Paquette   ///
726596f483aSJessica Paquette   /// \returns The integer that \p *It was mapped to.
727596f483aSJessica Paquette   unsigned mapToIllegalUnsigned(MachineBasicBlock::iterator &It) {
728596f483aSJessica Paquette     unsigned MINumber = IllegalInstrNumber;
729596f483aSJessica Paquette 
730596f483aSJessica Paquette     InstrList.push_back(It);
731596f483aSJessica Paquette     UnsignedVec.push_back(IllegalInstrNumber);
732596f483aSJessica Paquette     IllegalInstrNumber--;
733596f483aSJessica Paquette 
734596f483aSJessica Paquette     assert(LegalInstrNumber < IllegalInstrNumber &&
735596f483aSJessica Paquette            "Instruction mapping overflow!");
736596f483aSJessica Paquette 
73778681be2SJessica Paquette     assert(IllegalInstrNumber != DenseMapInfo<unsigned>::getEmptyKey() &&
738596f483aSJessica Paquette            "IllegalInstrNumber cannot be DenseMap tombstone or empty key!");
739596f483aSJessica Paquette 
74078681be2SJessica Paquette     assert(IllegalInstrNumber != DenseMapInfo<unsigned>::getTombstoneKey() &&
741596f483aSJessica Paquette            "IllegalInstrNumber cannot be DenseMap tombstone or empty key!");
742596f483aSJessica Paquette 
743596f483aSJessica Paquette     return MINumber;
744596f483aSJessica Paquette   }
745596f483aSJessica Paquette 
7465f8f34e4SAdrian Prantl   /// Transforms a \p MachineBasicBlock into a \p vector of \p unsigneds
747596f483aSJessica Paquette   /// and appends it to \p UnsignedVec and \p InstrList.
748596f483aSJessica Paquette   ///
749596f483aSJessica Paquette   /// Two instructions are assigned the same integer if they are identical.
750596f483aSJessica Paquette   /// If an instruction is deemed unsafe to outline, then it will be assigned an
751596f483aSJessica Paquette   /// unique integer. The resulting mapping is placed into a suffix tree and
752596f483aSJessica Paquette   /// queried for candidates.
753596f483aSJessica Paquette   ///
754596f483aSJessica Paquette   /// \param MBB The \p MachineBasicBlock to be translated into integers.
755596f483aSJessica Paquette   /// \param TRI \p TargetRegisterInfo for the module.
756596f483aSJessica Paquette   /// \param TII \p TargetInstrInfo for the module.
757596f483aSJessica Paquette   void convertToUnsignedVec(MachineBasicBlock &MBB,
758596f483aSJessica Paquette                             const TargetRegisterInfo &TRI,
759596f483aSJessica Paquette                             const TargetInstrInfo &TII) {
7603291e735SJessica Paquette     unsigned Flags = TII.getMachineOutlinerMBBFlags(MBB);
7613291e735SJessica Paquette 
762596f483aSJessica Paquette     for (MachineBasicBlock::iterator It = MBB.begin(), Et = MBB.end(); It != Et;
763596f483aSJessica Paquette          It++) {
764596f483aSJessica Paquette 
765596f483aSJessica Paquette       // Keep track of where this instruction is in the module.
7663291e735SJessica Paquette       switch (TII.getOutliningType(It, Flags)) {
767596f483aSJessica Paquette       case TargetInstrInfo::MachineOutlinerInstrType::Illegal:
768596f483aSJessica Paquette         mapToIllegalUnsigned(It);
769596f483aSJessica Paquette         break;
770596f483aSJessica Paquette 
771596f483aSJessica Paquette       case TargetInstrInfo::MachineOutlinerInstrType::Legal:
772596f483aSJessica Paquette         mapToLegalUnsigned(It);
773596f483aSJessica Paquette         break;
774596f483aSJessica Paquette 
775596f483aSJessica Paquette       case TargetInstrInfo::MachineOutlinerInstrType::Invisible:
776596f483aSJessica Paquette         break;
777596f483aSJessica Paquette       }
778596f483aSJessica Paquette     }
779596f483aSJessica Paquette 
780596f483aSJessica Paquette     // After we're done every insertion, uniquely terminate this part of the
781596f483aSJessica Paquette     // "string". This makes sure we won't match across basic block or function
782596f483aSJessica Paquette     // boundaries since the "end" is encoded uniquely and thus appears in no
783596f483aSJessica Paquette     // repeated substring.
784596f483aSJessica Paquette     InstrList.push_back(MBB.end());
785596f483aSJessica Paquette     UnsignedVec.push_back(IllegalInstrNumber);
786596f483aSJessica Paquette     IllegalInstrNumber--;
787596f483aSJessica Paquette   }
788596f483aSJessica Paquette 
789596f483aSJessica Paquette   InstructionMapper() {
790596f483aSJessica Paquette     // Make sure that the implementation of DenseMapInfo<unsigned> hasn't
791596f483aSJessica Paquette     // changed.
792596f483aSJessica Paquette     assert(DenseMapInfo<unsigned>::getEmptyKey() == (unsigned)-1 &&
793596f483aSJessica Paquette            "DenseMapInfo<unsigned>'s empty key isn't -1!");
794596f483aSJessica Paquette     assert(DenseMapInfo<unsigned>::getTombstoneKey() == (unsigned)-2 &&
795596f483aSJessica Paquette            "DenseMapInfo<unsigned>'s tombstone key isn't -2!");
796596f483aSJessica Paquette   }
797596f483aSJessica Paquette };
798596f483aSJessica Paquette 
7995f8f34e4SAdrian Prantl /// An interprocedural pass which finds repeated sequences of
800596f483aSJessica Paquette /// instructions and replaces them with calls to functions.
801596f483aSJessica Paquette ///
802596f483aSJessica Paquette /// Each instruction is mapped to an unsigned integer and placed in a string.
803596f483aSJessica Paquette /// The resulting mapping is then placed in a \p SuffixTree. The \p SuffixTree
804596f483aSJessica Paquette /// is then repeatedly queried for repeated sequences of instructions. Each
805596f483aSJessica Paquette /// non-overlapping repeated sequence is then placed in its own
806596f483aSJessica Paquette /// \p MachineFunction and each instance is then replaced with a call to that
807596f483aSJessica Paquette /// function.
808596f483aSJessica Paquette struct MachineOutliner : public ModulePass {
809596f483aSJessica Paquette 
810596f483aSJessica Paquette   static char ID;
811596f483aSJessica Paquette 
8125f8f34e4SAdrian Prantl   /// Set to true if the outliner should consider functions with
81313593843SJessica Paquette   /// linkonceodr linkage.
81413593843SJessica Paquette   bool OutlineFromLinkOnceODRs = false;
81513593843SJessica Paquette 
816729e6869SJessica Paquette   // Collection of IR functions created by the outliner.
817729e6869SJessica Paquette   std::vector<Function *> CreatedIRFunctions;
818729e6869SJessica Paquette 
819596f483aSJessica Paquette   StringRef getPassName() const override { return "Machine Outliner"; }
820596f483aSJessica Paquette 
821596f483aSJessica Paquette   void getAnalysisUsage(AnalysisUsage &AU) const override {
822596f483aSJessica Paquette     AU.addRequired<MachineModuleInfo>();
823596f483aSJessica Paquette     AU.addPreserved<MachineModuleInfo>();
824596f483aSJessica Paquette     AU.setPreservesAll();
825596f483aSJessica Paquette     ModulePass::getAnalysisUsage(AU);
826596f483aSJessica Paquette   }
827596f483aSJessica Paquette 
8281eca23bdSJessica Paquette   MachineOutliner() : ModulePass(ID) {
829596f483aSJessica Paquette     initializeMachineOutlinerPass(*PassRegistry::getPassRegistry());
830596f483aSJessica Paquette   }
831596f483aSJessica Paquette 
83278681be2SJessica Paquette   /// Find all repeated substrings that satisfy the outlining cost model.
83378681be2SJessica Paquette   ///
83478681be2SJessica Paquette   /// If a substring appears at least twice, then it must be represented by
83578681be2SJessica Paquette   /// an internal node which appears in at least two suffixes. Each suffix is
83678681be2SJessica Paquette   /// represented by a leaf node. To do this, we visit each internal node in
83778681be2SJessica Paquette   /// the tree, using the leaf children of each internal node. If an internal
83878681be2SJessica Paquette   /// node represents a beneficial substring, then we use each of its leaf
83978681be2SJessica Paquette   /// children to find the locations of its substring.
84078681be2SJessica Paquette   ///
84178681be2SJessica Paquette   /// \param ST A suffix tree to query.
84278681be2SJessica Paquette   /// \param TII TargetInstrInfo for the target.
84378681be2SJessica Paquette   /// \param Mapper Contains outlining mapping information.
84478681be2SJessica Paquette   /// \param[out] CandidateList Filled with candidates representing each
84578681be2SJessica Paquette   /// beneficial substring.
84678681be2SJessica Paquette   /// \param[out] FunctionList Filled with a list of \p OutlinedFunctions each
84778681be2SJessica Paquette   /// type of candidate.
84878681be2SJessica Paquette   ///
84978681be2SJessica Paquette   /// \returns The length of the longest candidate found.
8509df7fde2SJessica Paquette   unsigned
8519df7fde2SJessica Paquette   findCandidates(SuffixTree &ST, const TargetInstrInfo &TII,
85278681be2SJessica Paquette                  InstructionMapper &Mapper,
8539df7fde2SJessica Paquette                  std::vector<std::shared_ptr<Candidate>> &CandidateList,
85478681be2SJessica Paquette                  std::vector<OutlinedFunction> &FunctionList);
85578681be2SJessica Paquette 
8565f8f34e4SAdrian Prantl   /// Replace the sequences of instructions represented by the
857596f483aSJessica Paquette   /// \p Candidates in \p CandidateList with calls to \p MachineFunctions
858596f483aSJessica Paquette   /// described in \p FunctionList.
859596f483aSJessica Paquette   ///
860596f483aSJessica Paquette   /// \param M The module we are outlining from.
861596f483aSJessica Paquette   /// \param CandidateList A list of candidates to be outlined.
862596f483aSJessica Paquette   /// \param FunctionList A list of functions to be inserted into the module.
863596f483aSJessica Paquette   /// \param Mapper Contains the instruction mappings for the module.
8649df7fde2SJessica Paquette   bool outline(Module &M,
8659df7fde2SJessica Paquette                const ArrayRef<std::shared_ptr<Candidate>> &CandidateList,
866596f483aSJessica Paquette                std::vector<OutlinedFunction> &FunctionList,
867596f483aSJessica Paquette                InstructionMapper &Mapper);
868596f483aSJessica Paquette 
869596f483aSJessica Paquette   /// Creates a function for \p OF and inserts it into the module.
870596f483aSJessica Paquette   MachineFunction *createOutlinedFunction(Module &M, const OutlinedFunction &OF,
871596f483aSJessica Paquette                                           InstructionMapper &Mapper);
872596f483aSJessica Paquette 
873596f483aSJessica Paquette   /// Find potential outlining candidates and store them in \p CandidateList.
874596f483aSJessica Paquette   ///
875596f483aSJessica Paquette   /// For each type of potential candidate, also build an \p OutlinedFunction
876596f483aSJessica Paquette   /// struct containing the information to build the function for that
877596f483aSJessica Paquette   /// candidate.
878596f483aSJessica Paquette   ///
879596f483aSJessica Paquette   /// \param[out] CandidateList Filled with outlining candidates for the module.
880596f483aSJessica Paquette   /// \param[out] FunctionList Filled with functions corresponding to each type
881596f483aSJessica Paquette   /// of \p Candidate.
882596f483aSJessica Paquette   /// \param ST The suffix tree for the module.
883596f483aSJessica Paquette   /// \param TII TargetInstrInfo for the module.
884596f483aSJessica Paquette   ///
885596f483aSJessica Paquette   /// \returns The length of the longest candidate found. 0 if there are none.
8869df7fde2SJessica Paquette   unsigned
8879df7fde2SJessica Paquette   buildCandidateList(std::vector<std::shared_ptr<Candidate>> &CandidateList,
888596f483aSJessica Paquette                      std::vector<OutlinedFunction> &FunctionList,
88978681be2SJessica Paquette                      SuffixTree &ST, InstructionMapper &Mapper,
890c984e213SJessica Paquette                      const TargetInstrInfo &TII);
891596f483aSJessica Paquette 
89260d31fc3SJessica Paquette   /// Helper function for pruneOverlaps.
89360d31fc3SJessica Paquette   /// Removes \p C from the candidate list, and updates its \p OutlinedFunction.
89460d31fc3SJessica Paquette   void prune(Candidate &C, std::vector<OutlinedFunction> &FunctionList);
89560d31fc3SJessica Paquette 
8965f8f34e4SAdrian Prantl   /// Remove any overlapping candidates that weren't handled by the
897596f483aSJessica Paquette   /// suffix tree's pruning method.
898596f483aSJessica Paquette   ///
899596f483aSJessica Paquette   /// Pruning from the suffix tree doesn't necessarily remove all overlaps.
900596f483aSJessica Paquette   /// If a short candidate is chosen for outlining, then a longer candidate
901596f483aSJessica Paquette   /// which has that short candidate as a suffix is chosen, the tree's pruning
902596f483aSJessica Paquette   /// method will not find it. Thus, we need to prune before outlining as well.
903596f483aSJessica Paquette   ///
904596f483aSJessica Paquette   /// \param[in,out] CandidateList A list of outlining candidates.
905596f483aSJessica Paquette   /// \param[in,out] FunctionList A list of functions to be outlined.
906809d708bSJessica Paquette   /// \param Mapper Contains instruction mapping info for outlining.
907596f483aSJessica Paquette   /// \param MaxCandidateLen The length of the longest candidate.
908596f483aSJessica Paquette   /// \param TII TargetInstrInfo for the module.
9099df7fde2SJessica Paquette   void pruneOverlaps(std::vector<std::shared_ptr<Candidate>> &CandidateList,
910596f483aSJessica Paquette                      std::vector<OutlinedFunction> &FunctionList,
911809d708bSJessica Paquette                      InstructionMapper &Mapper, unsigned MaxCandidateLen,
912809d708bSJessica Paquette                      const TargetInstrInfo &TII);
913596f483aSJessica Paquette 
914596f483aSJessica Paquette   /// Construct a suffix tree on the instructions in \p M and outline repeated
915596f483aSJessica Paquette   /// strings from that tree.
916596f483aSJessica Paquette   bool runOnModule(Module &M) override;
917596f483aSJessica Paquette };
918596f483aSJessica Paquette 
919596f483aSJessica Paquette } // Anonymous namespace.
920596f483aSJessica Paquette 
921596f483aSJessica Paquette char MachineOutliner::ID = 0;
922596f483aSJessica Paquette 
923596f483aSJessica Paquette namespace llvm {
9241eca23bdSJessica Paquette ModulePass *createMachineOutlinerPass() {
9251eca23bdSJessica Paquette   return new MachineOutliner();
92613593843SJessica Paquette }
92713593843SJessica Paquette 
92878681be2SJessica Paquette } // namespace llvm
92978681be2SJessica Paquette 
93078681be2SJessica Paquette INITIALIZE_PASS(MachineOutliner, DEBUG_TYPE, "Machine Function Outliner", false,
93178681be2SJessica Paquette                 false)
93278681be2SJessica Paquette 
9339df7fde2SJessica Paquette unsigned MachineOutliner::findCandidates(
9349df7fde2SJessica Paquette     SuffixTree &ST, const TargetInstrInfo &TII, InstructionMapper &Mapper,
9359df7fde2SJessica Paquette     std::vector<std::shared_ptr<Candidate>> &CandidateList,
93678681be2SJessica Paquette     std::vector<OutlinedFunction> &FunctionList) {
93778681be2SJessica Paquette   CandidateList.clear();
93878681be2SJessica Paquette   FunctionList.clear();
9394cf187b5SJessica Paquette   unsigned MaxLen = 0;
94078681be2SJessica Paquette 
94178681be2SJessica Paquette   // FIXME: Visit internal nodes instead of leaves.
94278681be2SJessica Paquette   for (SuffixTreeNode *Leaf : ST.LeafVector) {
94378681be2SJessica Paquette     assert(Leaf && "Leaves in LeafVector cannot be null!");
94478681be2SJessica Paquette     if (!Leaf->IsInTree)
94578681be2SJessica Paquette       continue;
94678681be2SJessica Paquette 
94778681be2SJessica Paquette     assert(Leaf->Parent && "All leaves must have parents!");
94878681be2SJessica Paquette     SuffixTreeNode &Parent = *(Leaf->Parent);
94978681be2SJessica Paquette 
95078681be2SJessica Paquette     // If it doesn't appear enough, or we already outlined from it, skip it.
95178681be2SJessica Paquette     if (Parent.OccurrenceCount < 2 || Parent.isRoot() || !Parent.IsInTree)
95278681be2SJessica Paquette       continue;
95378681be2SJessica Paquette 
954809d708bSJessica Paquette     // Figure out if this candidate is beneficial.
9554cf187b5SJessica Paquette     unsigned StringLen = Leaf->ConcatLen - (unsigned)Leaf->size();
95695c1107fSJessica Paquette 
95795c1107fSJessica Paquette     // Too short to be beneficial; skip it.
95895c1107fSJessica Paquette     // FIXME: This isn't necessarily true for, say, X86. If we factor in
95995c1107fSJessica Paquette     // instruction lengths we need more information than this.
96095c1107fSJessica Paquette     if (StringLen < 2)
96195c1107fSJessica Paquette       continue;
96295c1107fSJessica Paquette 
963d87f5449SJessica Paquette     // If this is a beneficial class of candidate, then every one is stored in
964d87f5449SJessica Paquette     // this vector.
965d87f5449SJessica Paquette     std::vector<Candidate> CandidatesForRepeatedSeq;
966d87f5449SJessica Paquette 
9674cf187b5SJessica Paquette     // Describes the start and end point of each candidate. This allows the
9684cf187b5SJessica Paquette     // target to infer some information about each occurrence of each repeated
9694cf187b5SJessica Paquette     // sequence.
970d87f5449SJessica Paquette     // FIXME: CandidatesForRepeatedSeq and this should be combined.
971d87f5449SJessica Paquette     std::vector<
972d87f5449SJessica Paquette         std::pair<MachineBasicBlock::iterator, MachineBasicBlock::iterator>>
9734cf187b5SJessica Paquette         RepeatedSequenceLocs;
974d87f5449SJessica Paquette 
975809d708bSJessica Paquette     // Figure out the call overhead for each instance of the sequence.
976809d708bSJessica Paquette     for (auto &ChildPair : Parent.Children) {
977809d708bSJessica Paquette       SuffixTreeNode *M = ChildPair.second;
97878681be2SJessica Paquette 
979809d708bSJessica Paquette       if (M && M->IsInTree && M->isLeaf()) {
980d87f5449SJessica Paquette         // Never visit this leaf again.
981d87f5449SJessica Paquette         M->IsInTree = false;
98252df8015SJessica Paquette         unsigned StartIdx = M->SuffixIdx;
98352df8015SJessica Paquette         unsigned EndIdx = StartIdx + StringLen - 1;
98452df8015SJessica Paquette 
98552df8015SJessica Paquette         // Trick: Discard some candidates that would be incompatible with the
98652df8015SJessica Paquette         // ones we've already found for this sequence. This will save us some
98752df8015SJessica Paquette         // work in candidate selection.
98852df8015SJessica Paquette         //
98952df8015SJessica Paquette         // If two candidates overlap, then we can't outline them both. This
99052df8015SJessica Paquette         // happens when we have candidates that look like, say
99152df8015SJessica Paquette         //
99252df8015SJessica Paquette         // AA (where each "A" is an instruction).
99352df8015SJessica Paquette         //
99452df8015SJessica Paquette         // We might have some portion of the module that looks like this:
99552df8015SJessica Paquette         // AAAAAA (6 A's)
99652df8015SJessica Paquette         //
99752df8015SJessica Paquette         // In this case, there are 5 different copies of "AA" in this range, but
99852df8015SJessica Paquette         // at most 3 can be outlined. If only outlining 3 of these is going to
99952df8015SJessica Paquette         // be unbeneficial, then we ought to not bother.
100052df8015SJessica Paquette         //
100152df8015SJessica Paquette         // Note that two things DON'T overlap when they look like this:
100252df8015SJessica Paquette         // start1...end1 .... start2...end2
100352df8015SJessica Paquette         // That is, one must either
100452df8015SJessica Paquette         // * End before the other starts
100552df8015SJessica Paquette         // * Start after the other ends
100652df8015SJessica Paquette         if (std::all_of(CandidatesForRepeatedSeq.begin(),
100752df8015SJessica Paquette                         CandidatesForRepeatedSeq.end(),
100852df8015SJessica Paquette                         [&StartIdx, &EndIdx](const Candidate &C) {
100952df8015SJessica Paquette                           return (EndIdx < C.getStartIdx() ||
101052df8015SJessica Paquette                                   StartIdx > C.getEndIdx());
101152df8015SJessica Paquette                         })) {
101252df8015SJessica Paquette           // It doesn't overlap with anything, so we can outline it.
101352df8015SJessica Paquette           // Each sequence is over [StartIt, EndIt].
101452df8015SJessica Paquette           MachineBasicBlock::iterator StartIt = Mapper.InstrList[StartIdx];
101552df8015SJessica Paquette           MachineBasicBlock::iterator EndIt = Mapper.InstrList[EndIdx];
101652df8015SJessica Paquette 
1017a499c3c2SJessica Paquette           // Save the MachineFunction containing the Candidate.
1018a499c3c2SJessica Paquette           MachineFunction *MF = StartIt->getParent()->getParent();
1019a499c3c2SJessica Paquette           assert(MF && "Candidate doesn't have a MF?");
1020a499c3c2SJessica Paquette 
102152df8015SJessica Paquette           // Save the candidate and its location.
102252df8015SJessica Paquette           CandidatesForRepeatedSeq.emplace_back(StartIdx, StringLen,
1023a499c3c2SJessica Paquette                                                 FunctionList.size(), MF);
102452df8015SJessica Paquette           RepeatedSequenceLocs.emplace_back(std::make_pair(StartIt, EndIt));
102552df8015SJessica Paquette         }
1026809d708bSJessica Paquette       }
1027809d708bSJessica Paquette     }
1028809d708bSJessica Paquette 
1029acc15e12SJessica Paquette     // We've found something we might want to outline.
1030acc15e12SJessica Paquette     // Create an OutlinedFunction to store it and check if it'd be beneficial
1031acc15e12SJessica Paquette     // to outline.
10324cf187b5SJessica Paquette     TargetInstrInfo::MachineOutlinerInfo MInfo =
10334cf187b5SJessica Paquette         TII.getOutlininingCandidateInfo(RepeatedSequenceLocs);
1034acc15e12SJessica Paquette     std::vector<unsigned> Seq;
1035acc15e12SJessica Paquette     for (unsigned i = Leaf->SuffixIdx; i < Leaf->SuffixIdx + StringLen; i++)
1036acc15e12SJessica Paquette       Seq.push_back(ST.Str[i]);
103752df8015SJessica Paquette     OutlinedFunction OF(FunctionList.size(), CandidatesForRepeatedSeq.size(),
103852df8015SJessica Paquette                         Seq, MInfo);
1039acc15e12SJessica Paquette     unsigned Benefit = OF.getBenefit();
1040809d708bSJessica Paquette 
1041ffe4abc5SJessica Paquette     // Is it better to outline this candidate than not?
1042acc15e12SJessica Paquette     if (Benefit < 1) {
1043ffe4abc5SJessica Paquette       // Outlining this candidate would take more instructions than not
1044ffe4abc5SJessica Paquette       // outlining.
1045ffe4abc5SJessica Paquette       // Emit a remark explaining why we didn't outline this candidate.
1046ffe4abc5SJessica Paquette       std::pair<MachineBasicBlock::iterator, MachineBasicBlock::iterator> C =
10474cf187b5SJessica Paquette           RepeatedSequenceLocs[0];
10489590658fSVivek Pandya       MachineOptimizationRemarkEmitter MORE(
10499590658fSVivek Pandya           *(C.first->getParent()->getParent()), nullptr);
10509590658fSVivek Pandya       MORE.emit([&]() {
1051ffe4abc5SJessica Paquette         MachineOptimizationRemarkMissed R(DEBUG_TYPE, "NotOutliningCheaper",
1052ffe4abc5SJessica Paquette                                           C.first->getDebugLoc(),
1053ffe4abc5SJessica Paquette                                           C.first->getParent());
1054ffe4abc5SJessica Paquette         R << "Did not outline " << NV("Length", StringLen) << " instructions"
10554cf187b5SJessica Paquette           << " from " << NV("NumOccurrences", RepeatedSequenceLocs.size())
1056ffe4abc5SJessica Paquette           << " locations."
1057ffe4abc5SJessica Paquette           << " Instructions from outlining all occurrences ("
1058acc15e12SJessica Paquette           << NV("OutliningCost", OF.getOutliningCost()) << ")"
1059ffe4abc5SJessica Paquette           << " >= Unoutlined instruction count ("
106085af63d0SJessica Paquette           << NV("NotOutliningCost", StringLen * OF.getOccurrenceCount()) << ")"
1061ffe4abc5SJessica Paquette           << " (Also found at: ";
1062ffe4abc5SJessica Paquette 
1063ffe4abc5SJessica Paquette         // Tell the user the other places the candidate was found.
10644cf187b5SJessica Paquette         for (unsigned i = 1, e = RepeatedSequenceLocs.size(); i < e; i++) {
1065ffe4abc5SJessica Paquette           R << NV((Twine("OtherStartLoc") + Twine(i)).str(),
10664cf187b5SJessica Paquette                   RepeatedSequenceLocs[i].first->getDebugLoc());
1067ffe4abc5SJessica Paquette           if (i != e - 1)
1068ffe4abc5SJessica Paquette             R << ", ";
1069ffe4abc5SJessica Paquette         }
1070ffe4abc5SJessica Paquette 
1071ffe4abc5SJessica Paquette         R << ")";
10729590658fSVivek Pandya         return R;
10739590658fSVivek Pandya       });
1074ffe4abc5SJessica Paquette 
1075ffe4abc5SJessica Paquette       // Move to the next candidate.
107678681be2SJessica Paquette       continue;
1077ffe4abc5SJessica Paquette     }
107878681be2SJessica Paquette 
107978681be2SJessica Paquette     if (StringLen > MaxLen)
108078681be2SJessica Paquette       MaxLen = StringLen;
108178681be2SJessica Paquette 
1082d87f5449SJessica Paquette     // At this point, the candidate class is seen as beneficial. Set their
1083d87f5449SJessica Paquette     // benefit values and save them in the candidate list.
10849df7fde2SJessica Paquette     std::vector<std::shared_ptr<Candidate>> CandidatesForFn;
1085d87f5449SJessica Paquette     for (Candidate &C : CandidatesForRepeatedSeq) {
1086d87f5449SJessica Paquette       C.Benefit = Benefit;
10874cf187b5SJessica Paquette       C.MInfo = MInfo;
10889df7fde2SJessica Paquette       std::shared_ptr<Candidate> Cptr = std::make_shared<Candidate>(C);
10899df7fde2SJessica Paquette       CandidateList.push_back(Cptr);
10909df7fde2SJessica Paquette       CandidatesForFn.push_back(Cptr);
1091596f483aSJessica Paquette     }
1092596f483aSJessica Paquette 
1093acc15e12SJessica Paquette     FunctionList.push_back(OF);
10949df7fde2SJessica Paquette     FunctionList.back().Candidates = CandidatesForFn;
109578681be2SJessica Paquette 
109678681be2SJessica Paquette     // Move to the next function.
109778681be2SJessica Paquette     Parent.IsInTree = false;
109878681be2SJessica Paquette   }
109978681be2SJessica Paquette 
110078681be2SJessica Paquette   return MaxLen;
110178681be2SJessica Paquette }
1102596f483aSJessica Paquette 
110391999169SJessica Paquette // Remove C from the candidate space, and update its OutlinedFunction.
110460d31fc3SJessica Paquette void MachineOutliner::prune(Candidate &C,
110560d31fc3SJessica Paquette                             std::vector<OutlinedFunction> &FunctionList) {
110691999169SJessica Paquette   // Get the OutlinedFunction associated with this Candidate.
110791999169SJessica Paquette   OutlinedFunction &F = FunctionList[C.FunctionIdx];
110891999169SJessica Paquette 
110991999169SJessica Paquette   // Update C's associated function's occurrence count.
111085af63d0SJessica Paquette   F.decrement();
111191999169SJessica Paquette 
111291999169SJessica Paquette   // Remove C from the CandidateList.
111391999169SJessica Paquette   C.InCandidateList = false;
111491999169SJessica Paquette 
1115*d34e60caSNicola Zaghen   LLVM_DEBUG(dbgs() << "- Removed a Candidate \n";
1116*d34e60caSNicola Zaghen              dbgs() << "--- Num fns left for candidate: "
1117*d34e60caSNicola Zaghen                     << F.getOccurrenceCount() << "\n";
1118acc15e12SJessica Paquette              dbgs() << "--- Candidate's functions's benefit: " << F.getBenefit()
111991999169SJessica Paquette                     << "\n";);
112060d31fc3SJessica Paquette }
112160d31fc3SJessica Paquette 
11229df7fde2SJessica Paquette void MachineOutliner::pruneOverlaps(
11239df7fde2SJessica Paquette     std::vector<std::shared_ptr<Candidate>> &CandidateList,
11249df7fde2SJessica Paquette     std::vector<OutlinedFunction> &FunctionList, InstructionMapper &Mapper,
11259df7fde2SJessica Paquette     unsigned MaxCandidateLen, const TargetInstrInfo &TII) {
112660d31fc3SJessica Paquette 
112760d31fc3SJessica Paquette   // Return true if this candidate became unbeneficial for outlining in a
112860d31fc3SJessica Paquette   // previous step.
112960d31fc3SJessica Paquette   auto ShouldSkipCandidate = [&FunctionList, this](Candidate &C) {
113060d31fc3SJessica Paquette 
113160d31fc3SJessica Paquette     // Check if the candidate was removed in a previous step.
113260d31fc3SJessica Paquette     if (!C.InCandidateList)
113360d31fc3SJessica Paquette       return true;
113460d31fc3SJessica Paquette 
113560d31fc3SJessica Paquette     // C must be alive. Check if we should remove it.
113660d31fc3SJessica Paquette     if (FunctionList[C.FunctionIdx].getBenefit() < 1) {
113760d31fc3SJessica Paquette       prune(C, FunctionList);
113860d31fc3SJessica Paquette       return true;
113960d31fc3SJessica Paquette     }
114060d31fc3SJessica Paquette 
114160d31fc3SJessica Paquette     // C is in the list, and F is still beneficial.
114260d31fc3SJessica Paquette     return false;
114391999169SJessica Paquette   };
114491999169SJessica Paquette 
1145acffa28cSJessica Paquette   // TODO: Experiment with interval trees or other interval-checking structures
1146acffa28cSJessica Paquette   // to lower the time complexity of this function.
1147acffa28cSJessica Paquette   // TODO: Can we do better than the simple greedy choice?
1148acffa28cSJessica Paquette   // Check for overlaps in the range.
1149acffa28cSJessica Paquette   // This is O(MaxCandidateLen * CandidateList.size()).
1150596f483aSJessica Paquette   for (auto It = CandidateList.begin(), Et = CandidateList.end(); It != Et;
1151596f483aSJessica Paquette        It++) {
11529df7fde2SJessica Paquette     Candidate &C1 = **It;
1153596f483aSJessica Paquette 
115491999169SJessica Paquette     // If C1 was already pruned, or its function is no longer beneficial for
115591999169SJessica Paquette     // outlining, move to the next candidate.
115691999169SJessica Paquette     if (ShouldSkipCandidate(C1))
1157596f483aSJessica Paquette       continue;
1158596f483aSJessica Paquette 
1159596f483aSJessica Paquette     // The minimum start index of any candidate that could overlap with this
1160596f483aSJessica Paquette     // one.
1161596f483aSJessica Paquette     unsigned FarthestPossibleIdx = 0;
1162596f483aSJessica Paquette 
1163596f483aSJessica Paquette     // Either the index is 0, or it's at most MaxCandidateLen indices away.
11641934fd2cSJessica Paquette     if (C1.getStartIdx() > MaxCandidateLen)
11651934fd2cSJessica Paquette       FarthestPossibleIdx = C1.getStartIdx() - MaxCandidateLen;
1166596f483aSJessica Paquette 
11670909ca13SHiroshi Inoue     // Compare against the candidates in the list that start at most
1168acffa28cSJessica Paquette     // FarthestPossibleIdx indices away from C1. There are at most
1169acffa28cSJessica Paquette     // MaxCandidateLen of these.
1170596f483aSJessica Paquette     for (auto Sit = It + 1; Sit != Et; Sit++) {
11719df7fde2SJessica Paquette       Candidate &C2 = **Sit;
1172596f483aSJessica Paquette 
1173596f483aSJessica Paquette       // Is this candidate too far away to overlap?
11741934fd2cSJessica Paquette       if (C2.getStartIdx() < FarthestPossibleIdx)
1175596f483aSJessica Paquette         break;
1176596f483aSJessica Paquette 
117791999169SJessica Paquette       // If C2 was already pruned, or its function is no longer beneficial for
117891999169SJessica Paquette       // outlining, move to the next candidate.
117991999169SJessica Paquette       if (ShouldSkipCandidate(C2))
1180596f483aSJessica Paquette         continue;
1181596f483aSJessica Paquette 
1182596f483aSJessica Paquette       // Do C1 and C2 overlap?
1183596f483aSJessica Paquette       //
1184596f483aSJessica Paquette       // Not overlapping:
1185596f483aSJessica Paquette       // High indices... [C1End ... C1Start][C2End ... C2Start] ...Low indices
1186596f483aSJessica Paquette       //
1187596f483aSJessica Paquette       // We sorted our candidate list so C2Start <= C1Start. We know that
1188596f483aSJessica Paquette       // C2End > C2Start since each candidate has length >= 2. Therefore, all we
1189596f483aSJessica Paquette       // have to check is C2End < C2Start to see if we overlap.
11901934fd2cSJessica Paquette       if (C2.getEndIdx() < C1.getStartIdx())
1191596f483aSJessica Paquette         continue;
1192596f483aSJessica Paquette 
1193acffa28cSJessica Paquette       // C1 and C2 overlap.
1194acffa28cSJessica Paquette       // We need to choose the better of the two.
1195acffa28cSJessica Paquette       //
1196acffa28cSJessica Paquette       // Approximate this by picking the one which would have saved us the
1197acffa28cSJessica Paquette       // most instructions before any pruning.
119860d31fc3SJessica Paquette 
119960d31fc3SJessica Paquette       // Is C2 a better candidate?
120060d31fc3SJessica Paquette       if (C2.Benefit > C1.Benefit) {
120160d31fc3SJessica Paquette         // Yes, so prune C1. Since C1 is dead, we don't have to compare it
120260d31fc3SJessica Paquette         // against anything anymore, so break.
120360d31fc3SJessica Paquette         prune(C1, FunctionList);
1204acffa28cSJessica Paquette         break;
1205acffa28cSJessica Paquette       }
120660d31fc3SJessica Paquette 
120760d31fc3SJessica Paquette       // Prune C2 and move on to the next candidate.
120860d31fc3SJessica Paquette       prune(C2, FunctionList);
1209596f483aSJessica Paquette     }
1210596f483aSJessica Paquette   }
1211596f483aSJessica Paquette }
1212596f483aSJessica Paquette 
12139df7fde2SJessica Paquette unsigned MachineOutliner::buildCandidateList(
12149df7fde2SJessica Paquette     std::vector<std::shared_ptr<Candidate>> &CandidateList,
12159df7fde2SJessica Paquette     std::vector<OutlinedFunction> &FunctionList, SuffixTree &ST,
12169df7fde2SJessica Paquette     InstructionMapper &Mapper, const TargetInstrInfo &TII) {
1217596f483aSJessica Paquette 
1218596f483aSJessica Paquette   std::vector<unsigned> CandidateSequence; // Current outlining candidate.
12194cf187b5SJessica Paquette   unsigned MaxCandidateLen = 0;            // Length of the longest candidate.
1220596f483aSJessica Paquette 
122178681be2SJessica Paquette   MaxCandidateLen =
122278681be2SJessica Paquette       findCandidates(ST, TII, Mapper, CandidateList, FunctionList);
1223596f483aSJessica Paquette 
1224596f483aSJessica Paquette   // Sort the candidates in decending order. This will simplify the outlining
1225596f483aSJessica Paquette   // process when we have to remove the candidates from the mapping by
1226596f483aSJessica Paquette   // allowing us to cut them out without keeping track of an offset.
12279df7fde2SJessica Paquette   std::stable_sort(
12289df7fde2SJessica Paquette       CandidateList.begin(), CandidateList.end(),
12299df7fde2SJessica Paquette       [](const std::shared_ptr<Candidate> &LHS,
12309df7fde2SJessica Paquette          const std::shared_ptr<Candidate> &RHS) { return *LHS < *RHS; });
1231596f483aSJessica Paquette 
1232596f483aSJessica Paquette   return MaxCandidateLen;
1233596f483aSJessica Paquette }
1234596f483aSJessica Paquette 
1235596f483aSJessica Paquette MachineFunction *
1236596f483aSJessica Paquette MachineOutliner::createOutlinedFunction(Module &M, const OutlinedFunction &OF,
1237596f483aSJessica Paquette                                         InstructionMapper &Mapper) {
1238596f483aSJessica Paquette 
1239596f483aSJessica Paquette   // Create the function name. This should be unique. For now, just hash the
1240596f483aSJessica Paquette   // module name and include it in the function name plus the number of this
1241596f483aSJessica Paquette   // function.
1242596f483aSJessica Paquette   std::ostringstream NameStream;
124378681be2SJessica Paquette   NameStream << "OUTLINED_FUNCTION_" << OF.Name;
1244596f483aSJessica Paquette 
1245596f483aSJessica Paquette   // Create the function using an IR-level function.
1246596f483aSJessica Paquette   LLVMContext &C = M.getContext();
1247596f483aSJessica Paquette   Function *F = dyn_cast<Function>(
124859a2d7b9SSerge Guelton       M.getOrInsertFunction(NameStream.str(), Type::getVoidTy(C)));
1249596f483aSJessica Paquette   assert(F && "Function was null!");
1250596f483aSJessica Paquette 
1251596f483aSJessica Paquette   // NOTE: If this is linkonceodr, then we can take advantage of linker deduping
1252596f483aSJessica Paquette   // which gives us better results when we outline from linkonceodr functions.
1253d506bf8eSJessica Paquette   F->setLinkage(GlobalValue::InternalLinkage);
1254596f483aSJessica Paquette   F->setUnnamedAddr(GlobalValue::UnnamedAddr::Global);
1255596f483aSJessica Paquette 
1256729e6869SJessica Paquette   // Save F so that we can add debug info later if we need to.
1257729e6869SJessica Paquette   CreatedIRFunctions.push_back(F);
1258729e6869SJessica Paquette 
1259596f483aSJessica Paquette   BasicBlock *EntryBB = BasicBlock::Create(C, "entry", F);
1260596f483aSJessica Paquette   IRBuilder<> Builder(EntryBB);
1261596f483aSJessica Paquette   Builder.CreateRetVoid();
1262596f483aSJessica Paquette 
1263596f483aSJessica Paquette   MachineModuleInfo &MMI = getAnalysis<MachineModuleInfo>();
12647bda1958SMatthias Braun   MachineFunction &MF = MMI.getOrCreateMachineFunction(*F);
1265596f483aSJessica Paquette   MachineBasicBlock &MBB = *MF.CreateMachineBasicBlock();
1266596f483aSJessica Paquette   const TargetSubtargetInfo &STI = MF.getSubtarget();
1267596f483aSJessica Paquette   const TargetInstrInfo &TII = *STI.getInstrInfo();
1268596f483aSJessica Paquette 
1269596f483aSJessica Paquette   // Insert the new function into the module.
1270596f483aSJessica Paquette   MF.insert(MF.begin(), &MBB);
1271596f483aSJessica Paquette 
12724cf187b5SJessica Paquette   TII.insertOutlinerPrologue(MBB, MF, OF.MInfo);
1273596f483aSJessica Paquette 
1274596f483aSJessica Paquette   // Copy over the instructions for the function using the integer mappings in
1275596f483aSJessica Paquette   // its sequence.
1276596f483aSJessica Paquette   for (unsigned Str : OF.Sequence) {
1277596f483aSJessica Paquette     MachineInstr *NewMI =
1278596f483aSJessica Paquette         MF.CloneMachineInstr(Mapper.IntegerInstructionMap.find(Str)->second);
1279596f483aSJessica Paquette     NewMI->dropMemRefs();
1280596f483aSJessica Paquette 
1281596f483aSJessica Paquette     // Don't keep debug information for outlined instructions.
1282596f483aSJessica Paquette     NewMI->setDebugLoc(DebugLoc());
1283596f483aSJessica Paquette     MBB.insert(MBB.end(), NewMI);
1284596f483aSJessica Paquette   }
1285596f483aSJessica Paquette 
12864cf187b5SJessica Paquette   TII.insertOutlinerEpilogue(MBB, MF, OF.MInfo);
1287729e6869SJessica Paquette 
1288a499c3c2SJessica Paquette   // If there's a DISubprogram associated with this outlined function, then
1289a499c3c2SJessica Paquette   // emit debug info for the outlined function.
1290a499c3c2SJessica Paquette   if (DISubprogram *SP = OF.getSubprogramOrNull()) {
1291a499c3c2SJessica Paquette     // We have a DISubprogram. Get its DICompileUnit.
1292a499c3c2SJessica Paquette     DICompileUnit *CU = SP->getUnit();
1293a499c3c2SJessica Paquette     DIBuilder DB(M, true, CU);
1294a499c3c2SJessica Paquette     DIFile *Unit = SP->getFile();
1295a499c3c2SJessica Paquette     Mangler Mg;
1296a499c3c2SJessica Paquette 
1297a499c3c2SJessica Paquette     // Walk over each IR function we created in the outliner and create
1298a499c3c2SJessica Paquette     // DISubprograms for each function.
1299a499c3c2SJessica Paquette     for (Function *F : CreatedIRFunctions) {
1300a499c3c2SJessica Paquette       // Get the mangled name of the function for the linkage name.
1301a499c3c2SJessica Paquette       std::string Dummy;
1302a499c3c2SJessica Paquette       llvm::raw_string_ostream MangledNameStream(Dummy);
1303a499c3c2SJessica Paquette       Mg.getNameWithPrefix(MangledNameStream, F, false);
1304a499c3c2SJessica Paquette 
1305a499c3c2SJessica Paquette       DISubprogram *SP = DB.createFunction(
1306a499c3c2SJessica Paquette           Unit /* Context */, F->getName(), StringRef(MangledNameStream.str()),
1307a499c3c2SJessica Paquette           Unit /* File */,
1308a499c3c2SJessica Paquette           0 /* Line 0 is reserved for compiler-generated code. */,
1309a499c3c2SJessica Paquette           DB.createSubroutineType(
1310a499c3c2SJessica Paquette               DB.getOrCreateTypeArray(None)), /* void type */
1311a499c3c2SJessica Paquette           false, true, 0, /* Line 0 is reserved for compiler-generated code. */
1312a499c3c2SJessica Paquette           DINode::DIFlags::FlagArtificial /* Compiler-generated code. */,
1313a499c3c2SJessica Paquette           true /* Outlined code is optimized code by definition. */);
1314a499c3c2SJessica Paquette 
1315a499c3c2SJessica Paquette       // Don't add any new variables to the subprogram.
1316a499c3c2SJessica Paquette       DB.finalizeSubprogram(SP);
1317a499c3c2SJessica Paquette 
1318a499c3c2SJessica Paquette       // Attach subprogram to the function.
1319a499c3c2SJessica Paquette       F->setSubprogram(SP);
1320a499c3c2SJessica Paquette     }
1321a499c3c2SJessica Paquette 
1322a499c3c2SJessica Paquette     // We're done with the DIBuilder.
1323a499c3c2SJessica Paquette     DB.finalize();
1324a499c3c2SJessica Paquette   }
1325a499c3c2SJessica Paquette 
13260b672491SJessica Paquette   // Outlined functions shouldn't preserve liveness.
13270b672491SJessica Paquette   MF.getProperties().reset(MachineFunctionProperties::Property::TracksLiveness);
132882203c41SGeoff Berry   MF.getRegInfo().freezeReservedRegs(MF);
1329596f483aSJessica Paquette   return &MF;
1330596f483aSJessica Paquette }
1331596f483aSJessica Paquette 
13329df7fde2SJessica Paquette bool MachineOutliner::outline(
13339df7fde2SJessica Paquette     Module &M, const ArrayRef<std::shared_ptr<Candidate>> &CandidateList,
13349df7fde2SJessica Paquette     std::vector<OutlinedFunction> &FunctionList, InstructionMapper &Mapper) {
1335596f483aSJessica Paquette 
1336596f483aSJessica Paquette   bool OutlinedSomething = false;
1337596f483aSJessica Paquette   // Replace the candidates with calls to their respective outlined functions.
13389df7fde2SJessica Paquette   for (const std::shared_ptr<Candidate> &Cptr : CandidateList) {
13399df7fde2SJessica Paquette     Candidate &C = *Cptr;
1340596f483aSJessica Paquette     // Was the candidate removed during pruneOverlaps?
1341596f483aSJessica Paquette     if (!C.InCandidateList)
1342596f483aSJessica Paquette       continue;
1343596f483aSJessica Paquette 
1344596f483aSJessica Paquette     // If not, then look at its OutlinedFunction.
1345596f483aSJessica Paquette     OutlinedFunction &OF = FunctionList[C.FunctionIdx];
1346596f483aSJessica Paquette 
1347596f483aSJessica Paquette     // Was its OutlinedFunction made unbeneficial during pruneOverlaps?
134885af63d0SJessica Paquette     if (OF.getBenefit() < 1)
1349596f483aSJessica Paquette       continue;
1350596f483aSJessica Paquette 
1351596f483aSJessica Paquette     // If not, then outline it.
13521934fd2cSJessica Paquette     assert(C.getStartIdx() < Mapper.InstrList.size() &&
1353c9ab4c26SJessica Paquette            "Candidate out of bounds!");
13541934fd2cSJessica Paquette     MachineBasicBlock *MBB = (*Mapper.InstrList[C.getStartIdx()]).getParent();
13551934fd2cSJessica Paquette     MachineBasicBlock::iterator StartIt = Mapper.InstrList[C.getStartIdx()];
13561934fd2cSJessica Paquette     unsigned EndIdx = C.getEndIdx();
1357596f483aSJessica Paquette 
1358596f483aSJessica Paquette     assert(EndIdx < Mapper.InstrList.size() && "Candidate out of bounds!");
1359596f483aSJessica Paquette     MachineBasicBlock::iterator EndIt = Mapper.InstrList[EndIdx];
1360596f483aSJessica Paquette     assert(EndIt != MBB->end() && "EndIt out of bounds!");
1361596f483aSJessica Paquette 
1362596f483aSJessica Paquette     // Does this candidate have a function yet?
1363acffa28cSJessica Paquette     if (!OF.MF) {
1364596f483aSJessica Paquette       OF.MF = createOutlinedFunction(M, OF, Mapper);
13659df7fde2SJessica Paquette       MachineBasicBlock *MBB = &*OF.MF->begin();
13669df7fde2SJessica Paquette 
13679df7fde2SJessica Paquette       // Output a remark telling the user that an outlined function was created,
13689df7fde2SJessica Paquette       // and explaining where it came from.
13699df7fde2SJessica Paquette       MachineOptimizationRemarkEmitter MORE(*OF.MF, nullptr);
13709df7fde2SJessica Paquette       MachineOptimizationRemark R(DEBUG_TYPE, "OutlinedFunction",
13719df7fde2SJessica Paquette                                   MBB->findDebugLoc(MBB->begin()), MBB);
13729df7fde2SJessica Paquette       R << "Saved " << NV("OutliningBenefit", OF.getBenefit())
13739df7fde2SJessica Paquette         << " instructions by "
13749df7fde2SJessica Paquette         << "outlining " << NV("Length", OF.Sequence.size()) << " instructions "
13759df7fde2SJessica Paquette         << "from " << NV("NumOccurrences", OF.getOccurrenceCount())
13769df7fde2SJessica Paquette         << " locations. "
13779df7fde2SJessica Paquette         << "(Found at: ";
13789df7fde2SJessica Paquette 
13799df7fde2SJessica Paquette       // Tell the user the other places the candidate was found.
13809df7fde2SJessica Paquette       for (size_t i = 0, e = OF.Candidates.size(); i < e; i++) {
13819df7fde2SJessica Paquette 
13829df7fde2SJessica Paquette         // Skip over things that were pruned.
13839df7fde2SJessica Paquette         if (!OF.Candidates[i]->InCandidateList)
13849df7fde2SJessica Paquette           continue;
13859df7fde2SJessica Paquette 
13869df7fde2SJessica Paquette         R << NV(
13879df7fde2SJessica Paquette             (Twine("StartLoc") + Twine(i)).str(),
13889df7fde2SJessica Paquette             Mapper.InstrList[OF.Candidates[i]->getStartIdx()]->getDebugLoc());
13899df7fde2SJessica Paquette         if (i != e - 1)
13909df7fde2SJessica Paquette           R << ", ";
13919df7fde2SJessica Paquette       }
13929df7fde2SJessica Paquette 
13939df7fde2SJessica Paquette       R << ")";
13949df7fde2SJessica Paquette 
13959df7fde2SJessica Paquette       MORE.emit(R);
1396acffa28cSJessica Paquette       FunctionsCreated++;
1397acffa28cSJessica Paquette     }
1398596f483aSJessica Paquette 
1399596f483aSJessica Paquette     MachineFunction *MF = OF.MF;
1400596f483aSJessica Paquette     const TargetSubtargetInfo &STI = MF->getSubtarget();
1401596f483aSJessica Paquette     const TargetInstrInfo &TII = *STI.getInstrInfo();
1402596f483aSJessica Paquette 
1403596f483aSJessica Paquette     // Insert a call to the new function and erase the old sequence.
14040b672491SJessica Paquette     auto CallInst = TII.insertOutlinedCall(M, *MBB, StartIt, *MF, C.MInfo);
14051934fd2cSJessica Paquette     StartIt = Mapper.InstrList[C.getStartIdx()];
1406596f483aSJessica Paquette 
14070b672491SJessica Paquette     // If the caller tracks liveness, then we need to make sure that anything
14080b672491SJessica Paquette     // we outline doesn't break liveness assumptions.
14090b672491SJessica Paquette     // The outlined functions themselves currently don't track liveness, but
14100b672491SJessica Paquette     // we should make sure that the ranges we yank things out of aren't
14110b672491SJessica Paquette     // wrong.
14120b672491SJessica Paquette     if (MBB->getParent()->getProperties().hasProperty(
14130b672491SJessica Paquette             MachineFunctionProperties::Property::TracksLiveness)) {
14140b672491SJessica Paquette       // Helper lambda for adding implicit def operands to the call instruction.
14150b672491SJessica Paquette       auto CopyDefs = [&CallInst](MachineInstr &MI) {
14160b672491SJessica Paquette         for (MachineOperand &MOP : MI.operands()) {
14170b672491SJessica Paquette           // Skip over anything that isn't a register.
14180b672491SJessica Paquette           if (!MOP.isReg())
14190b672491SJessica Paquette             continue;
14200b672491SJessica Paquette 
14210b672491SJessica Paquette           // If it's a def, add it to the call instruction.
14220b672491SJessica Paquette           if (MOP.isDef())
14230b672491SJessica Paquette             CallInst->addOperand(
14240b672491SJessica Paquette                 MachineOperand::CreateReg(MOP.getReg(), true, /* isDef = true */
14250b672491SJessica Paquette                                           true /* isImp = true */));
14260b672491SJessica Paquette         }
14270b672491SJessica Paquette       };
14280b672491SJessica Paquette 
14290b672491SJessica Paquette       // Copy over the defs in the outlined range.
14300b672491SJessica Paquette       // First inst in outlined range <-- Anything that's defined in this
14310b672491SJessica Paquette       // ...                           .. range has to be added as an implicit
14320b672491SJessica Paquette       // Last inst in outlined range  <-- def to the call instruction.
14330b672491SJessica Paquette       std::for_each(CallInst, EndIt, CopyDefs);
14340b672491SJessica Paquette     }
14350b672491SJessica Paquette 
14360b672491SJessica Paquette     EndIt++; // Erase needs one past the end index.
14370b672491SJessica Paquette     MBB->erase(StartIt, EndIt);
1438596f483aSJessica Paquette     OutlinedSomething = true;
1439596f483aSJessica Paquette 
1440596f483aSJessica Paquette     // Statistics.
1441596f483aSJessica Paquette     NumOutlined++;
1442596f483aSJessica Paquette   }
1443596f483aSJessica Paquette 
1444*d34e60caSNicola Zaghen   LLVM_DEBUG(dbgs() << "OutlinedSomething = " << OutlinedSomething << "\n";);
1445596f483aSJessica Paquette 
1446596f483aSJessica Paquette   return OutlinedSomething;
1447596f483aSJessica Paquette }
1448596f483aSJessica Paquette 
1449596f483aSJessica Paquette bool MachineOutliner::runOnModule(Module &M) {
1450df82274fSJessica Paquette   // Check if there's anything in the module. If it's empty, then there's
1451df82274fSJessica Paquette   // nothing to outline.
1452596f483aSJessica Paquette   if (M.empty())
1453596f483aSJessica Paquette     return false;
1454596f483aSJessica Paquette 
1455596f483aSJessica Paquette   MachineModuleInfo &MMI = getAnalysis<MachineModuleInfo>();
145678681be2SJessica Paquette   const TargetSubtargetInfo &STI =
145778681be2SJessica Paquette       MMI.getOrCreateMachineFunction(*M.begin()).getSubtarget();
1458596f483aSJessica Paquette   const TargetRegisterInfo *TRI = STI.getRegisterInfo();
1459596f483aSJessica Paquette   const TargetInstrInfo *TII = STI.getInstrInfo();
1460596f483aSJessica Paquette 
1461bccd18b8SJessica Paquette   // Does the target implement the MachineOutliner? If it doesn't, quit here.
1462bccd18b8SJessica Paquette   if (!TII->useMachineOutliner()) {
1463bccd18b8SJessica Paquette     // No. So we're done.
1464*d34e60caSNicola Zaghen     LLVM_DEBUG(
1465*d34e60caSNicola Zaghen         dbgs()
1466bccd18b8SJessica Paquette         << "Skipping pass: Target does not support the MachineOutliner.\n");
1467bccd18b8SJessica Paquette     return false;
1468bccd18b8SJessica Paquette   }
1469bccd18b8SJessica Paquette 
14701eca23bdSJessica Paquette   // If the user specifies that they want to outline from linkonceodrs, set
14711eca23bdSJessica Paquette   // it here.
14721eca23bdSJessica Paquette   OutlineFromLinkOnceODRs = EnableLinkOnceODROutlining;
14731eca23bdSJessica Paquette 
1474596f483aSJessica Paquette   InstructionMapper Mapper;
1475596f483aSJessica Paquette 
1476df82274fSJessica Paquette   // Build instruction mappings for each function in the module. Start by
1477df82274fSJessica Paquette   // iterating over each Function in M.
1478596f483aSJessica Paquette   for (Function &F : M) {
1479596f483aSJessica Paquette 
1480df82274fSJessica Paquette     // If there's nothing in F, then there's no reason to try and outline from
1481df82274fSJessica Paquette     // it.
1482df82274fSJessica Paquette     if (F.empty())
1483596f483aSJessica Paquette       continue;
1484596f483aSJessica Paquette 
1485df82274fSJessica Paquette     // There's something in F. Check if it has a MachineFunction associated with
1486df82274fSJessica Paquette     // it.
1487df82274fSJessica Paquette     MachineFunction *MF = MMI.getMachineFunction(F);
1488596f483aSJessica Paquette 
1489df82274fSJessica Paquette     // If it doesn't, then there's nothing to outline from. Move to the next
1490df82274fSJessica Paquette     // Function.
1491df82274fSJessica Paquette     if (!MF)
1492596f483aSJessica Paquette       continue;
1493596f483aSJessica Paquette 
1494df82274fSJessica Paquette     // We have a MachineFunction. Ask the target if it's suitable for outlining.
1495df82274fSJessica Paquette     // If it isn't, then move on to the next Function in the module.
1496df82274fSJessica Paquette     if (!TII->isFunctionSafeToOutlineFrom(*MF, OutlineFromLinkOnceODRs))
1497df82274fSJessica Paquette       continue;
1498df82274fSJessica Paquette 
1499df82274fSJessica Paquette     // We have a function suitable for outlining. Iterate over every
1500df82274fSJessica Paquette     // MachineBasicBlock in MF and try to map its instructions to a list of
1501df82274fSJessica Paquette     // unsigned integers.
1502df82274fSJessica Paquette     for (MachineBasicBlock &MBB : *MF) {
1503df82274fSJessica Paquette       // If there isn't anything in MBB, then there's no point in outlining from
1504df82274fSJessica Paquette       // it.
1505df82274fSJessica Paquette       if (MBB.empty())
1506df82274fSJessica Paquette         continue;
1507df82274fSJessica Paquette 
1508df82274fSJessica Paquette       // Check if MBB could be the target of an indirect branch. If it is, then
1509df82274fSJessica Paquette       // we don't want to outline from it.
1510df82274fSJessica Paquette       if (MBB.hasAddressTaken())
1511df82274fSJessica Paquette         continue;
1512df82274fSJessica Paquette 
1513df82274fSJessica Paquette       // MBB is suitable for outlining. Map it to a list of unsigneds.
1514596f483aSJessica Paquette       Mapper.convertToUnsignedVec(MBB, *TRI, *TII);
1515596f483aSJessica Paquette     }
1516596f483aSJessica Paquette   }
1517596f483aSJessica Paquette 
1518596f483aSJessica Paquette   // Construct a suffix tree, use it to find candidates, and then outline them.
1519596f483aSJessica Paquette   SuffixTree ST(Mapper.UnsignedVec);
15209df7fde2SJessica Paquette   std::vector<std::shared_ptr<Candidate>> CandidateList;
1521596f483aSJessica Paquette   std::vector<OutlinedFunction> FunctionList;
1522596f483aSJessica Paquette 
1523acffa28cSJessica Paquette   // Find all of the outlining candidates.
1524596f483aSJessica Paquette   unsigned MaxCandidateLen =
1525c984e213SJessica Paquette       buildCandidateList(CandidateList, FunctionList, ST, Mapper, *TII);
1526596f483aSJessica Paquette 
1527acffa28cSJessica Paquette   // Remove candidates that overlap with other candidates.
1528809d708bSJessica Paquette   pruneOverlaps(CandidateList, FunctionList, Mapper, MaxCandidateLen, *TII);
1529acffa28cSJessica Paquette 
1530acffa28cSJessica Paquette   // Outline each of the candidates and return true if something was outlined.
1531729e6869SJessica Paquette   bool OutlinedSomething = outline(M, CandidateList, FunctionList, Mapper);
1532729e6869SJessica Paquette 
1533729e6869SJessica Paquette   return OutlinedSomething;
1534596f483aSJessica Paquette }
1535