1f573f686Sspupyrev //===- CodeLayout.cpp - Implementation of code layout algorithms ----------===//
2f573f686Sspupyrev //
3f573f686Sspupyrev // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions.
4f573f686Sspupyrev // See https://llvm.org/LICENSE.txt for license information.
5f573f686Sspupyrev // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
6f573f686Sspupyrev //
7f573f686Sspupyrev //===----------------------------------------------------------------------===//
8f573f686Sspupyrev //
9f573f686Sspupyrev // ExtTSP - layout of basic blocks with i-cache optimization.
10f573f686Sspupyrev //
11f573f686Sspupyrev // The algorithm tries to find a layout of nodes (basic blocks) of a given CFG
12f573f686Sspupyrev // optimizing jump locality and thus processor I-cache utilization. This is
13f573f686Sspupyrev // achieved via increasing the number of fall-through jumps and co-locating
14f573f686Sspupyrev // frequently executed nodes together. The name follows the underlying
15f573f686Sspupyrev // optimization problem, Extended-TSP, which is a generalization of classical
16f573f686Sspupyrev // (maximum) Traveling Salesmen Problem.
17f573f686Sspupyrev //
18f573f686Sspupyrev // The algorithm is a greedy heuristic that works with chains (ordered lists)
19f573f686Sspupyrev // of basic blocks. Initially all chains are isolated basic blocks. On every
20f573f686Sspupyrev // iteration, we pick a pair of chains whose merging yields the biggest increase
21f573f686Sspupyrev // in the ExtTSP score, which models how i-cache "friendly" a specific chain is.
22f573f686Sspupyrev // A pair of chains giving the maximum gain is merged into a new chain. The
23f573f686Sspupyrev // procedure stops when there is only one chain left, or when merging does not
24f573f686Sspupyrev // increase ExtTSP. In the latter case, the remaining chains are sorted by
25f573f686Sspupyrev // density in the decreasing order.
26f573f686Sspupyrev //
27f573f686Sspupyrev // An important aspect is the way two chains are merged. Unlike earlier
28f573f686Sspupyrev // algorithms (e.g., based on the approach of Pettis-Hansen), two
29f573f686Sspupyrev // chains, X and Y, are first split into three, X1, X2, and Y. Then we
30f573f686Sspupyrev // consider all possible ways of gluing the three chains (e.g., X1YX2, X1X2Y,
31f573f686Sspupyrev // X2X1Y, X2YX1, YX1X2, YX2X1) and choose the one producing the largest score.
32f573f686Sspupyrev // This improves the quality of the final result (the search space is larger)
33f573f686Sspupyrev // while keeping the implementation sufficiently fast.
34f573f686Sspupyrev //
35f573f686Sspupyrev // Reference:
36f573f686Sspupyrev //   * A. Newell and S. Pupyrev, Improved Basic Block Reordering,
37f573f686Sspupyrev //     IEEE Transactions on Computers, 2020
38f573f686Sspupyrev //
39f573f686Sspupyrev //===----------------------------------------------------------------------===//
40f573f686Sspupyrev 
41f573f686Sspupyrev #include "llvm/Transforms/Utils/CodeLayout.h"
42f573f686Sspupyrev #include "llvm/Support/CommandLine.h"
43f573f686Sspupyrev 
44f573f686Sspupyrev using namespace llvm;
45f573f686Sspupyrev #define DEBUG_TYPE "code-layout"
46f573f686Sspupyrev 
47dee058c6SHongtao Yu cl::opt<bool> EnableExtTspBlockPlacement(
48dee058c6SHongtao Yu     "enable-ext-tsp-block-placement", cl::Hidden, cl::init(false),
49dee058c6SHongtao Yu     cl::desc("Enable machine block placement based on the ext-tsp model, "
50dee058c6SHongtao Yu              "optimizing I-cache utilization."));
51dee058c6SHongtao Yu 
52bcdc0477Sspupyrev cl::opt<bool> ApplyExtTspWithoutProfile(
53bcdc0477Sspupyrev     "ext-tsp-apply-without-profile",
54bcdc0477Sspupyrev     cl::desc("Whether to apply ext-tsp placement for instances w/o profile"),
55*36c7d79dSFangrui Song     cl::init(true), cl::Hidden);
56bcdc0477Sspupyrev 
57f573f686Sspupyrev // Algorithm-specific constants. The values are tuned for the best performance
58f573f686Sspupyrev // of large-scale front-end bound binaries.
59f573f686Sspupyrev static cl::opt<double>
60f573f686Sspupyrev     ForwardWeight("ext-tsp-forward-weight", cl::Hidden, cl::init(0.1),
61f573f686Sspupyrev                   cl::desc("The weight of forward jumps for ExtTSP value"));
62f573f686Sspupyrev 
63f573f686Sspupyrev static cl::opt<double>
64f573f686Sspupyrev     BackwardWeight("ext-tsp-backward-weight", cl::Hidden, cl::init(0.1),
65f573f686Sspupyrev                    cl::desc("The weight of backward jumps for ExtTSP value"));
66f573f686Sspupyrev 
67f573f686Sspupyrev static cl::opt<unsigned> ForwardDistance(
68f573f686Sspupyrev     "ext-tsp-forward-distance", cl::Hidden, cl::init(1024),
69f573f686Sspupyrev     cl::desc("The maximum distance (in bytes) of a forward jump for ExtTSP"));
70f573f686Sspupyrev 
71f573f686Sspupyrev static cl::opt<unsigned> BackwardDistance(
72f573f686Sspupyrev     "ext-tsp-backward-distance", cl::Hidden, cl::init(640),
73f573f686Sspupyrev     cl::desc("The maximum distance (in bytes) of a backward jump for ExtTSP"));
74f573f686Sspupyrev 
75bcdc0477Sspupyrev // The maximum size of a chain created by the algorithm. The size is bounded
76bcdc0477Sspupyrev // so that the algorithm can efficiently process extremely large instance.
77bcdc0477Sspupyrev static cl::opt<unsigned>
78bcdc0477Sspupyrev     MaxChainSize("ext-tsp-max-chain-size", cl::Hidden, cl::init(4096),
79bcdc0477Sspupyrev                  cl::desc("The maximum size of a chain to create."));
80bcdc0477Sspupyrev 
81f573f686Sspupyrev // The maximum size of a chain for splitting. Larger values of the threshold
82f573f686Sspupyrev // may yield better quality at the cost of worsen run-time.
83f573f686Sspupyrev static cl::opt<unsigned> ChainSplitThreshold(
84f573f686Sspupyrev     "ext-tsp-chain-split-threshold", cl::Hidden, cl::init(128),
85f573f686Sspupyrev     cl::desc("The maximum size of a chain to apply splitting"));
86f573f686Sspupyrev 
87f573f686Sspupyrev // The option enables splitting (large) chains along in-coming and out-going
88f573f686Sspupyrev // jumps. This typically results in a better quality.
89f573f686Sspupyrev static cl::opt<bool> EnableChainSplitAlongJumps(
90f573f686Sspupyrev     "ext-tsp-enable-chain-split-along-jumps", cl::Hidden, cl::init(true),
91f573f686Sspupyrev     cl::desc("The maximum size of a chain to apply splitting"));
92f573f686Sspupyrev 
93f573f686Sspupyrev namespace {
94f573f686Sspupyrev 
95f573f686Sspupyrev // Epsilon for comparison of doubles.
96f573f686Sspupyrev constexpr double EPS = 1e-8;
97f573f686Sspupyrev 
98f573f686Sspupyrev // Compute the Ext-TSP score for a jump between a given pair of blocks,
99f573f686Sspupyrev // using their sizes, (estimated) addresses and the jump execution count.
extTSPScore(uint64_t SrcAddr,uint64_t SrcSize,uint64_t DstAddr,uint64_t Count)100f573f686Sspupyrev double extTSPScore(uint64_t SrcAddr, uint64_t SrcSize, uint64_t DstAddr,
101f573f686Sspupyrev                    uint64_t Count) {
102f573f686Sspupyrev   // Fallthrough
103f573f686Sspupyrev   if (SrcAddr + SrcSize == DstAddr) {
104f573f686Sspupyrev     // Assume that FallthroughWeight = 1.0 after normalization
105f573f686Sspupyrev     return static_cast<double>(Count);
106f573f686Sspupyrev   }
107f573f686Sspupyrev   // Forward
108f573f686Sspupyrev   if (SrcAddr + SrcSize < DstAddr) {
109f573f686Sspupyrev     const auto Dist = DstAddr - (SrcAddr + SrcSize);
110f573f686Sspupyrev     if (Dist <= ForwardDistance) {
111f573f686Sspupyrev       double Prob = 1.0 - static_cast<double>(Dist) / ForwardDistance;
112f573f686Sspupyrev       return ForwardWeight * Prob * Count;
113f573f686Sspupyrev     }
114f573f686Sspupyrev     return 0;
115f573f686Sspupyrev   }
116f573f686Sspupyrev   // Backward
117f573f686Sspupyrev   const auto Dist = SrcAddr + SrcSize - DstAddr;
118f573f686Sspupyrev   if (Dist <= BackwardDistance) {
119f573f686Sspupyrev     double Prob = 1.0 - static_cast<double>(Dist) / BackwardDistance;
120f573f686Sspupyrev     return BackwardWeight * Prob * Count;
121f573f686Sspupyrev   }
122f573f686Sspupyrev   return 0;
123f573f686Sspupyrev }
124f573f686Sspupyrev 
125f573f686Sspupyrev /// A type of merging two chains, X and Y. The former chain is split into
126f573f686Sspupyrev /// X1 and X2 and then concatenated with Y in the order specified by the type.
127f573f686Sspupyrev enum class MergeTypeTy : int { X_Y, X1_Y_X2, Y_X2_X1, X2_X1_Y };
128f573f686Sspupyrev 
129f573f686Sspupyrev /// The gain of merging two chains, that is, the Ext-TSP score of the merge
130f573f686Sspupyrev /// together with the corresponfiding merge 'type' and 'offset'.
131f573f686Sspupyrev class MergeGainTy {
132f573f686Sspupyrev public:
1333a3cb929SKazu Hirata   explicit MergeGainTy() = default;
MergeGainTy(double Score,size_t MergeOffset,MergeTypeTy MergeType)134f573f686Sspupyrev   explicit MergeGainTy(double Score, size_t MergeOffset, MergeTypeTy MergeType)
135f573f686Sspupyrev       : Score(Score), MergeOffset(MergeOffset), MergeType(MergeType) {}
136f573f686Sspupyrev 
score() const137f573f686Sspupyrev   double score() const { return Score; }
138f573f686Sspupyrev 
mergeOffset() const139f573f686Sspupyrev   size_t mergeOffset() const { return MergeOffset; }
140f573f686Sspupyrev 
mergeType() const141f573f686Sspupyrev   MergeTypeTy mergeType() const { return MergeType; }
142f573f686Sspupyrev 
143f573f686Sspupyrev   // Returns 'true' iff Other is preferred over this.
operator <(const MergeGainTy & Other) const144f573f686Sspupyrev   bool operator<(const MergeGainTy &Other) const {
145f573f686Sspupyrev     return (Other.Score > EPS && Other.Score > Score + EPS);
146f573f686Sspupyrev   }
147f573f686Sspupyrev 
148f573f686Sspupyrev   // Update the current gain if Other is preferred over this.
updateIfLessThan(const MergeGainTy & Other)149f573f686Sspupyrev   void updateIfLessThan(const MergeGainTy &Other) {
150f573f686Sspupyrev     if (*this < Other)
151f573f686Sspupyrev       *this = Other;
152f573f686Sspupyrev   }
153f573f686Sspupyrev 
154f573f686Sspupyrev private:
155f573f686Sspupyrev   double Score{-1.0};
156f573f686Sspupyrev   size_t MergeOffset{0};
157f573f686Sspupyrev   MergeTypeTy MergeType{MergeTypeTy::X_Y};
158f573f686Sspupyrev };
159f573f686Sspupyrev 
160f573f686Sspupyrev class Jump;
161f573f686Sspupyrev class Chain;
162f573f686Sspupyrev class ChainEdge;
163f573f686Sspupyrev 
164f573f686Sspupyrev /// A node in the graph, typically corresponding to a basic block in CFG.
165f573f686Sspupyrev class Block {
166f573f686Sspupyrev public:
167f573f686Sspupyrev   Block(const Block &) = delete;
168f573f686Sspupyrev   Block(Block &&) = default;
169f573f686Sspupyrev   Block &operator=(const Block &) = delete;
170f573f686Sspupyrev   Block &operator=(Block &&) = default;
171f573f686Sspupyrev 
172f573f686Sspupyrev   // The original index of the block in CFG.
173f573f686Sspupyrev   size_t Index{0};
174f573f686Sspupyrev   // The index of the block in the current chain.
175f573f686Sspupyrev   size_t CurIndex{0};
176f573f686Sspupyrev   // Size of the block in the binary.
177f573f686Sspupyrev   uint64_t Size{0};
178f573f686Sspupyrev   // Execution count of the block in the profile data.
179f573f686Sspupyrev   uint64_t ExecutionCount{0};
180f573f686Sspupyrev   // Current chain of the node.
181f573f686Sspupyrev   Chain *CurChain{nullptr};
182f573f686Sspupyrev   // An offset of the block in the current chain.
183f573f686Sspupyrev   mutable uint64_t EstimatedAddr{0};
184f573f686Sspupyrev   // Forced successor of the block in CFG.
185f573f686Sspupyrev   Block *ForcedSucc{nullptr};
186f573f686Sspupyrev   // Forced predecessor of the block in CFG.
187f573f686Sspupyrev   Block *ForcedPred{nullptr};
188f573f686Sspupyrev   // Outgoing jumps from the block.
189f573f686Sspupyrev   std::vector<Jump *> OutJumps;
190f573f686Sspupyrev   // Incoming jumps to the block.
191f573f686Sspupyrev   std::vector<Jump *> InJumps;
192f573f686Sspupyrev 
193f573f686Sspupyrev public:
Block(size_t Index,uint64_t Size_,uint64_t EC)194f573f686Sspupyrev   explicit Block(size_t Index, uint64_t Size_, uint64_t EC)
195f573f686Sspupyrev       : Index(Index), Size(Size_), ExecutionCount(EC) {}
isEntry() const196f573f686Sspupyrev   bool isEntry() const { return Index == 0; }
197f573f686Sspupyrev };
198f573f686Sspupyrev 
199f573f686Sspupyrev /// An arc in the graph, typically corresponding to a jump between two blocks.
200f573f686Sspupyrev class Jump {
201f573f686Sspupyrev public:
202f573f686Sspupyrev   Jump(const Jump &) = delete;
203f573f686Sspupyrev   Jump(Jump &&) = default;
204f573f686Sspupyrev   Jump &operator=(const Jump &) = delete;
205f573f686Sspupyrev   Jump &operator=(Jump &&) = default;
206f573f686Sspupyrev 
207f573f686Sspupyrev   // Source block of the jump.
208f573f686Sspupyrev   Block *Source;
209f573f686Sspupyrev   // Target block of the jump.
210f573f686Sspupyrev   Block *Target;
211f573f686Sspupyrev   // Execution count of the arc in the profile data.
212f573f686Sspupyrev   uint64_t ExecutionCount{0};
213f573f686Sspupyrev 
214f573f686Sspupyrev public:
Jump(Block * Source,Block * Target,uint64_t ExecutionCount)215f573f686Sspupyrev   explicit Jump(Block *Source, Block *Target, uint64_t ExecutionCount)
216f573f686Sspupyrev       : Source(Source), Target(Target), ExecutionCount(ExecutionCount) {}
217f573f686Sspupyrev };
218f573f686Sspupyrev 
219f573f686Sspupyrev /// A chain (ordered sequence) of blocks.
220f573f686Sspupyrev class Chain {
221f573f686Sspupyrev public:
222f573f686Sspupyrev   Chain(const Chain &) = delete;
223f573f686Sspupyrev   Chain(Chain &&) = default;
224f573f686Sspupyrev   Chain &operator=(const Chain &) = delete;
225f573f686Sspupyrev   Chain &operator=(Chain &&) = default;
226f573f686Sspupyrev 
Chain(uint64_t Id,Block * Block)227f573f686Sspupyrev   explicit Chain(uint64_t Id, Block *Block)
228f573f686Sspupyrev       : Id(Id), Score(0), Blocks(1, Block) {}
229f573f686Sspupyrev 
id() const230f573f686Sspupyrev   uint64_t id() const { return Id; }
231f573f686Sspupyrev 
isEntry() const232f573f686Sspupyrev   bool isEntry() const { return Blocks[0]->Index == 0; }
233f573f686Sspupyrev 
score() const234f573f686Sspupyrev   double score() const { return Score; }
235f573f686Sspupyrev 
setScore(double NewScore)236f573f686Sspupyrev   void setScore(double NewScore) { Score = NewScore; }
237f573f686Sspupyrev 
blocks() const238f573f686Sspupyrev   const std::vector<Block *> &blocks() const { return Blocks; }
239f573f686Sspupyrev 
numBlocks() const240bcdc0477Sspupyrev   size_t numBlocks() const { return Blocks.size(); }
241bcdc0477Sspupyrev 
edges() const242f573f686Sspupyrev   const std::vector<std::pair<Chain *, ChainEdge *>> &edges() const {
243f573f686Sspupyrev     return Edges;
244f573f686Sspupyrev   }
245f573f686Sspupyrev 
getEdge(Chain * Other) const246f573f686Sspupyrev   ChainEdge *getEdge(Chain *Other) const {
247f573f686Sspupyrev     for (auto It : Edges) {
248f573f686Sspupyrev       if (It.first == Other)
249f573f686Sspupyrev         return It.second;
250f573f686Sspupyrev     }
251f573f686Sspupyrev     return nullptr;
252f573f686Sspupyrev   }
253f573f686Sspupyrev 
removeEdge(Chain * Other)254f573f686Sspupyrev   void removeEdge(Chain *Other) {
255f573f686Sspupyrev     auto It = Edges.begin();
256f573f686Sspupyrev     while (It != Edges.end()) {
257f573f686Sspupyrev       if (It->first == Other) {
258f573f686Sspupyrev         Edges.erase(It);
259f573f686Sspupyrev         return;
260f573f686Sspupyrev       }
261f573f686Sspupyrev       It++;
262f573f686Sspupyrev     }
263f573f686Sspupyrev   }
264f573f686Sspupyrev 
addEdge(Chain * Other,ChainEdge * Edge)265f573f686Sspupyrev   void addEdge(Chain *Other, ChainEdge *Edge) {
266f573f686Sspupyrev     Edges.push_back(std::make_pair(Other, Edge));
267f573f686Sspupyrev   }
268f573f686Sspupyrev 
merge(Chain * Other,const std::vector<Block * > & MergedBlocks)269f573f686Sspupyrev   void merge(Chain *Other, const std::vector<Block *> &MergedBlocks) {
270f573f686Sspupyrev     Blocks = MergedBlocks;
271f573f686Sspupyrev     // Update the block's chains
272f573f686Sspupyrev     for (size_t Idx = 0; Idx < Blocks.size(); Idx++) {
273f573f686Sspupyrev       Blocks[Idx]->CurChain = this;
274f573f686Sspupyrev       Blocks[Idx]->CurIndex = Idx;
275f573f686Sspupyrev     }
276f573f686Sspupyrev   }
277f573f686Sspupyrev 
278f573f686Sspupyrev   void mergeEdges(Chain *Other);
279f573f686Sspupyrev 
clear()280f573f686Sspupyrev   void clear() {
281f573f686Sspupyrev     Blocks.clear();
282f573f686Sspupyrev     Blocks.shrink_to_fit();
283f573f686Sspupyrev     Edges.clear();
284f573f686Sspupyrev     Edges.shrink_to_fit();
285f573f686Sspupyrev   }
286f573f686Sspupyrev 
287f573f686Sspupyrev private:
288f573f686Sspupyrev   // Unique chain identifier.
289f573f686Sspupyrev   uint64_t Id;
290f573f686Sspupyrev   // Cached ext-tsp score for the chain.
291f573f686Sspupyrev   double Score;
292f573f686Sspupyrev   // Blocks of the chain.
293f573f686Sspupyrev   std::vector<Block *> Blocks;
294f573f686Sspupyrev   // Adjacent chains and corresponding edges (lists of jumps).
295f573f686Sspupyrev   std::vector<std::pair<Chain *, ChainEdge *>> Edges;
296f573f686Sspupyrev };
297f573f686Sspupyrev 
298f573f686Sspupyrev /// An edge in CFG representing jumps between two chains.
299f573f686Sspupyrev /// When blocks are merged into chains, the edges are combined too so that
300f573f686Sspupyrev /// there is always at most one edge between a pair of chains
301f573f686Sspupyrev class ChainEdge {
302f573f686Sspupyrev public:
303f573f686Sspupyrev   ChainEdge(const ChainEdge &) = delete;
304f573f686Sspupyrev   ChainEdge(ChainEdge &&) = default;
305f573f686Sspupyrev   ChainEdge &operator=(const ChainEdge &) = delete;
306f573f686Sspupyrev   ChainEdge &operator=(ChainEdge &&) = default;
307f573f686Sspupyrev 
ChainEdge(Jump * Jump)308f573f686Sspupyrev   explicit ChainEdge(Jump *Jump)
309f573f686Sspupyrev       : SrcChain(Jump->Source->CurChain), DstChain(Jump->Target->CurChain),
310f573f686Sspupyrev         Jumps(1, Jump) {}
311f573f686Sspupyrev 
jumps() const312f573f686Sspupyrev   const std::vector<Jump *> &jumps() const { return Jumps; }
313f573f686Sspupyrev 
changeEndpoint(Chain * From,Chain * To)314f573f686Sspupyrev   void changeEndpoint(Chain *From, Chain *To) {
315f573f686Sspupyrev     if (From == SrcChain)
316f573f686Sspupyrev       SrcChain = To;
317f573f686Sspupyrev     if (From == DstChain)
318f573f686Sspupyrev       DstChain = To;
319f573f686Sspupyrev   }
320f573f686Sspupyrev 
appendJump(Jump * Jump)321f573f686Sspupyrev   void appendJump(Jump *Jump) { Jumps.push_back(Jump); }
322f573f686Sspupyrev 
moveJumps(ChainEdge * Other)323f573f686Sspupyrev   void moveJumps(ChainEdge *Other) {
324f573f686Sspupyrev     Jumps.insert(Jumps.end(), Other->Jumps.begin(), Other->Jumps.end());
325f573f686Sspupyrev     Other->Jumps.clear();
326f573f686Sspupyrev     Other->Jumps.shrink_to_fit();
327f573f686Sspupyrev   }
328f573f686Sspupyrev 
hasCachedMergeGain(Chain * Src,Chain * Dst) const329f573f686Sspupyrev   bool hasCachedMergeGain(Chain *Src, Chain *Dst) const {
330f573f686Sspupyrev     return Src == SrcChain ? CacheValidForward : CacheValidBackward;
331f573f686Sspupyrev   }
332f573f686Sspupyrev 
getCachedMergeGain(Chain * Src,Chain * Dst) const333f573f686Sspupyrev   MergeGainTy getCachedMergeGain(Chain *Src, Chain *Dst) const {
334f573f686Sspupyrev     return Src == SrcChain ? CachedGainForward : CachedGainBackward;
335f573f686Sspupyrev   }
336f573f686Sspupyrev 
setCachedMergeGain(Chain * Src,Chain * Dst,MergeGainTy MergeGain)337f573f686Sspupyrev   void setCachedMergeGain(Chain *Src, Chain *Dst, MergeGainTy MergeGain) {
338f573f686Sspupyrev     if (Src == SrcChain) {
339f573f686Sspupyrev       CachedGainForward = MergeGain;
340f573f686Sspupyrev       CacheValidForward = true;
341f573f686Sspupyrev     } else {
342f573f686Sspupyrev       CachedGainBackward = MergeGain;
343f573f686Sspupyrev       CacheValidBackward = true;
344f573f686Sspupyrev     }
345f573f686Sspupyrev   }
346f573f686Sspupyrev 
invalidateCache()347f573f686Sspupyrev   void invalidateCache() {
348f573f686Sspupyrev     CacheValidForward = false;
349f573f686Sspupyrev     CacheValidBackward = false;
350f573f686Sspupyrev   }
351f573f686Sspupyrev 
352f573f686Sspupyrev private:
353f573f686Sspupyrev   // Source chain.
354f573f686Sspupyrev   Chain *SrcChain{nullptr};
355f573f686Sspupyrev   // Destination chain.
356f573f686Sspupyrev   Chain *DstChain{nullptr};
357f573f686Sspupyrev   // Original jumps in the binary with correspinding execution counts.
358f573f686Sspupyrev   std::vector<Jump *> Jumps;
359f573f686Sspupyrev   // Cached ext-tsp value for merging the pair of chains.
360f573f686Sspupyrev   // Since the gain of merging (Src, Dst) and (Dst, Src) might be different,
361f573f686Sspupyrev   // we store both values here.
362f573f686Sspupyrev   MergeGainTy CachedGainForward;
363f573f686Sspupyrev   MergeGainTy CachedGainBackward;
364f573f686Sspupyrev   // Whether the cached value must be recomputed.
365f573f686Sspupyrev   bool CacheValidForward{false};
366f573f686Sspupyrev   bool CacheValidBackward{false};
367f573f686Sspupyrev };
368f573f686Sspupyrev 
mergeEdges(Chain * Other)369f573f686Sspupyrev void Chain::mergeEdges(Chain *Other) {
370f573f686Sspupyrev   assert(this != Other && "cannot merge a chain with itself");
371f573f686Sspupyrev 
372f573f686Sspupyrev   // Update edges adjacent to chain Other
373f573f686Sspupyrev   for (auto EdgeIt : Other->Edges) {
374f573f686Sspupyrev     const auto DstChain = EdgeIt.first;
375f573f686Sspupyrev     const auto DstEdge = EdgeIt.second;
376f573f686Sspupyrev     const auto TargetChain = DstChain == Other ? this : DstChain;
377f573f686Sspupyrev     auto CurEdge = getEdge(TargetChain);
378f573f686Sspupyrev     if (CurEdge == nullptr) {
379f573f686Sspupyrev       DstEdge->changeEndpoint(Other, this);
380f573f686Sspupyrev       this->addEdge(TargetChain, DstEdge);
381f573f686Sspupyrev       if (DstChain != this && DstChain != Other) {
382f573f686Sspupyrev         DstChain->addEdge(this, DstEdge);
383f573f686Sspupyrev       }
384f573f686Sspupyrev     } else {
385f573f686Sspupyrev       CurEdge->moveJumps(DstEdge);
386f573f686Sspupyrev     }
387f573f686Sspupyrev     // Cleanup leftover edge
388f573f686Sspupyrev     if (DstChain != Other) {
389f573f686Sspupyrev       DstChain->removeEdge(Other);
390f573f686Sspupyrev     }
391f573f686Sspupyrev   }
392f573f686Sspupyrev }
393f573f686Sspupyrev 
394f573f686Sspupyrev using BlockIter = std::vector<Block *>::const_iterator;
395f573f686Sspupyrev 
396f573f686Sspupyrev /// A wrapper around three chains of blocks; it is used to avoid extra
397f573f686Sspupyrev /// instantiation of the vectors.
398f573f686Sspupyrev class MergedChain {
399f573f686Sspupyrev public:
MergedChain(BlockIter Begin1,BlockIter End1,BlockIter Begin2=BlockIter (),BlockIter End2=BlockIter (),BlockIter Begin3=BlockIter (),BlockIter End3=BlockIter ())400f573f686Sspupyrev   MergedChain(BlockIter Begin1, BlockIter End1, BlockIter Begin2 = BlockIter(),
401f573f686Sspupyrev               BlockIter End2 = BlockIter(), BlockIter Begin3 = BlockIter(),
402f573f686Sspupyrev               BlockIter End3 = BlockIter())
403f573f686Sspupyrev       : Begin1(Begin1), End1(End1), Begin2(Begin2), End2(End2), Begin3(Begin3),
404f573f686Sspupyrev         End3(End3) {}
405f573f686Sspupyrev 
forEach(const F & Func) const406f573f686Sspupyrev   template <typename F> void forEach(const F &Func) const {
407f573f686Sspupyrev     for (auto It = Begin1; It != End1; It++)
408f573f686Sspupyrev       Func(*It);
409f573f686Sspupyrev     for (auto It = Begin2; It != End2; It++)
410f573f686Sspupyrev       Func(*It);
411f573f686Sspupyrev     for (auto It = Begin3; It != End3; It++)
412f573f686Sspupyrev       Func(*It);
413f573f686Sspupyrev   }
414f573f686Sspupyrev 
getBlocks() const415f573f686Sspupyrev   std::vector<Block *> getBlocks() const {
416f573f686Sspupyrev     std::vector<Block *> Result;
417f573f686Sspupyrev     Result.reserve(std::distance(Begin1, End1) + std::distance(Begin2, End2) +
418f573f686Sspupyrev                    std::distance(Begin3, End3));
419f573f686Sspupyrev     Result.insert(Result.end(), Begin1, End1);
420f573f686Sspupyrev     Result.insert(Result.end(), Begin2, End2);
421f573f686Sspupyrev     Result.insert(Result.end(), Begin3, End3);
422f573f686Sspupyrev     return Result;
423f573f686Sspupyrev   }
424f573f686Sspupyrev 
getFirstBlock() const425f573f686Sspupyrev   const Block *getFirstBlock() const { return *Begin1; }
426f573f686Sspupyrev 
427f573f686Sspupyrev private:
428f573f686Sspupyrev   BlockIter Begin1;
429f573f686Sspupyrev   BlockIter End1;
430f573f686Sspupyrev   BlockIter Begin2;
431f573f686Sspupyrev   BlockIter End2;
432f573f686Sspupyrev   BlockIter Begin3;
433f573f686Sspupyrev   BlockIter End3;
434f573f686Sspupyrev };
435f573f686Sspupyrev 
436f573f686Sspupyrev /// The implementation of the ExtTSP algorithm.
437f573f686Sspupyrev class ExtTSPImpl {
438f573f686Sspupyrev   using EdgeT = std::pair<uint64_t, uint64_t>;
439f573f686Sspupyrev   using EdgeCountMap = DenseMap<EdgeT, uint64_t>;
440f573f686Sspupyrev 
441f573f686Sspupyrev public:
ExtTSPImpl(size_t NumNodes,const std::vector<uint64_t> & NodeSizes,const std::vector<uint64_t> & NodeCounts,const EdgeCountMap & EdgeCounts)442f573f686Sspupyrev   ExtTSPImpl(size_t NumNodes, const std::vector<uint64_t> &NodeSizes,
443f573f686Sspupyrev              const std::vector<uint64_t> &NodeCounts,
444f573f686Sspupyrev              const EdgeCountMap &EdgeCounts)
445f573f686Sspupyrev       : NumNodes(NumNodes) {
446f573f686Sspupyrev     initialize(NodeSizes, NodeCounts, EdgeCounts);
447f573f686Sspupyrev   }
448f573f686Sspupyrev 
449f573f686Sspupyrev   /// Run the algorithm and return an optimized ordering of blocks.
run(std::vector<uint64_t> & Result)450f573f686Sspupyrev   void run(std::vector<uint64_t> &Result) {
451f573f686Sspupyrev     // Pass 1: Merge blocks with their mutually forced successors
452f573f686Sspupyrev     mergeForcedPairs();
453f573f686Sspupyrev 
454f573f686Sspupyrev     // Pass 2: Merge pairs of chains while improving the ExtTSP objective
455f573f686Sspupyrev     mergeChainPairs();
456f573f686Sspupyrev 
457f573f686Sspupyrev     // Pass 3: Merge cold blocks to reduce code size
458f573f686Sspupyrev     mergeColdChains();
459f573f686Sspupyrev 
460f573f686Sspupyrev     // Collect blocks from all chains
461f573f686Sspupyrev     concatChains(Result);
462f573f686Sspupyrev   }
463f573f686Sspupyrev 
464f573f686Sspupyrev private:
465f573f686Sspupyrev   /// Initialize the algorithm's data structures.
initialize(const std::vector<uint64_t> & NodeSizes,const std::vector<uint64_t> & NodeCounts,const EdgeCountMap & EdgeCounts)466f573f686Sspupyrev   void initialize(const std::vector<uint64_t> &NodeSizes,
467f573f686Sspupyrev                   const std::vector<uint64_t> &NodeCounts,
468f573f686Sspupyrev                   const EdgeCountMap &EdgeCounts) {
469f573f686Sspupyrev     // Initialize blocks
470f573f686Sspupyrev     AllBlocks.reserve(NumNodes);
471f573f686Sspupyrev     for (uint64_t Node = 0; Node < NumNodes; Node++) {
472f573f686Sspupyrev       uint64_t Size = std::max<uint64_t>(NodeSizes[Node], 1ULL);
473f573f686Sspupyrev       uint64_t ExecutionCount = NodeCounts[Node];
474f573f686Sspupyrev       // The execution count of the entry block is set to at least 1
475f573f686Sspupyrev       if (Node == 0 && ExecutionCount == 0)
476f573f686Sspupyrev         ExecutionCount = 1;
477f573f686Sspupyrev       AllBlocks.emplace_back(Node, Size, ExecutionCount);
478f573f686Sspupyrev     }
479f573f686Sspupyrev 
480f573f686Sspupyrev     // Initialize jumps between blocks
481f573f686Sspupyrev     SuccNodes = std::vector<std::vector<uint64_t>>(NumNodes);
482f573f686Sspupyrev     PredNodes = std::vector<std::vector<uint64_t>>(NumNodes);
483f573f686Sspupyrev     AllJumps.reserve(EdgeCounts.size());
484f573f686Sspupyrev     for (auto It : EdgeCounts) {
485f573f686Sspupyrev       auto Pred = It.first.first;
486f573f686Sspupyrev       auto Succ = It.first.second;
487f573f686Sspupyrev       // Ignore self-edges
488f573f686Sspupyrev       if (Pred == Succ)
489f573f686Sspupyrev         continue;
490f573f686Sspupyrev 
491f573f686Sspupyrev       SuccNodes[Pred].push_back(Succ);
492f573f686Sspupyrev       PredNodes[Succ].push_back(Pred);
493f573f686Sspupyrev       auto ExecutionCount = It.second;
494f573f686Sspupyrev       if (ExecutionCount > 0) {
495f573f686Sspupyrev         auto &Block = AllBlocks[Pred];
496f573f686Sspupyrev         auto &SuccBlock = AllBlocks[Succ];
497f573f686Sspupyrev         AllJumps.emplace_back(&Block, &SuccBlock, ExecutionCount);
498f573f686Sspupyrev         SuccBlock.InJumps.push_back(&AllJumps.back());
499f573f686Sspupyrev         Block.OutJumps.push_back(&AllJumps.back());
500f573f686Sspupyrev       }
501f573f686Sspupyrev     }
502f573f686Sspupyrev 
503f573f686Sspupyrev     // Initialize chains
504f573f686Sspupyrev     AllChains.reserve(NumNodes);
505f573f686Sspupyrev     HotChains.reserve(NumNodes);
506f573f686Sspupyrev     for (auto &Block : AllBlocks) {
507f573f686Sspupyrev       AllChains.emplace_back(Block.Index, &Block);
508f573f686Sspupyrev       Block.CurChain = &AllChains.back();
509f573f686Sspupyrev       if (Block.ExecutionCount > 0) {
510f573f686Sspupyrev         HotChains.push_back(&AllChains.back());
511f573f686Sspupyrev       }
512f573f686Sspupyrev     }
513f573f686Sspupyrev 
514f573f686Sspupyrev     // Initialize chain edges
515f573f686Sspupyrev     AllEdges.reserve(AllJumps.size());
516f573f686Sspupyrev     for (auto &Block : AllBlocks) {
517f573f686Sspupyrev       for (auto &Jump : Block.OutJumps) {
518bcdc0477Sspupyrev         auto SuccBlock = Jump->Target;
519f573f686Sspupyrev         auto CurEdge = Block.CurChain->getEdge(SuccBlock->CurChain);
520f573f686Sspupyrev         // this edge is already present in the graph
521f573f686Sspupyrev         if (CurEdge != nullptr) {
522f573f686Sspupyrev           assert(SuccBlock->CurChain->getEdge(Block.CurChain) != nullptr);
523f573f686Sspupyrev           CurEdge->appendJump(Jump);
524f573f686Sspupyrev           continue;
525f573f686Sspupyrev         }
526f573f686Sspupyrev         // this is a new edge
527f573f686Sspupyrev         AllEdges.emplace_back(Jump);
528f573f686Sspupyrev         Block.CurChain->addEdge(SuccBlock->CurChain, &AllEdges.back());
529f573f686Sspupyrev         SuccBlock->CurChain->addEdge(Block.CurChain, &AllEdges.back());
530f573f686Sspupyrev       }
531f573f686Sspupyrev     }
532f573f686Sspupyrev   }
533f573f686Sspupyrev 
534f573f686Sspupyrev   /// For a pair of blocks, A and B, block B is the forced successor of A,
535f573f686Sspupyrev   /// if (i) all jumps (based on profile) from A goes to B and (ii) all jumps
536f573f686Sspupyrev   /// to B are from A. Such blocks should be adjacent in the optimal ordering;
537f573f686Sspupyrev   /// the method finds and merges such pairs of blocks.
mergeForcedPairs()538f573f686Sspupyrev   void mergeForcedPairs() {
539f573f686Sspupyrev     // Find fallthroughs based on edge weights
540f573f686Sspupyrev     for (auto &Block : AllBlocks) {
541f573f686Sspupyrev       if (SuccNodes[Block.Index].size() == 1 &&
542f573f686Sspupyrev           PredNodes[SuccNodes[Block.Index][0]].size() == 1 &&
543f573f686Sspupyrev           SuccNodes[Block.Index][0] != 0) {
544f573f686Sspupyrev         size_t SuccIndex = SuccNodes[Block.Index][0];
545f573f686Sspupyrev         Block.ForcedSucc = &AllBlocks[SuccIndex];
546f573f686Sspupyrev         AllBlocks[SuccIndex].ForcedPred = &Block;
547f573f686Sspupyrev       }
548f573f686Sspupyrev     }
549f573f686Sspupyrev 
550f573f686Sspupyrev     // There might be 'cycles' in the forced dependencies, since profile
551f573f686Sspupyrev     // data isn't 100% accurate. Typically this is observed in loops, when the
552f573f686Sspupyrev     // loop edges are the hottest successors for the basic blocks of the loop.
553f573f686Sspupyrev     // Break the cycles by choosing the block with the smallest index as the
554f573f686Sspupyrev     // head. This helps to keep the original order of the loops, which likely
555f573f686Sspupyrev     // have already been rotated in the optimized manner.
556f573f686Sspupyrev     for (auto &Block : AllBlocks) {
557f573f686Sspupyrev       if (Block.ForcedSucc == nullptr || Block.ForcedPred == nullptr)
558f573f686Sspupyrev         continue;
559f573f686Sspupyrev 
560f573f686Sspupyrev       auto SuccBlock = Block.ForcedSucc;
561f573f686Sspupyrev       while (SuccBlock != nullptr && SuccBlock != &Block) {
562f573f686Sspupyrev         SuccBlock = SuccBlock->ForcedSucc;
563f573f686Sspupyrev       }
564f573f686Sspupyrev       if (SuccBlock == nullptr)
565f573f686Sspupyrev         continue;
566f573f686Sspupyrev       // Break the cycle
567f573f686Sspupyrev       AllBlocks[Block.ForcedPred->Index].ForcedSucc = nullptr;
568f573f686Sspupyrev       Block.ForcedPred = nullptr;
569f573f686Sspupyrev     }
570f573f686Sspupyrev 
571f573f686Sspupyrev     // Merge blocks with their fallthrough successors
572f573f686Sspupyrev     for (auto &Block : AllBlocks) {
573f573f686Sspupyrev       if (Block.ForcedPred == nullptr && Block.ForcedSucc != nullptr) {
574f573f686Sspupyrev         auto CurBlock = &Block;
575f573f686Sspupyrev         while (CurBlock->ForcedSucc != nullptr) {
576f573f686Sspupyrev           const auto NextBlock = CurBlock->ForcedSucc;
577f573f686Sspupyrev           mergeChains(Block.CurChain, NextBlock->CurChain, 0, MergeTypeTy::X_Y);
578f573f686Sspupyrev           CurBlock = NextBlock;
579f573f686Sspupyrev         }
580f573f686Sspupyrev       }
581f573f686Sspupyrev     }
582f573f686Sspupyrev   }
583f573f686Sspupyrev 
584f573f686Sspupyrev   /// Merge pairs of chains while improving the ExtTSP objective.
mergeChainPairs()585f573f686Sspupyrev   void mergeChainPairs() {
586f573f686Sspupyrev     /// Deterministically compare pairs of chains
587f573f686Sspupyrev     auto compareChainPairs = [](const Chain *A1, const Chain *B1,
588f573f686Sspupyrev                                 const Chain *A2, const Chain *B2) {
589f573f686Sspupyrev       if (A1 != A2)
590f573f686Sspupyrev         return A1->id() < A2->id();
591f573f686Sspupyrev       return B1->id() < B2->id();
592f573f686Sspupyrev     };
593f573f686Sspupyrev 
594f573f686Sspupyrev     while (HotChains.size() > 1) {
595f573f686Sspupyrev       Chain *BestChainPred = nullptr;
596f573f686Sspupyrev       Chain *BestChainSucc = nullptr;
597f573f686Sspupyrev       auto BestGain = MergeGainTy();
598f573f686Sspupyrev       // Iterate over all pairs of chains
599f573f686Sspupyrev       for (auto ChainPred : HotChains) {
600f573f686Sspupyrev         // Get candidates for merging with the current chain
601f573f686Sspupyrev         for (auto EdgeIter : ChainPred->edges()) {
602f573f686Sspupyrev           auto ChainSucc = EdgeIter.first;
603f573f686Sspupyrev           auto ChainEdge = EdgeIter.second;
604f573f686Sspupyrev           // Ignore loop edges
605f573f686Sspupyrev           if (ChainPred == ChainSucc)
606f573f686Sspupyrev             continue;
607f573f686Sspupyrev 
608bcdc0477Sspupyrev           // Stop early if the combined chain violates the maximum allowed size
609bcdc0477Sspupyrev           if (ChainPred->numBlocks() + ChainSucc->numBlocks() >= MaxChainSize)
610bcdc0477Sspupyrev             continue;
611bcdc0477Sspupyrev 
612f573f686Sspupyrev           // Compute the gain of merging the two chains
613f573f686Sspupyrev           auto CurGain = getBestMergeGain(ChainPred, ChainSucc, ChainEdge);
614f573f686Sspupyrev           if (CurGain.score() <= EPS)
615f573f686Sspupyrev             continue;
616f573f686Sspupyrev 
617f573f686Sspupyrev           if (BestGain < CurGain ||
618f573f686Sspupyrev               (std::abs(CurGain.score() - BestGain.score()) < EPS &&
619f573f686Sspupyrev                compareChainPairs(ChainPred, ChainSucc, BestChainPred,
620f573f686Sspupyrev                                  BestChainSucc))) {
621f573f686Sspupyrev             BestGain = CurGain;
622f573f686Sspupyrev             BestChainPred = ChainPred;
623f573f686Sspupyrev             BestChainSucc = ChainSucc;
624f573f686Sspupyrev           }
625f573f686Sspupyrev         }
626f573f686Sspupyrev       }
627f573f686Sspupyrev 
628f573f686Sspupyrev       // Stop merging when there is no improvement
629f573f686Sspupyrev       if (BestGain.score() <= EPS)
630f573f686Sspupyrev         break;
631f573f686Sspupyrev 
632f573f686Sspupyrev       // Merge the best pair of chains
633f573f686Sspupyrev       mergeChains(BestChainPred, BestChainSucc, BestGain.mergeOffset(),
634f573f686Sspupyrev                   BestGain.mergeType());
635f573f686Sspupyrev     }
636f573f686Sspupyrev   }
637f573f686Sspupyrev 
638f573f686Sspupyrev   /// Merge cold blocks to reduce code size.
mergeColdChains()639f573f686Sspupyrev   void mergeColdChains() {
640f573f686Sspupyrev     for (size_t SrcBB = 0; SrcBB < NumNodes; SrcBB++) {
641f573f686Sspupyrev       // Iterating over neighbors in the reverse order to make sure original
642f573f686Sspupyrev       // fallthrough jumps are merged first
643f573f686Sspupyrev       size_t NumSuccs = SuccNodes[SrcBB].size();
644f573f686Sspupyrev       for (size_t Idx = 0; Idx < NumSuccs; Idx++) {
645f573f686Sspupyrev         auto DstBB = SuccNodes[SrcBB][NumSuccs - Idx - 1];
646f573f686Sspupyrev         auto SrcChain = AllBlocks[SrcBB].CurChain;
647f573f686Sspupyrev         auto DstChain = AllBlocks[DstBB].CurChain;
648f573f686Sspupyrev         if (SrcChain != DstChain && !DstChain->isEntry() &&
649f573f686Sspupyrev             SrcChain->blocks().back()->Index == SrcBB &&
650f573f686Sspupyrev             DstChain->blocks().front()->Index == DstBB) {
651f573f686Sspupyrev           mergeChains(SrcChain, DstChain, 0, MergeTypeTy::X_Y);
652f573f686Sspupyrev         }
653f573f686Sspupyrev       }
654f573f686Sspupyrev     }
655f573f686Sspupyrev   }
656f573f686Sspupyrev 
657f573f686Sspupyrev   /// Compute the Ext-TSP score for a given block order and a list of jumps.
extTSPScore(const MergedChain & MergedBlocks,const std::vector<Jump * > & Jumps) const658f573f686Sspupyrev   double extTSPScore(const MergedChain &MergedBlocks,
659f573f686Sspupyrev                      const std::vector<Jump *> &Jumps) const {
660f573f686Sspupyrev     if (Jumps.empty())
661f573f686Sspupyrev       return 0.0;
662f573f686Sspupyrev     uint64_t CurAddr = 0;
663f573f686Sspupyrev     MergedBlocks.forEach([&](const Block *BB) {
664f573f686Sspupyrev       BB->EstimatedAddr = CurAddr;
665f573f686Sspupyrev       CurAddr += BB->Size;
666f573f686Sspupyrev     });
667f573f686Sspupyrev 
668f573f686Sspupyrev     double Score = 0;
669f573f686Sspupyrev     for (auto &Jump : Jumps) {
670f573f686Sspupyrev       const auto SrcBlock = Jump->Source;
671f573f686Sspupyrev       const auto DstBlock = Jump->Target;
672f573f686Sspupyrev       Score += ::extTSPScore(SrcBlock->EstimatedAddr, SrcBlock->Size,
673f573f686Sspupyrev                              DstBlock->EstimatedAddr, Jump->ExecutionCount);
674f573f686Sspupyrev     }
675f573f686Sspupyrev     return Score;
676f573f686Sspupyrev   }
677f573f686Sspupyrev 
678f573f686Sspupyrev   /// Compute the gain of merging two chains.
679f573f686Sspupyrev   ///
680f573f686Sspupyrev   /// The function considers all possible ways of merging two chains and
681f573f686Sspupyrev   /// computes the one having the largest increase in ExtTSP objective. The
682f573f686Sspupyrev   /// result is a pair with the first element being the gain and the second
683f573f686Sspupyrev   /// element being the corresponding merging type.
getBestMergeGain(Chain * ChainPred,Chain * ChainSucc,ChainEdge * Edge) const684f573f686Sspupyrev   MergeGainTy getBestMergeGain(Chain *ChainPred, Chain *ChainSucc,
685f573f686Sspupyrev                                ChainEdge *Edge) const {
686f573f686Sspupyrev     if (Edge->hasCachedMergeGain(ChainPred, ChainSucc)) {
687f573f686Sspupyrev       return Edge->getCachedMergeGain(ChainPred, ChainSucc);
688f573f686Sspupyrev     }
689f573f686Sspupyrev 
690f573f686Sspupyrev     // Precompute jumps between ChainPred and ChainSucc
691f573f686Sspupyrev     auto Jumps = Edge->jumps();
692f573f686Sspupyrev     auto EdgePP = ChainPred->getEdge(ChainPred);
693f573f686Sspupyrev     if (EdgePP != nullptr) {
694f573f686Sspupyrev       Jumps.insert(Jumps.end(), EdgePP->jumps().begin(), EdgePP->jumps().end());
695f573f686Sspupyrev     }
696f573f686Sspupyrev     assert(!Jumps.empty() && "trying to merge chains w/o jumps");
697f573f686Sspupyrev 
698f573f686Sspupyrev     // The object holds the best currently chosen gain of merging the two chains
699f573f686Sspupyrev     MergeGainTy Gain = MergeGainTy();
700f573f686Sspupyrev 
701f573f686Sspupyrev     /// Given a merge offset and a list of merge types, try to merge two chains
702f573f686Sspupyrev     /// and update Gain with a better alternative
703f573f686Sspupyrev     auto tryChainMerging = [&](size_t Offset,
704f573f686Sspupyrev                                const std::vector<MergeTypeTy> &MergeTypes) {
705f573f686Sspupyrev       // Skip merging corresponding to concatenation w/o splitting
706f573f686Sspupyrev       if (Offset == 0 || Offset == ChainPred->blocks().size())
707f573f686Sspupyrev         return;
708f573f686Sspupyrev       // Skip merging if it breaks Forced successors
709f573f686Sspupyrev       auto BB = ChainPred->blocks()[Offset - 1];
710f573f686Sspupyrev       if (BB->ForcedSucc != nullptr)
711f573f686Sspupyrev         return;
712f573f686Sspupyrev       // Apply the merge, compute the corresponding gain, and update the best
713f573f686Sspupyrev       // value, if the merge is beneficial
714f573f686Sspupyrev       for (auto &MergeType : MergeTypes) {
715f573f686Sspupyrev         Gain.updateIfLessThan(
716f573f686Sspupyrev             computeMergeGain(ChainPred, ChainSucc, Jumps, Offset, MergeType));
717f573f686Sspupyrev       }
718f573f686Sspupyrev     };
719f573f686Sspupyrev 
720f573f686Sspupyrev     // Try to concatenate two chains w/o splitting
721f573f686Sspupyrev     Gain.updateIfLessThan(
722f573f686Sspupyrev         computeMergeGain(ChainPred, ChainSucc, Jumps, 0, MergeTypeTy::X_Y));
723f573f686Sspupyrev 
724f573f686Sspupyrev     if (EnableChainSplitAlongJumps) {
725f573f686Sspupyrev       // Attach (a part of) ChainPred before the first block of ChainSucc
726f573f686Sspupyrev       for (auto &Jump : ChainSucc->blocks().front()->InJumps) {
727f573f686Sspupyrev         const auto SrcBlock = Jump->Source;
728f573f686Sspupyrev         if (SrcBlock->CurChain != ChainPred)
729f573f686Sspupyrev           continue;
730f573f686Sspupyrev         size_t Offset = SrcBlock->CurIndex + 1;
731f573f686Sspupyrev         tryChainMerging(Offset, {MergeTypeTy::X1_Y_X2, MergeTypeTy::X2_X1_Y});
732f573f686Sspupyrev       }
733f573f686Sspupyrev 
734f573f686Sspupyrev       // Attach (a part of) ChainPred after the last block of ChainSucc
735f573f686Sspupyrev       for (auto &Jump : ChainSucc->blocks().back()->OutJumps) {
736f573f686Sspupyrev         const auto DstBlock = Jump->Source;
737f573f686Sspupyrev         if (DstBlock->CurChain != ChainPred)
738f573f686Sspupyrev           continue;
739f573f686Sspupyrev         size_t Offset = DstBlock->CurIndex;
740f573f686Sspupyrev         tryChainMerging(Offset, {MergeTypeTy::X1_Y_X2, MergeTypeTy::Y_X2_X1});
741f573f686Sspupyrev       }
742f573f686Sspupyrev     }
743f573f686Sspupyrev 
744f573f686Sspupyrev     // Try to break ChainPred in various ways and concatenate with ChainSucc
745f573f686Sspupyrev     if (ChainPred->blocks().size() <= ChainSplitThreshold) {
746f573f686Sspupyrev       for (size_t Offset = 1; Offset < ChainPred->blocks().size(); Offset++) {
747f573f686Sspupyrev         // Try to split the chain in different ways. In practice, applying
748f573f686Sspupyrev         // X2_Y_X1 merging is almost never provides benefits; thus, we exclude
749f573f686Sspupyrev         // it from consideration to reduce the search space
750f573f686Sspupyrev         tryChainMerging(Offset, {MergeTypeTy::X1_Y_X2, MergeTypeTy::Y_X2_X1,
751f573f686Sspupyrev                                  MergeTypeTy::X2_X1_Y});
752f573f686Sspupyrev       }
753f573f686Sspupyrev     }
754f573f686Sspupyrev     Edge->setCachedMergeGain(ChainPred, ChainSucc, Gain);
755f573f686Sspupyrev     return Gain;
756f573f686Sspupyrev   }
757f573f686Sspupyrev 
758f573f686Sspupyrev   /// Compute the score gain of merging two chains, respecting a given
759f573f686Sspupyrev   /// merge 'type' and 'offset'.
760f573f686Sspupyrev   ///
761f573f686Sspupyrev   /// The two chains are not modified in the method.
computeMergeGain(const Chain * ChainPred,const Chain * ChainSucc,const std::vector<Jump * > & Jumps,size_t MergeOffset,MergeTypeTy MergeType) const762f573f686Sspupyrev   MergeGainTy computeMergeGain(const Chain *ChainPred, const Chain *ChainSucc,
763f573f686Sspupyrev                                const std::vector<Jump *> &Jumps,
764f573f686Sspupyrev                                size_t MergeOffset,
765f573f686Sspupyrev                                MergeTypeTy MergeType) const {
766f573f686Sspupyrev     auto MergedBlocks = mergeBlocks(ChainPred->blocks(), ChainSucc->blocks(),
767f573f686Sspupyrev                                     MergeOffset, MergeType);
768f573f686Sspupyrev 
769f573f686Sspupyrev     // Do not allow a merge that does not preserve the original entry block
770f573f686Sspupyrev     if ((ChainPred->isEntry() || ChainSucc->isEntry()) &&
771f573f686Sspupyrev         !MergedBlocks.getFirstBlock()->isEntry())
772f573f686Sspupyrev       return MergeGainTy();
773f573f686Sspupyrev 
774f573f686Sspupyrev     // The gain for the new chain
775f573f686Sspupyrev     auto NewGainScore = extTSPScore(MergedBlocks, Jumps) - ChainPred->score();
776f573f686Sspupyrev     return MergeGainTy(NewGainScore, MergeOffset, MergeType);
777f573f686Sspupyrev   }
778f573f686Sspupyrev 
779f573f686Sspupyrev   /// Merge two chains of blocks respecting a given merge 'type' and 'offset'.
780f573f686Sspupyrev   ///
781f573f686Sspupyrev   /// If MergeType == 0, then the result is a concatentation of two chains.
782f573f686Sspupyrev   /// Otherwise, the first chain is cut into two sub-chains at the offset,
783f573f686Sspupyrev   /// and merged using all possible ways of concatenating three chains.
mergeBlocks(const std::vector<Block * > & X,const std::vector<Block * > & Y,size_t MergeOffset,MergeTypeTy MergeType) const784f573f686Sspupyrev   MergedChain mergeBlocks(const std::vector<Block *> &X,
785f573f686Sspupyrev                           const std::vector<Block *> &Y, size_t MergeOffset,
786f573f686Sspupyrev                           MergeTypeTy MergeType) const {
787f573f686Sspupyrev     // Split the first chain, X, into X1 and X2
788f573f686Sspupyrev     BlockIter BeginX1 = X.begin();
789f573f686Sspupyrev     BlockIter EndX1 = X.begin() + MergeOffset;
790f573f686Sspupyrev     BlockIter BeginX2 = X.begin() + MergeOffset;
791f573f686Sspupyrev     BlockIter EndX2 = X.end();
792f573f686Sspupyrev     BlockIter BeginY = Y.begin();
793f573f686Sspupyrev     BlockIter EndY = Y.end();
794f573f686Sspupyrev 
795f573f686Sspupyrev     // Construct a new chain from the three existing ones
796f573f686Sspupyrev     switch (MergeType) {
797f573f686Sspupyrev     case MergeTypeTy::X_Y:
798f573f686Sspupyrev       return MergedChain(BeginX1, EndX2, BeginY, EndY);
799f573f686Sspupyrev     case MergeTypeTy::X1_Y_X2:
800f573f686Sspupyrev       return MergedChain(BeginX1, EndX1, BeginY, EndY, BeginX2, EndX2);
801f573f686Sspupyrev     case MergeTypeTy::Y_X2_X1:
802f573f686Sspupyrev       return MergedChain(BeginY, EndY, BeginX2, EndX2, BeginX1, EndX1);
803f573f686Sspupyrev     case MergeTypeTy::X2_X1_Y:
804f573f686Sspupyrev       return MergedChain(BeginX2, EndX2, BeginX1, EndX1, BeginY, EndY);
805f573f686Sspupyrev     }
806f573f686Sspupyrev     llvm_unreachable("unexpected chain merge type");
807f573f686Sspupyrev   }
808f573f686Sspupyrev 
809f573f686Sspupyrev   /// Merge chain From into chain Into, update the list of active chains,
810f573f686Sspupyrev   /// adjacency information, and the corresponding cached values.
mergeChains(Chain * Into,Chain * From,size_t MergeOffset,MergeTypeTy MergeType)811f573f686Sspupyrev   void mergeChains(Chain *Into, Chain *From, size_t MergeOffset,
812f573f686Sspupyrev                    MergeTypeTy MergeType) {
813f573f686Sspupyrev     assert(Into != From && "a chain cannot be merged with itself");
814f573f686Sspupyrev 
815f573f686Sspupyrev     // Merge the blocks
816f573f686Sspupyrev     auto MergedBlocks =
817f573f686Sspupyrev         mergeBlocks(Into->blocks(), From->blocks(), MergeOffset, MergeType);
818f573f686Sspupyrev     Into->merge(From, MergedBlocks.getBlocks());
819f573f686Sspupyrev     Into->mergeEdges(From);
820f573f686Sspupyrev     From->clear();
821f573f686Sspupyrev 
822f573f686Sspupyrev     // Update cached ext-tsp score for the new chain
823f573f686Sspupyrev     auto SelfEdge = Into->getEdge(Into);
824f573f686Sspupyrev     if (SelfEdge != nullptr) {
825f573f686Sspupyrev       MergedBlocks = MergedChain(Into->blocks().begin(), Into->blocks().end());
826f573f686Sspupyrev       Into->setScore(extTSPScore(MergedBlocks, SelfEdge->jumps()));
827f573f686Sspupyrev     }
828f573f686Sspupyrev 
829f573f686Sspupyrev     // Remove chain From from the list of active chains
830f573f686Sspupyrev     auto Iter = std::remove(HotChains.begin(), HotChains.end(), From);
831f573f686Sspupyrev     HotChains.erase(Iter, HotChains.end());
832f573f686Sspupyrev 
833f573f686Sspupyrev     // Invalidate caches
834f573f686Sspupyrev     for (auto EdgeIter : Into->edges()) {
835f573f686Sspupyrev       EdgeIter.second->invalidateCache();
836f573f686Sspupyrev     }
837f573f686Sspupyrev   }
838f573f686Sspupyrev 
839f573f686Sspupyrev   /// Concatenate all chains into a final order of blocks.
concatChains(std::vector<uint64_t> & Order)840f573f686Sspupyrev   void concatChains(std::vector<uint64_t> &Order) {
841f573f686Sspupyrev     // Collect chains and calculate some stats for their sorting
842f573f686Sspupyrev     std::vector<Chain *> SortedChains;
843f573f686Sspupyrev     DenseMap<const Chain *, double> ChainDensity;
844f573f686Sspupyrev     for (auto &Chain : AllChains) {
845f573f686Sspupyrev       if (!Chain.blocks().empty()) {
846f573f686Sspupyrev         SortedChains.push_back(&Chain);
847f573f686Sspupyrev         // Using doubles to avoid overflow of ExecutionCount
848f573f686Sspupyrev         double Size = 0;
849f573f686Sspupyrev         double ExecutionCount = 0;
850f573f686Sspupyrev         for (auto Block : Chain.blocks()) {
851f573f686Sspupyrev           Size += static_cast<double>(Block->Size);
852f573f686Sspupyrev           ExecutionCount += static_cast<double>(Block->ExecutionCount);
853f573f686Sspupyrev         }
854f573f686Sspupyrev         assert(Size > 0 && "a chain of zero size");
855f573f686Sspupyrev         ChainDensity[&Chain] = ExecutionCount / Size;
856f573f686Sspupyrev       }
857f573f686Sspupyrev     }
858f573f686Sspupyrev 
859f573f686Sspupyrev     // Sorting chains by density in the decreasing order
860f573f686Sspupyrev     std::stable_sort(SortedChains.begin(), SortedChains.end(),
861f573f686Sspupyrev                      [&](const Chain *C1, const Chain *C2) {
862f573f686Sspupyrev                        // Makre sure the original entry block is at the
863f573f686Sspupyrev                        // beginning of the order
864f573f686Sspupyrev                        if (C1->isEntry() != C2->isEntry()) {
865f573f686Sspupyrev                          return C1->isEntry();
866f573f686Sspupyrev                        }
867f573f686Sspupyrev 
868f573f686Sspupyrev                        const double D1 = ChainDensity[C1];
869f573f686Sspupyrev                        const double D2 = ChainDensity[C2];
870f573f686Sspupyrev                        // Compare by density and break ties by chain identifiers
871f573f686Sspupyrev                        return (D1 != D2) ? (D1 > D2) : (C1->id() < C2->id());
872f573f686Sspupyrev                      });
873f573f686Sspupyrev 
874f573f686Sspupyrev     // Collect the blocks in the order specified by their chains
875f573f686Sspupyrev     Order.reserve(NumNodes);
876f573f686Sspupyrev     for (auto Chain : SortedChains) {
877f573f686Sspupyrev       for (auto Block : Chain->blocks()) {
878f573f686Sspupyrev         Order.push_back(Block->Index);
879f573f686Sspupyrev       }
880f573f686Sspupyrev     }
881f573f686Sspupyrev   }
882f573f686Sspupyrev 
883f573f686Sspupyrev private:
884f573f686Sspupyrev   /// The number of nodes in the graph.
885f573f686Sspupyrev   const size_t NumNodes;
886f573f686Sspupyrev 
887f573f686Sspupyrev   /// Successors of each node.
888f573f686Sspupyrev   std::vector<std::vector<uint64_t>> SuccNodes;
889f573f686Sspupyrev 
890f573f686Sspupyrev   /// Predecessors of each node.
891f573f686Sspupyrev   std::vector<std::vector<uint64_t>> PredNodes;
892f573f686Sspupyrev 
893f573f686Sspupyrev   /// All basic blocks.
894f573f686Sspupyrev   std::vector<Block> AllBlocks;
895f573f686Sspupyrev 
896f573f686Sspupyrev   /// All jumps between blocks.
897f573f686Sspupyrev   std::vector<Jump> AllJumps;
898f573f686Sspupyrev 
899f573f686Sspupyrev   /// All chains of basic blocks.
900f573f686Sspupyrev   std::vector<Chain> AllChains;
901f573f686Sspupyrev 
902f573f686Sspupyrev   /// All edges between chains.
903f573f686Sspupyrev   std::vector<ChainEdge> AllEdges;
904f573f686Sspupyrev 
905f573f686Sspupyrev   /// Active chains. The vector gets updated at runtime when chains are merged.
906f573f686Sspupyrev   std::vector<Chain *> HotChains;
907f573f686Sspupyrev };
908f573f686Sspupyrev 
909f573f686Sspupyrev } // end of anonymous namespace
910f573f686Sspupyrev 
applyExtTspLayout(const std::vector<uint64_t> & NodeSizes,const std::vector<uint64_t> & NodeCounts,const DenseMap<std::pair<uint64_t,uint64_t>,uint64_t> & EdgeCounts)911f573f686Sspupyrev std::vector<uint64_t> llvm::applyExtTspLayout(
912f573f686Sspupyrev     const std::vector<uint64_t> &NodeSizes,
913f573f686Sspupyrev     const std::vector<uint64_t> &NodeCounts,
914f573f686Sspupyrev     const DenseMap<std::pair<uint64_t, uint64_t>, uint64_t> &EdgeCounts) {
915f573f686Sspupyrev   size_t NumNodes = NodeSizes.size();
916f573f686Sspupyrev 
917f573f686Sspupyrev   // Verify correctness of the input data.
918f573f686Sspupyrev   assert(NodeCounts.size() == NodeSizes.size() && "Incorrect input");
919f573f686Sspupyrev   assert(NumNodes > 2 && "Incorrect input");
920f573f686Sspupyrev 
921f573f686Sspupyrev   // Apply the reordering algorithm.
922f573f686Sspupyrev   auto Alg = ExtTSPImpl(NumNodes, NodeSizes, NodeCounts, EdgeCounts);
923f573f686Sspupyrev   std::vector<uint64_t> Result;
924f573f686Sspupyrev   Alg.run(Result);
925f573f686Sspupyrev 
926f573f686Sspupyrev   // Verify correctness of the output.
927f573f686Sspupyrev   assert(Result.front() == 0 && "Original entry point is not preserved");
928f573f686Sspupyrev   assert(Result.size() == NumNodes && "Incorrect size of reordered layout");
929f573f686Sspupyrev   return Result;
930f573f686Sspupyrev }
931f573f686Sspupyrev 
calcExtTspScore(const std::vector<uint64_t> & Order,const std::vector<uint64_t> & NodeSizes,const std::vector<uint64_t> & NodeCounts,const DenseMap<std::pair<uint64_t,uint64_t>,uint64_t> & EdgeCounts)932f573f686Sspupyrev double llvm::calcExtTspScore(
933f573f686Sspupyrev     const std::vector<uint64_t> &Order, const std::vector<uint64_t> &NodeSizes,
934f573f686Sspupyrev     const std::vector<uint64_t> &NodeCounts,
935f573f686Sspupyrev     const DenseMap<std::pair<uint64_t, uint64_t>, uint64_t> &EdgeCounts) {
936f573f686Sspupyrev   // Estimate addresses of the blocks in memory
937f573f686Sspupyrev   auto Addr = std::vector<uint64_t>(NodeSizes.size(), 0);
938f573f686Sspupyrev   for (size_t Idx = 1; Idx < Order.size(); Idx++) {
939f573f686Sspupyrev     Addr[Order[Idx]] = Addr[Order[Idx - 1]] + NodeSizes[Order[Idx - 1]];
940f573f686Sspupyrev   }
941f573f686Sspupyrev 
942f573f686Sspupyrev   // Increase the score for each jump
943f573f686Sspupyrev   double Score = 0;
944f573f686Sspupyrev   for (auto It : EdgeCounts) {
945f573f686Sspupyrev     auto Pred = It.first.first;
946f573f686Sspupyrev     auto Succ = It.first.second;
947f573f686Sspupyrev     uint64_t Count = It.second;
948f573f686Sspupyrev     Score += extTSPScore(Addr[Pred], NodeSizes[Pred], Addr[Succ], Count);
949f573f686Sspupyrev   }
950f573f686Sspupyrev   return Score;
951f573f686Sspupyrev }
952f573f686Sspupyrev 
calcExtTspScore(const std::vector<uint64_t> & NodeSizes,const std::vector<uint64_t> & NodeCounts,const DenseMap<std::pair<uint64_t,uint64_t>,uint64_t> & EdgeCounts)953f573f686Sspupyrev double llvm::calcExtTspScore(
954f573f686Sspupyrev     const std::vector<uint64_t> &NodeSizes,
955f573f686Sspupyrev     const std::vector<uint64_t> &NodeCounts,
956f573f686Sspupyrev     const DenseMap<std::pair<uint64_t, uint64_t>, uint64_t> &EdgeCounts) {
957f573f686Sspupyrev   auto Order = std::vector<uint64_t>(NodeSizes.size());
958f573f686Sspupyrev   for (size_t Idx = 0; Idx < NodeSizes.size(); Idx++) {
959f573f686Sspupyrev     Order[Idx] = Idx;
960f573f686Sspupyrev   }
961f573f686Sspupyrev   return calcExtTspScore(Order, NodeSizes, NodeCounts, EdgeCounts);
962f573f686Sspupyrev }
963