All checks were successful
Tests / Clang total: 2500, passed: 2500
Clang |Total|New|Outstanding|Fixed|Trend
|:-:|:-:|:-:|:-:|:-:
|0|0|0|0|:clap:
Tests / Debug total: 2498, passed: 2498
Tests / SIMD fallback total: 2500, passed: 2500
Tests / Release [gcc] total: 2500, passed: 2500
GNU C Compiler (gcc) |Total|New|Outstanding|Fixed|Trend
|:-:|:-:|:-:|:-:|:-:
|0|0|0|0|:clap:
Tests / Release [gcc,aarch64] total: 1867, passed: 1867
Tests / Coverage total: 1877, passed: 1877
Code Coverage #### Project Overview
No changes detected, that affect the code coverage.
* Line Coverage: 99.29% (1824/1837)
* Branch Coverage: 67.44% (1485/2202)
* Complexity Density: 0.00
* Lines of Code: 1837
#### Quality Gates Summary
Output truncated.
weaselab/conflict-set/pipeline/head This commit looks good
369 lines
11 KiB
C++
369 lines
11 KiB
C++
#include <atomic>
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#include <errno.h>
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#include <netdb.h>
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#include <stdio.h>
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#include <stdlib.h>
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#include <string.h>
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#include <string>
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#include <string_view>
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#include <sys/ioctl.h>
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#include <sys/resource.h>
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#include <sys/socket.h>
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#include <sys/types.h>
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#include <sys/uio.h>
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#include <thread>
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#include <unistd.h>
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#include <utility>
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#include <vector>
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#include "ConflictSet.h"
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#include "third_party/nadeau.h"
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std::atomic<int64_t> transactions;
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constexpr int kBaseSearchDepth = 32;
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constexpr int kWindowSize = 10000000;
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std::string numToKey(int64_t num) {
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std::string result;
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result.resize(kBaseSearchDepth + sizeof(int64_t));
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memset(result.data(), 0, kBaseSearchDepth);
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int64_t be = __builtin_bswap64(num);
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memcpy(result.data() + kBaseSearchDepth, &be, sizeof(int64_t));
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return result;
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}
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void workload(weaselab::ConflictSet *cs) {
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int64_t version = kWindowSize;
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cs->addWrites(nullptr, 0, version);
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for (;; transactions.fetch_add(1, std::memory_order_relaxed)) {
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// Reads
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{
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auto beginK = numToKey(version - kWindowSize);
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auto endK = numToKey(version - 1);
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auto pointRv = version - kWindowSize + rand() % kWindowSize + 1;
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auto pointK = numToKey(pointRv);
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weaselab::ConflictSet::ReadRange reads[] = {
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{
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{(const uint8_t *)pointK.data(), int(pointK.size())},
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{nullptr, 0},
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pointRv,
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},
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{
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{(const uint8_t *)beginK.data(), int(beginK.size())},
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{(const uint8_t *)endK.data(), int(endK.size())},
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version - 2,
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},
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};
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weaselab::ConflictSet::Result result[sizeof(reads) / sizeof(reads[0])];
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cs->check(reads, result, sizeof(reads) / sizeof(reads[0]));
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// for (int i = 0; i < sizeof(reads) / sizeof(reads[0]); ++i) {
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// if (result[i] != weaselab::ConflictSet::Commit) {
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// fprintf(stderr, "Unexpected conflict: [%s, %s) @ %" PRId64 "\n",
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// printable(reads[i].begin).c_str(),
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// printable(reads[i].end).c_str(), reads[i].readVersion);
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// abort();
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// }
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// }
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}
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// Writes
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{
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weaselab::ConflictSet::WriteRange w;
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auto k = numToKey(version);
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w.begin.p = (const uint8_t *)k.data();
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w.end.len = 0;
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if (version % (kWindowSize / 2) == 0) {
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for (int l = 0; l <= k.size(); ++l) {
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w.begin.len = l;
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cs->addWrites(&w, 1, version);
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}
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} else {
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w.begin.len = k.size();
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cs->addWrites(&w, 1, version);
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int64_t beginN = version - kWindowSize + rand() % kWindowSize;
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auto b = numToKey(beginN);
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auto e = numToKey(beginN + 1000);
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w.begin.p = (const uint8_t *)b.data();
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w.begin.len = b.size();
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w.end.p = (const uint8_t *)e.data();
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w.end.len = e.size();
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cs->addWrites(&w, 1, version);
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}
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}
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// GC
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cs->setOldestVersion(version - kWindowSize);
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++version;
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}
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}
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// Adapted from getaddrinfo man page
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int getListenFd(const char *node, const char *service) {
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struct addrinfo hints;
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struct addrinfo *result, *rp;
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int sfd, s;
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memset(&hints, 0, sizeof(hints));
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hints.ai_family = AF_UNSPEC; /* Allow IPv4 or IPv6 */
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hints.ai_socktype = SOCK_STREAM; /* stream socket */
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hints.ai_flags = AI_PASSIVE; /* For wildcard IP address */
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hints.ai_protocol = 0; /* Any protocol */
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hints.ai_canonname = nullptr;
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hints.ai_addr = nullptr;
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hints.ai_next = nullptr;
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s = getaddrinfo(node, service, &hints, &result);
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if (s != 0) {
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fprintf(stderr, "getaddrinfo: %s\n", gai_strerror(s));
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abort();
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}
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/* getaddrinfo() returns a list of address structures.
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Try each address until we successfully bind(2).
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If socket(2) (or bind(2)) fails, we (close the socket
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and) try the next address. */
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for (rp = result; rp != nullptr; rp = rp->ai_next) {
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sfd = socket(rp->ai_family, rp->ai_socktype, rp->ai_protocol);
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if (sfd == -1) {
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continue;
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}
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int val = 1;
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setsockopt(sfd, SOL_SOCKET, SO_REUSEADDR, &val, sizeof(val));
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if (bind(sfd, rp->ai_addr, rp->ai_addrlen) == 0) {
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break; /* Success */
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}
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close(sfd);
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}
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freeaddrinfo(result); /* No longer needed */
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if (rp == nullptr) { /* No address succeeded */
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fprintf(stderr, "Could not bind\n");
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abort();
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}
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int rv = listen(sfd, SOMAXCONN);
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if (rv) {
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perror("listen()");
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abort();
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}
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return sfd;
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}
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// HTTP response
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//
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std::string_view part1 =
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"HTTP/1.1 200 OK \r\nContent-type: text/plain; version=0.0.4; "
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"charset=utf-8; escaping=values\r\nContent-Length: ";
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// Decimal content length
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std::string_view part2 = "\r\n\r\n";
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// Body
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double toSeconds(timeval t) {
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return double(t.tv_sec) + double(t.tv_usec) * 1e-6;
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}
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#ifdef __linux__
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#include <linux/perf_event.h>
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struct PerfCounter {
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PerfCounter(int type, int config, const std::string &labels = {},
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int groupLeaderFd = -1)
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: labels(labels) {
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struct perf_event_attr pe;
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memset(&pe, 0, sizeof(pe));
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pe.type = type;
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pe.size = sizeof(pe);
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pe.config = config;
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pe.inherit = 1;
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pe.exclude_kernel = 1;
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pe.exclude_hv = 1;
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fd = perf_event_open(&pe, 0, -1, groupLeaderFd, 0);
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if (fd < 0 && errno != ENOENT && errno != EINVAL) {
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perror(labels.c_str());
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}
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}
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int64_t total() const {
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int64_t count;
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if (read(fd, &count, sizeof(count)) != sizeof(count)) {
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perror("read instructions from perf");
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abort();
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}
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return count;
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}
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PerfCounter(PerfCounter &&other)
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: fd(std::exchange(other.fd, -1)), labels(std::move(other.labels)) {}
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PerfCounter &operator=(PerfCounter &&other) {
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fd = std::exchange(other.fd, -1);
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labels = std::move(other.labels);
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return *this;
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}
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~PerfCounter() {
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if (fd >= 0) {
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close(fd);
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}
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}
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bool ok() const { return fd >= 0; }
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const std::string &getLabels() const { return labels; }
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int getFd() const { return fd; }
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private:
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int fd;
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std::string labels;
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static long perf_event_open(struct perf_event_attr *hw_event, pid_t pid,
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int cpu, int group_fd, unsigned long flags) {
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int ret;
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ret = syscall(SYS_perf_event_open, hw_event, pid, cpu, group_fd, flags);
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return ret;
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}
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};
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#endif
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int main(int argc, char **argv) {
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if (argc != 3) {
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goto fail;
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}
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{
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int listenFd = getListenFd(argv[1], argv[2]);
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weaselab::ConflictSet cs{0};
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weaselab::ConflictSet::MetricsV1 *metrics;
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int metricsCount;
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cs.getMetricsV1(&metrics, &metricsCount);
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#ifdef __linux__
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PerfCounter instructions{PERF_TYPE_HARDWARE, PERF_COUNT_HW_INSTRUCTIONS};
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PerfCounter cycles{PERF_TYPE_HARDWARE, PERF_COUNT_HW_CPU_CYCLES, "",
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instructions.getFd()};
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std::vector<PerfCounter> cacheCounters;
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for (auto [id, idStr] : std::initializer_list<std::pair<int, std::string>>{
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{PERF_COUNT_HW_CACHE_L1D, "l1d"},
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{PERF_COUNT_HW_CACHE_L1I, "l1i"},
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{PERF_COUNT_HW_CACHE_LL, "ll"},
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{PERF_COUNT_HW_CACHE_DTLB, "dtlb"},
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{PERF_COUNT_HW_CACHE_ITLB, "itlb"},
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{PERF_COUNT_HW_CACHE_BPU, "bpu"},
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{PERF_COUNT_HW_CACHE_NODE, "node"},
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}) {
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for (auto [op, opStr] :
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std::initializer_list<std::pair<int, std::string>>{
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{PERF_COUNT_HW_CACHE_OP_READ, "read"},
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{PERF_COUNT_HW_CACHE_OP_WRITE, "write"},
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{PERF_COUNT_HW_CACHE_OP_PREFETCH, "prefetch"},
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}) {
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int groupLeaderFd = -1;
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for (auto [result, resultStr] :
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std::initializer_list<std::pair<int, std::string>>{
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{PERF_COUNT_HW_CACHE_RESULT_MISS, "miss"},
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{PERF_COUNT_HW_CACHE_RESULT_ACCESS, "access"},
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}) {
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auto labels = "{id=\"" + idStr + "\", op=\"" + opStr +
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"\", result=\"" + resultStr + "\"}";
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cacheCounters.emplace_back(PERF_TYPE_HW_CACHE,
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id | (op << 8) | (result << 16), labels,
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groupLeaderFd);
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if (!cacheCounters.back().ok()) {
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cacheCounters.pop_back();
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} else {
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if (groupLeaderFd == -1) {
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groupLeaderFd = cacheCounters.back().getFd();
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}
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}
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}
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}
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}
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#endif
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auto w = std::thread{workload, &cs};
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for (;;) {
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struct sockaddr_storage peer_addr = {};
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socklen_t peer_addr_len = sizeof(peer_addr);
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const int connfd =
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accept(listenFd, (struct sockaddr *)&peer_addr, &peer_addr_len);
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std::string body;
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rusage r;
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getrusage(RUSAGE_SELF, &r);
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body += "# HELP process_cpu_seconds_total Total user and system CPU time "
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"spent in seconds.\n# TYPE process_cpu_seconds_total counter\n"
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"process_cpu_seconds_total ";
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body += std::to_string(toSeconds(r.ru_utime) + toSeconds(r.ru_stime));
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body += "\n";
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body += "# HELP process_resident_memory_bytes Resident memory size in "
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"bytes.\n# TYPE process_resident_memory_bytes gauge\n"
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"process_resident_memory_bytes ";
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body += std::to_string(getCurrentRSS());
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body += "\n";
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body += "# HELP transactions_total Total number of transactions\n"
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"# TYPE transactions_total counter\n"
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"transactions_total ";
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body += std::to_string(transactions.load(std::memory_order_relaxed));
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body += "\n";
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#ifdef __linux__
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body += "# HELP instructions_total Total number of instructions\n"
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"# TYPE instructions_total counter\n"
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"instructions_total ";
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body += std::to_string(instructions.total());
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body += "\n";
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body += "# HELP cycles_total Total number of cycles\n"
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"# TYPE cycles_total counter\n"
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"cycles_total ";
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body += std::to_string(cycles.total());
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body += "\n";
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body += "# HELP cache_event_total Total number of cache events\n"
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"# TYPE cache_event_total counter\n";
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for (const auto &counter : cacheCounters) {
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body += "cache_event_total" + counter.getLabels() + " " +
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std::to_string(counter.total()) + "\n";
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}
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#endif
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for (int i = 0; i < metricsCount; ++i) {
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body += "# HELP ";
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body += metrics[i].name;
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body += " ";
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body += metrics[i].help;
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body += "\n";
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body += "# TYPE ";
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body += metrics[i].name;
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body += " ";
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body += metrics[i].type == metrics[i].Counter ? "counter" : "gauge";
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body += "\n";
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body += metrics[i].name;
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body += " ";
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body += std::to_string(metrics[i].getValue());
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body += "\n";
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}
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auto len = std::to_string(body.size());
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iovec iov[] = {
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{(void *)part1.data(), part1.size()},
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{(void *)len.data(), len.size()},
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{(void *)part2.data(), part2.size()},
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{(void *)body.data(), body.size()},
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};
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int written;
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do {
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written = writev(connfd, iov, sizeof(iov) / sizeof(iov[0]));
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} while (written < 0 && errno == EINTR);
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close(connfd);
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}
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}
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fail:
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fprintf(stderr, "Expected ./%s <host> <port>\n", argv[0]);
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return 1;
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} |