798 lines
26 KiB
C++
798 lines
26 KiB
C++
#include "globals.hh"
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#include "misc.hh"
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#include "pathlocks.hh"
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#include "local-store.hh"
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#include <boost/shared_ptr.hpp>
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#include <functional>
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#include <queue>
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#include <sys/types.h>
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#include <sys/stat.h>
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#include <errno.h>
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#include <fcntl.h>
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#include <unistd.h>
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#ifdef __CYGWIN__
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#include <windows.h>
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#include <sys/cygwin.h>
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#endif
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namespace nix {
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static string gcLockName = "gc.lock";
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static string tempRootsDir = "temproots";
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static string gcRootsDir = "gcroots";
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static const int defaultGcLevel = 1000;
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/* Acquire the global GC lock. This is used to prevent new Nix
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processes from starting after the temporary root files have been
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read. To be precise: when they try to create a new temporary root
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file, they will block until the garbage collector has finished /
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yielded the GC lock. */
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static int openGCLock(LockType lockType)
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{
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Path fnGCLock = (format("%1%/%2%")
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% nixStateDir % gcLockName).str();
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debug(format("acquiring global GC lock `%1%'") % fnGCLock);
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AutoCloseFD fdGCLock = open(fnGCLock.c_str(), O_RDWR | O_CREAT, 0600);
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if (fdGCLock == -1)
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throw SysError(format("opening global GC lock `%1%'") % fnGCLock);
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if (!lockFile(fdGCLock, lockType, false)) {
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printMsg(lvlError, format("waiting for the big garbage collector lock..."));
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lockFile(fdGCLock, lockType, true);
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}
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/* !!! Restrict read permission on the GC root. Otherwise any
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process that can open the file for reading can DoS the
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collector. */
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return fdGCLock.borrow();
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}
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void createSymlink(const Path & link, const Path & target, bool careful)
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{
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/* Create directories up to `gcRoot'. */
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createDirs(dirOf(link));
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/* !!! shouldn't removing and creating the symlink be atomic? */
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/* Remove the old symlink. */
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if (pathExists(link)) {
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if (careful && (!isLink(link) || !isInStore(readLink(link))))
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throw Error(format("cannot create symlink `%1%'; already exists") % link);
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unlink(link.c_str());
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}
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/* And create the new one. */
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if (symlink(target.c_str(), link.c_str()) == -1)
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throw SysError(format("symlinking `%1%' to `%2%'")
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% link % target);
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}
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void LocalStore::syncWithGC()
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{
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AutoCloseFD fdGCLock = openGCLock(ltRead);
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}
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void LocalStore::addIndirectRoot(const Path & path)
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{
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string hash = printHash32(hashString(htSHA1, path));
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Path realRoot = canonPath((format("%1%/%2%/auto/%3%")
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% nixStateDir % gcRootsDir % hash).str());
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createSymlink(realRoot, path, false);
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}
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Path addPermRoot(const Path & _storePath, const Path & _gcRoot,
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bool indirect, bool allowOutsideRootsDir)
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{
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Path storePath(canonPath(_storePath));
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Path gcRoot(canonPath(_gcRoot));
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assertStorePath(storePath);
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if (isInStore(gcRoot))
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throw Error(format(
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"creating a garbage collector root (%1%) in the Nix store is forbidden "
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"(are you running nix-build inside the store?)") % gcRoot);
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if (indirect) {
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createSymlink(gcRoot, storePath, true);
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store->addIndirectRoot(gcRoot);
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}
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else {
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if (!allowOutsideRootsDir) {
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Path rootsDir = canonPath((format("%1%/%2%") % nixStateDir % gcRootsDir).str());
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if (string(gcRoot, 0, rootsDir.size() + 1) != rootsDir + "/")
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throw Error(format(
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"path `%1%' is not a valid garbage collector root; "
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"it's not in the directory `%2%'")
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% gcRoot % rootsDir);
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}
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createSymlink(gcRoot, storePath, false);
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}
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/* Check that the root can be found by the garbage collector.
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!!! This can be very slow on machines that have many roots.
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Instead of reading all the roots, it would be more efficient to
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check if the root is in a directory in or linked from the
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gcroots directory. */
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if (queryBoolSetting("gc-check-reachability", true)) {
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Roots roots = store->findRoots();
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if (roots.find(gcRoot) == roots.end())
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printMsg(lvlError,
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format(
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"warning: `%1%' is not in a directory where the garbage collector looks for roots; "
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"therefore, `%2%' might be removed by the garbage collector")
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% gcRoot % storePath);
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}
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/* Grab the global GC root, causing us to block while a GC is in
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progress. This prevents the set of permanent roots from
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increasing while a GC is in progress. */
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store->syncWithGC();
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return gcRoot;
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}
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/* The file to which we write our temporary roots. */
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static Path fnTempRoots;
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static AutoCloseFD fdTempRoots;
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void LocalStore::addTempRoot(const Path & path)
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{
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/* Create the temporary roots file for this process. */
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if (fdTempRoots == -1) {
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while (1) {
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Path dir = (format("%1%/%2%") % nixStateDir % tempRootsDir).str();
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createDirs(dir);
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fnTempRoots = (format("%1%/%2%")
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% dir % getpid()).str();
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AutoCloseFD fdGCLock = openGCLock(ltRead);
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if (pathExists(fnTempRoots))
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/* It *must* be stale, since there can be no two
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processes with the same pid. */
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deletePath(fnTempRoots);
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fdTempRoots = openLockFile(fnTempRoots, true);
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fdGCLock.close();
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/* Note that on Cygwin a lot of the following complexity
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is unnecessary, since we cannot delete open lock
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files. If we have the lock file open, then it's valid;
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if we can delete it, then it wasn't in use any more.
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Also note that on Cygwin we cannot "upgrade" a lock
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from a read lock to a write lock. */
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#ifndef __CYGWIN__
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debug(format("acquiring read lock on `%1%'") % fnTempRoots);
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lockFile(fdTempRoots, ltRead, true);
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/* Check whether the garbage collector didn't get in our
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way. */
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struct stat st;
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if (fstat(fdTempRoots, &st) == -1)
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throw SysError(format("statting `%1%'") % fnTempRoots);
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if (st.st_size == 0) break;
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/* The garbage collector deleted this file before we could
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get a lock. (It won't delete the file after we get a
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lock.) Try again. */
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#else
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break;
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#endif
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}
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}
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/* Upgrade the lock to a write lock. This will cause us to block
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if the garbage collector is holding our lock. */
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debug(format("acquiring write lock on `%1%'") % fnTempRoots);
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lockFile(fdTempRoots, ltWrite, true);
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string s = path + '\0';
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writeFull(fdTempRoots, (const unsigned char *) s.c_str(), s.size());
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#ifndef __CYGWIN__
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/* Downgrade to a read lock. */
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debug(format("downgrading to read lock on `%1%'") % fnTempRoots);
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lockFile(fdTempRoots, ltRead, true);
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#else
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debug(format("releasing write lock on `%1%'") % fnTempRoots);
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lockFile(fdTempRoots, ltNone, true);
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#endif
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}
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void removeTempRoots()
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{
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if (fdTempRoots != -1) {
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fdTempRoots.close();
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unlink(fnTempRoots.c_str());
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}
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}
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typedef boost::shared_ptr<AutoCloseFD> FDPtr;
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typedef list<FDPtr> FDs;
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static void readTempRoots(PathSet & tempRoots, FDs & fds)
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{
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/* Read the `temproots' directory for per-process temporary root
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files. */
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Strings tempRootFiles = readDirectory(
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(format("%1%/%2%") % nixStateDir % tempRootsDir).str());
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for (Strings::iterator i = tempRootFiles.begin();
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i != tempRootFiles.end(); ++i)
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{
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Path path = (format("%1%/%2%/%3%") % nixStateDir % tempRootsDir % *i).str();
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debug(format("reading temporary root file `%1%'") % path);
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#ifdef __CYGWIN__
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/* On Cygwin we just try to delete the lock file. */
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char win32Path[MAX_PATH];
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cygwin_conv_to_full_win32_path(path.c_str(), win32Path);
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if (DeleteFile(win32Path)) {
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printMsg(lvlError, format("removed stale temporary roots file `%1%'")
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% path);
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continue;
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} else
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debug(format("delete of `%1%' failed: %2%") % path % GetLastError());
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#endif
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FDPtr fd(new AutoCloseFD(open(path.c_str(), O_RDWR, 0666)));
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if (*fd == -1) {
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/* It's okay if the file has disappeared. */
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if (errno == ENOENT) continue;
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throw SysError(format("opening temporary roots file `%1%'") % path);
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}
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/* This should work, but doesn't, for some reason. */
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//FDPtr fd(new AutoCloseFD(openLockFile(path, false)));
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//if (*fd == -1) continue;
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#ifndef __CYGWIN__
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/* Try to acquire a write lock without blocking. This can
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only succeed if the owning process has died. In that case
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we don't care about its temporary roots. */
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if (lockFile(*fd, ltWrite, false)) {
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printMsg(lvlError, format("removing stale temporary roots file `%1%'")
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% path);
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unlink(path.c_str());
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writeFull(*fd, (const unsigned char *) "d", 1);
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continue;
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}
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#endif
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/* Acquire a read lock. This will prevent the owning process
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from upgrading to a write lock, therefore it will block in
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addTempRoot(). */
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debug(format("waiting for read lock on `%1%'") % path);
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lockFile(*fd, ltRead, true);
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/* Read the entire file. */
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string contents = readFile(*fd);
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/* Extract the roots. */
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string::size_type pos = 0, end;
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while ((end = contents.find((char) 0, pos)) != string::npos) {
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Path root(contents, pos, end - pos);
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debug(format("got temporary root `%1%'") % root);
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assertStorePath(root);
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tempRoots.insert(root);
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pos = end + 1;
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}
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fds.push_back(fd); /* keep open */
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}
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}
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static void findRoots(const Path & path, bool recurseSymlinks,
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bool deleteStale, Roots & roots)
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{
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try {
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struct stat st;
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if (lstat(path.c_str(), &st) == -1)
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throw SysError(format("statting `%1%'") % path);
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printMsg(lvlVomit, format("looking at `%1%'") % path);
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if (S_ISDIR(st.st_mode)) {
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Strings names = readDirectory(path);
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for (Strings::iterator i = names.begin(); i != names.end(); ++i)
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findRoots(path + "/" + *i, recurseSymlinks, deleteStale, roots);
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}
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else if (S_ISLNK(st.st_mode)) {
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Path target = absPath(readLink(path), dirOf(path));
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if (isInStore(target)) {
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debug(format("found root `%1%' in `%2%'")
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% target % path);
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Path storePath = toStorePath(target);
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if (store->isValidPath(storePath))
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roots[path] = storePath;
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else
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printMsg(lvlInfo, format("skipping invalid root from `%1%' to `%2%'")
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% path % storePath);
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}
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else if (recurseSymlinks) {
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if (pathExists(target))
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findRoots(target, false, deleteStale, roots);
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else if (deleteStale) {
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printMsg(lvlInfo, format("removing stale link from `%1%' to `%2%'") % path % target);
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/* Note that we only delete when recursing, i.e.,
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when we are still in the `gcroots' tree. We
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never delete stuff outside that tree. */
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unlink(path.c_str());
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}
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}
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}
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}
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catch (SysError & e) {
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/* We only ignore permanent failures. */
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if (e.errNo == EACCES || e.errNo == ENOENT || e.errNo == ENOTDIR)
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printMsg(lvlInfo, format("cannot read potential root `%1%'") % path);
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else
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throw;
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}
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}
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static Roots findRoots(bool deleteStale)
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{
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Roots roots;
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Path rootsDir = canonPath((format("%1%/%2%") % nixStateDir % gcRootsDir).str());
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findRoots(rootsDir, true, deleteStale, roots);
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return roots;
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}
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Roots LocalStore::findRoots()
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{
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return nix::findRoots(false);
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}
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static void addAdditionalRoots(PathSet & roots)
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{
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Path rootFinder = getEnv("NIX_ROOT_FINDER",
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nixLibexecDir + "/nix/find-runtime-roots.pl");
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if (rootFinder.empty()) return;
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debug(format("executing `%1%' to find additional roots") % rootFinder);
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string result = runProgram(rootFinder);
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Strings paths = tokenizeString(result, "\n");
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for (Strings::iterator i = paths.begin(); i != paths.end(); ++i) {
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if (isInStore(*i)) {
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Path path = toStorePath(*i);
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if (roots.find(path) == roots.end() && store->isValidPath(path)) {
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debug(format("found additional root `%1%'") % path);
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roots.insert(path);
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}
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}
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}
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}
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static void dfsVisit(const PathSet & paths, const Path & path,
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PathSet & visited, Paths & sorted)
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{
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if (visited.find(path) != visited.end()) return;
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visited.insert(path);
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PathSet references;
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if (store->isValidPath(path))
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store->queryReferences(path, references);
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for (PathSet::iterator i = references.begin();
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i != references.end(); ++i)
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/* Don't traverse into paths that don't exist. That can
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happen due to substitutes for non-existent paths. */
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if (*i != path && paths.find(*i) != paths.end())
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dfsVisit(paths, *i, visited, sorted);
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sorted.push_front(path);
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}
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Paths topoSortPaths(const PathSet & paths)
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{
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Paths sorted;
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PathSet visited;
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for (PathSet::const_iterator i = paths.begin(); i != paths.end(); ++i)
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dfsVisit(paths, *i, visited, sorted);
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return sorted;
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}
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static time_t lastFileAccessTime(const Path & path)
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{
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checkInterrupt();
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struct stat st;
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if (lstat(path.c_str(), &st) == -1)
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throw SysError(format("statting `%1%'") % path);
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if (S_ISDIR(st.st_mode)) {
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time_t last = 0;
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Strings names = readDirectory(path);
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for (Strings::iterator i = names.begin(); i != names.end(); ++i) {
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time_t t = lastFileAccessTime(path + "/" + *i);
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if (t > last) last = t;
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}
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return last;
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}
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else if (S_ISLNK(st.st_mode)) return 0;
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else return st.st_atime;
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}
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struct GCLimitReached { };
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void LocalStore::gcPath(const GCOptions & options, GCResults & results,
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const Path & path)
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{
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results.paths.insert(path);
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if (!pathExists(path)) return;
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#ifndef __CYGWIN__
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AutoCloseFD fdLock;
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/* Only delete a lock file if we can acquire a write lock on it.
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That means that it's either stale, or the process that created
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it hasn't locked it yet. In the latter case the other process
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will detect that we deleted the lock, and retry (see
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pathlocks.cc). */
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if (path.size() >= 5 && string(path, path.size() - 5) == ".lock") {
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fdLock = openLockFile(path, false);
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if (fdLock != -1 && !lockFile(fdLock, ltWrite, false)) {
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debug(format("skipping active lock `%1%'") % path);
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return;
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}
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}
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#endif
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/* Okay, it's safe to delete. */
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unsigned long long bytesFreed, blocksFreed;
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deleteFromStore(path, bytesFreed, blocksFreed);
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results.bytesFreed += bytesFreed;
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results.blocksFreed += blocksFreed;
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if (results.bytesFreed > options.maxFreed) {
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printMsg(lvlInfo, format("deleted more than %1% bytes; stopping") % options.maxFreed);
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throw GCLimitReached();
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}
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if (options.maxLinks) {
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struct stat st;
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if (stat(nixStore.c_str(), &st) == -1)
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throw SysError(format("statting `%1%'") % nixStore);
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if (st.st_nlink < options.maxLinks) {
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printMsg(lvlInfo, format("link count on the store has dropped below %1%; stopping") % options.maxLinks);
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throw GCLimitReached();
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}
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}
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#ifndef __CYGWIN__
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if (fdLock != -1)
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/* Write token to stale (deleted) lock file. */
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writeFull(fdLock, (const unsigned char *) "d", 1);
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#endif
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}
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void LocalStore::gcPathRecursive(const GCOptions & options,
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GCResults & results, PathSet & done, const Path & path)
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{
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if (done.find(path) != done.end()) return;
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done.insert(path);
|
|
|
|
startNest(nest, lvlDebug, format("looking at `%1%'") % path);
|
|
|
|
/* Delete all the referrers first. They must be garbage too,
|
|
since if they were in the closure of some live path, then this
|
|
path would also be in the closure. Note that
|
|
deleteFromStore() below still makes sure that the referrer set
|
|
has become empty, just in case. */
|
|
PathSet referrers;
|
|
if (isValidPath(path))
|
|
queryReferrers(path, referrers);
|
|
foreach (PathSet::iterator, i, referrers)
|
|
if (*i != path) gcPathRecursive(options, results, done, *i);
|
|
|
|
printMsg(lvlInfo, format("deleting `%1%'") % path);
|
|
|
|
gcPath(options, results, path);
|
|
}
|
|
|
|
|
|
struct CachingAtimeComparator : public std::binary_function<Path, Path, bool>
|
|
{
|
|
std::map<Path, time_t> cache;
|
|
|
|
time_t lookup(const Path & p)
|
|
{
|
|
std::map<Path, time_t>::iterator i = cache.find(p);
|
|
if (i != cache.end()) return i->second;
|
|
debug(format("computing atime of `%1%'") % p);
|
|
cache[p] = lastFileAccessTime(p);
|
|
assert(cache.find(p) != cache.end());
|
|
return cache[p];
|
|
}
|
|
|
|
bool operator () (const Path & p1, const Path & p2)
|
|
{
|
|
return lookup(p2) < lookup(p1);
|
|
}
|
|
};
|
|
|
|
|
|
string showTime(const string & format, time_t t)
|
|
{
|
|
char s[128];
|
|
strftime(s, sizeof s, format.c_str(), gmtime(&t));
|
|
return string(s);
|
|
}
|
|
|
|
|
|
void LocalStore::collectGarbage(const GCOptions & options, GCResults & results)
|
|
{
|
|
bool gcKeepOutputs =
|
|
queryBoolSetting("gc-keep-outputs", false);
|
|
bool gcKeepDerivations =
|
|
queryBoolSetting("gc-keep-derivations", true);
|
|
int gcKeepOutputsThreshold =
|
|
queryIntSetting ("gc-keep-outputs-threshold", defaultGcLevel);
|
|
|
|
/* Acquire the global GC root. This prevents
|
|
a) New roots from being added.
|
|
b) Processes from creating new temporary root files. */
|
|
AutoCloseFD fdGCLock = openGCLock(ltWrite);
|
|
|
|
/* Find the roots. Since we've grabbed the GC lock, the set of
|
|
permanent roots cannot increase now. */
|
|
printMsg(lvlError, format("finding garbage collector roots..."));
|
|
Roots rootMap = options.ignoreLiveness ? Roots() : nix::findRoots(true);
|
|
|
|
PathSet roots;
|
|
for (Roots::iterator i = rootMap.begin(); i != rootMap.end(); ++i)
|
|
roots.insert(i->second);
|
|
|
|
/* Add additional roots returned by the program specified by the
|
|
NIX_ROOT_FINDER environment variable. This is typically used
|
|
to add running programs to the set of roots (to prevent them
|
|
from being garbage collected). */
|
|
if (!options.ignoreLiveness)
|
|
addAdditionalRoots(roots);
|
|
|
|
if (options.action == GCOptions::gcReturnRoots) {
|
|
results.paths = roots;
|
|
return;
|
|
}
|
|
|
|
/* Determine the live paths which is just the closure of the
|
|
roots under the `references' relation. */
|
|
printMsg(lvlError, format("computing live paths..."));
|
|
PathSet livePaths;
|
|
for (PathSet::const_iterator i = roots.begin(); i != roots.end(); ++i)
|
|
computeFSClosure(canonPath(*i), livePaths);
|
|
|
|
if (gcKeepDerivations) {
|
|
for (PathSet::iterator i = livePaths.begin();
|
|
i != livePaths.end(); ++i)
|
|
{
|
|
/* Note that the deriver need not be valid (e.g., if we
|
|
previously ran the collector with `gcKeepDerivations'
|
|
turned off). */
|
|
Path deriver = queryDeriver(*i);
|
|
if (deriver != "" && isValidPath(deriver))
|
|
computeFSClosure(deriver, livePaths);
|
|
}
|
|
}
|
|
|
|
if (gcKeepOutputs) {
|
|
/* Hmz, identical to storePathRequisites in nix-store. */
|
|
for (PathSet::iterator i = livePaths.begin();
|
|
i != livePaths.end(); ++i)
|
|
if (isDerivation(*i)) {
|
|
Derivation drv = derivationFromPath(*i);
|
|
|
|
string gcLevelStr = drv.env["__gcLevel"];
|
|
int gcLevel;
|
|
if (!string2Int(gcLevelStr, gcLevel))
|
|
gcLevel = defaultGcLevel;
|
|
|
|
if (gcLevel >= gcKeepOutputsThreshold)
|
|
for (DerivationOutputs::iterator j = drv.outputs.begin();
|
|
j != drv.outputs.end(); ++j)
|
|
if (isValidPath(j->second.path))
|
|
computeFSClosure(j->second.path, livePaths);
|
|
}
|
|
}
|
|
|
|
if (options.action == GCOptions::gcReturnLive) {
|
|
results.paths = livePaths;
|
|
return;
|
|
}
|
|
|
|
/* Read the temporary roots. This acquires read locks on all
|
|
per-process temporary root files. So after this point no paths
|
|
can be added to the set of temporary roots. */
|
|
PathSet tempRoots;
|
|
FDs fds;
|
|
readTempRoots(tempRoots, fds);
|
|
|
|
/* Close the temporary roots. Note that we *cannot* do this in
|
|
readTempRoots(), because there we may not have all locks yet,
|
|
meaning that an invalid path can become valid (and thus add to
|
|
the references graph) after we have added it to the closure
|
|
(and computeFSClosure() assumes that the presence of a path
|
|
means that it has already been closed). */
|
|
PathSet tempRootsClosed;
|
|
for (PathSet::iterator i = tempRoots.begin(); i != tempRoots.end(); ++i)
|
|
if (isValidPath(*i))
|
|
computeFSClosure(*i, tempRootsClosed);
|
|
else
|
|
tempRootsClosed.insert(*i);
|
|
|
|
/* After this point the set of roots or temporary roots cannot
|
|
increase, since we hold locks on everything. So everything
|
|
that is not currently in in `livePaths' or `tempRootsClosed'
|
|
can be deleted. */
|
|
|
|
/* Read the Nix store directory to find all currently existing
|
|
paths and filter out all live paths. */
|
|
printMsg(lvlError, format("reading the Nix store..."));
|
|
PathSet storePaths;
|
|
|
|
if (options.action != GCOptions::gcDeleteSpecific) {
|
|
Paths entries = readDirectory(nixStore);
|
|
foreach (Paths::iterator, i, entries) {
|
|
Path path = canonPath(nixStore + "/" + *i);
|
|
if (livePaths.find(path) == livePaths.end() &&
|
|
tempRootsClosed.find(path) == tempRootsClosed.end())
|
|
storePaths.insert(path);
|
|
}
|
|
}
|
|
|
|
else {
|
|
foreach (PathSet::iterator, i, options.pathsToDelete) {
|
|
assertStorePath(*i);
|
|
storePaths.insert(*i);
|
|
if (livePaths.find(*i) != livePaths.end())
|
|
throw Error(format("cannot delete path `%1%' since it is still alive") % *i);
|
|
if (tempRootsClosed.find(*i) != tempRootsClosed.end())
|
|
throw Error(format("cannot delete path `%1%' since it is temporarily in use") % *i);
|
|
}
|
|
}
|
|
|
|
if (options.action == GCOptions::gcReturnDead) {
|
|
results.paths.insert(storePaths.begin(), storePaths.end());
|
|
return;
|
|
}
|
|
|
|
/* Delete all dead store paths (or until one of the stop
|
|
conditions is reached). */
|
|
|
|
PathSet done;
|
|
try {
|
|
|
|
if (!options.useAtime) {
|
|
/* Delete the paths, respecting the partial ordering
|
|
determined by the references graph. */
|
|
printMsg(lvlError, format("deleting garbage..."));
|
|
foreach (PathSet::iterator, i, storePaths)
|
|
gcPathRecursive(options, results, done, *i);
|
|
}
|
|
|
|
else {
|
|
|
|
/* Delete in order of ascending last access time, still
|
|
maintaining the partial ordering of the reference
|
|
graph. Note that we can't use a topological sort for
|
|
this because that takes time O(V+E), and in this case
|
|
E=O(V^2) (i.e. the graph is dense because of the edges
|
|
due to the atime ordering). So instead we put all
|
|
deletable paths in a priority queue (ordered by atime),
|
|
and after deleting a path, add additional paths that
|
|
have become deletable to the priority queue. */
|
|
|
|
CachingAtimeComparator atimeComp;
|
|
|
|
/* Create a priority queue that orders paths by ascending
|
|
atime. This is why C++ needs type inferencing... */
|
|
std::priority_queue<Path, vector<Path>, binary_function_ref_adapter<CachingAtimeComparator> > prioQueue =
|
|
std::priority_queue<Path, vector<Path>, binary_function_ref_adapter<CachingAtimeComparator> >(binary_function_ref_adapter<CachingAtimeComparator>(&atimeComp));
|
|
|
|
/* Initially put the paths that are invalid or have no
|
|
referrers into the priority queue. */
|
|
printMsg(lvlError, format("finding deletable paths..."));
|
|
foreach (PathSet::iterator, i, storePaths) {
|
|
checkInterrupt();
|
|
/* We can safely delete a path if it's invalid or
|
|
it has no referrers. Note that all the invalid
|
|
paths will be deleted in the first round. */
|
|
if (isValidPath(*i)) {
|
|
if (queryReferrersNoSelf(*i).empty()) prioQueue.push(*i);
|
|
} else prioQueue.push(*i);
|
|
}
|
|
|
|
debug(format("%1% initially deletable paths") % prioQueue.size());
|
|
|
|
/* Now delete everything in the order of the priority
|
|
queue until nothing is left. */
|
|
printMsg(lvlError, format("deleting garbage..."));
|
|
while (!prioQueue.empty()) {
|
|
checkInterrupt();
|
|
Path path = prioQueue.top(); prioQueue.pop();
|
|
printMsg(lvlInfo, format("deleting `%1%' (last accessed %2%)") % path % showTime("%F %H:%M:%S", atimeComp.cache[path]));
|
|
|
|
PathSet references;
|
|
if (isValidPath(path)) references = queryReferencesNoSelf(path);
|
|
|
|
gcPath(options, results, path);
|
|
|
|
/* For each reference of the current path, see if the
|
|
reference has now become deletable (i.e. is in the
|
|
set of dead paths and has no referrers left). If
|
|
so add it to the priority queue. */
|
|
foreach (PathSet::iterator, i, references) {
|
|
if (storePaths.find(*i) != storePaths.end() &&
|
|
queryReferrersNoSelf(*i).empty())
|
|
{
|
|
debug(format("path `%1%' has become deletable") % *i);
|
|
prioQueue.push(*i);
|
|
}
|
|
}
|
|
}
|
|
|
|
}
|
|
|
|
} catch (GCLimitReached & e) {
|
|
}
|
|
}
|
|
|
|
|
|
}
|