372 lines
8.3 KiB
C
372 lines
8.3 KiB
C
/*
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* Handle the mapping of uid/gid and user/group names between systems.
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*
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* Copyright (C) 1996 Andrew Tridgell
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* Copyright (C) 1996 Paul Mackerras
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* Copyright (C) 2004-2007 Wayne Davison
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*
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* This program is free software; you can redistribute it and/or modify
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* it under the terms of the GNU General Public License as published by
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* the Free Software Foundation; either version 3 of the License, or
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* (at your option) any later version.
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*
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* This program is distributed in the hope that it will be useful,
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* but WITHOUT ANY WARRANTY; without even the implied warranty of
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* MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
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* GNU General Public License for more details.
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*
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* You should have received a copy of the GNU General Public License along
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* with this program; if not, visit the http://fsf.org website.
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*/
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/* If the source username/group does not exist on the target then use
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* the numeric IDs. Never do any mapping for uid=0 or gid=0 as these
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* are special. */
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#include "rsync.h"
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#include "io.h"
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extern int verbose;
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extern int am_root;
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extern int preserve_uid;
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extern int preserve_gid;
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extern int preserve_acls;
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extern int numeric_ids;
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#ifdef HAVE_GETGROUPS
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# ifndef GETGROUPS_T
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# define GETGROUPS_T gid_t
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# endif
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#endif
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#define GID_NONE ((gid_t)-1)
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struct idlist {
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struct idlist *next;
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char *name;
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id_t id, id2;
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uint16 flags;
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};
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static struct idlist *uidlist;
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static struct idlist *gidlist;
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static struct idlist *add_to_list(struct idlist **root, id_t id, char *name,
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id_t id2, uint16 flags)
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{
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struct idlist *node = new(struct idlist);
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if (!node)
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out_of_memory("add_to_list");
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node->next = *root;
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node->name = name;
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node->id = id;
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node->id2 = id2;
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node->flags = flags;
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*root = node;
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return node;
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}
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/* turn a uid into a user name */
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static char *uid_to_name(uid_t uid)
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{
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struct passwd *pass = getpwuid(uid);
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if (pass)
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return strdup(pass->pw_name);
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return NULL;
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}
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/* turn a gid into a group name */
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static char *gid_to_name(gid_t gid)
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{
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struct group *grp = getgrgid(gid);
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if (grp)
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return strdup(grp->gr_name);
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return NULL;
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}
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static uid_t map_uid(uid_t id, char *name)
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{
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uid_t uid;
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if (id != 0 && name_to_uid(name, &uid))
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return uid;
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return id;
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}
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static gid_t map_gid(gid_t id, char *name)
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{
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gid_t gid;
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if (id != 0 && name_to_gid(name, &gid))
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return gid;
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return id;
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}
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static int is_in_group(gid_t gid)
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{
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#ifdef HAVE_GETGROUPS
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static gid_t last_in = GID_NONE, last_out;
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static int ngroups = -2;
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static GETGROUPS_T *gidset;
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int n;
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if (gid == last_in)
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return last_out;
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if (ngroups < -1) {
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gid_t mygid = MY_GID();
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if ((ngroups = getgroups(0, NULL)) < 0)
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ngroups = 0;
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gidset = new_array(GETGROUPS_T, ngroups+1);
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if (!gidset)
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out_of_memory("is_in_group");
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if (ngroups > 0)
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ngroups = getgroups(ngroups, gidset);
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/* The default gid might not be in the list on some systems. */
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for (n = 0; n < ngroups; n++) {
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if (gidset[n] == mygid)
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break;
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}
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if (n == ngroups)
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gidset[ngroups++] = mygid;
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if (verbose > 3) {
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int pos;
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char *gidbuf = new_array(char, ngroups*21+32);
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if (!gidbuf)
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out_of_memory("is_in_group");
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pos = snprintf(gidbuf, 32, "process has %d gid%s: ",
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ngroups, ngroups == 1? "" : "s");
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for (n = 0; n < ngroups; n++) {
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pos += snprintf(gidbuf+pos, 21, " %d", (int)gidset[n]);
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}
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rprintf(FINFO, "%s\n", gidbuf);
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free(gidbuf);
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}
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}
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last_in = gid;
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for (n = 0; n < ngroups; n++) {
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if (gidset[n] == gid)
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return last_out = 1;
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}
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return last_out = 0;
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#else
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static gid_t mygid = GID_NONE;
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if (mygid == GID_NONE) {
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mygid = MY_GID();
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if (verbose > 3)
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rprintf(FINFO, "process has gid %u\n", (unsigned)mygid);
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}
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return gid == mygid;
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#endif
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}
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/* Add a uid to the list of uids. Only called on receiving side. */
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static struct idlist *recv_add_uid(uid_t id, char *name)
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{
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uid_t id2 = name ? map_uid(id, name) : id;
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struct idlist *node;
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node = add_to_list(&uidlist, id, name, id2, 0);
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if (verbose > 3) {
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rprintf(FINFO, "uid %u(%s) maps to %u\n",
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(unsigned)id, name ? name : "", (unsigned)id2);
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}
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return node;
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}
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/* Add a gid to the list of gids. Only called on receiving side. */
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static struct idlist *recv_add_gid(gid_t id, char *name)
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{
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gid_t id2 = name ? map_gid(id, name) : id;
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struct idlist *node;
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node = add_to_list(&gidlist, id, name, id2,
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!am_root && !is_in_group(id2) ? FLAG_SKIP_GROUP : 0);
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if (verbose > 3) {
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rprintf(FINFO, "gid %u(%s) maps to %u\n",
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(unsigned)id, name ? name : "", (unsigned)id2);
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}
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return node;
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}
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/* this function is a definate candidate for a faster algorithm */
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uid_t match_uid(uid_t uid)
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{
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static uid_t last_in, last_out;
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struct idlist *list;
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if (uid == 0)
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return 0;
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if (uid == last_in)
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return last_out;
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last_in = uid;
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for (list = uidlist; list; list = list->next) {
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if (list->id == uid)
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return last_out = list->id2;
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}
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return last_out = uid;
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}
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gid_t match_gid(gid_t gid, uint16 *flags_ptr)
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{
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static struct idlist *last = NULL;
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struct idlist *list;
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if (last && gid == last->id)
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list = last;
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else {
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for (list = gidlist; list; list = list->next) {
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if (list->id == gid)
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break;
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}
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if (!list)
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list = recv_add_gid(gid, NULL);
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last = list;
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}
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if (flags_ptr && list->flags & FLAG_SKIP_GROUP)
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*flags_ptr |= FLAG_SKIP_GROUP;
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return list->id2;
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}
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/* Add a uid to the list of uids. Only called on sending side. */
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char *add_uid(uid_t uid)
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{
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struct idlist *list;
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struct idlist *node;
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if (uid == 0) /* don't map root */
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return NULL;
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for (list = uidlist; list; list = list->next) {
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if (list->id == uid)
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return NULL;
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}
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node = add_to_list(&uidlist, uid, uid_to_name(uid), 0, 0);
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return node->name;
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}
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/* Add a gid to the list of gids. Only called on sending side. */
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char *add_gid(gid_t gid)
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{
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struct idlist *list;
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struct idlist *node;
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if (gid == 0) /* don't map root */
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return NULL;
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for (list = gidlist; list; list = list->next) {
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if (list->id == gid)
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return NULL;
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}
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node = add_to_list(&gidlist, gid, gid_to_name(gid), 0, 0);
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return node->name;
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}
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/* send a complete uid/gid mapping to the peer */
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void send_id_list(int f)
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{
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struct idlist *list;
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if (preserve_uid || preserve_acls) {
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int len;
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/* we send sequences of uid/byte-length/name */
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for (list = uidlist; list; list = list->next) {
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if (!list->name)
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continue;
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len = strlen(list->name);
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write_varint30(f, list->id);
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write_byte(f, len);
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write_buf(f, list->name, len);
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}
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/* terminate the uid list with a 0 uid. We explicitly exclude
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* 0 from the list */
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write_varint30(f, 0);
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}
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if (preserve_gid || preserve_acls) {
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int len;
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for (list = gidlist; list; list = list->next) {
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if (!list->name)
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continue;
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len = strlen(list->name);
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write_varint30(f, list->id);
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write_byte(f, len);
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write_buf(f, list->name, len);
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}
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write_varint30(f, 0);
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}
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}
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uid_t recv_user_name(int f, uid_t uid)
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{
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struct idlist *node;
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int len = read_byte(f);
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char *name = new_array(char, len+1);
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if (!name)
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out_of_memory("recv_user_name");
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read_sbuf(f, name, len);
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node = recv_add_uid(uid, name); /* node keeps name's memory */
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return node->id2;
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}
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gid_t recv_group_name(int f, gid_t gid, uint16 *flags_ptr)
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{
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struct idlist *node;
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int len = read_byte(f);
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char *name = new_array(char, len+1);
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if (!name)
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out_of_memory("recv_group_name");
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read_sbuf(f, name, len);
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node = recv_add_gid(gid, name); /* node keeps name's memory */
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if (flags_ptr && node->flags & FLAG_SKIP_GROUP)
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*flags_ptr |= FLAG_SKIP_GROUP;
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return node->id2;
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}
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/* recv a complete uid/gid mapping from the peer and map the uid/gid
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* in the file list to local names */
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void recv_id_list(int f, struct file_list *flist)
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{
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id_t id;
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int i;
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if ((preserve_uid || preserve_acls) && !numeric_ids) {
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/* read the uid list */
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while ((id = read_varint30(f)) != 0)
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recv_user_name(f, id);
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}
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if ((preserve_gid || preserve_acls) && !numeric_ids) {
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/* read the gid list */
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while ((id = read_varint30(f)) != 0)
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recv_group_name(f, id, NULL);
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}
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/* Now convert all the uids/gids from sender values to our values. */
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#ifdef SUPPORT_ACLS
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if (preserve_acls && !numeric_ids)
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match_acl_ids();
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#endif
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if (am_root && preserve_uid && !numeric_ids) {
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for (i = 0; i < flist->used; i++)
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F_OWNER(flist->files[i]) = match_uid(F_OWNER(flist->files[i]));
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}
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if (preserve_gid && (!am_root || !numeric_ids)) {
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for (i = 0; i < flist->used; i++) {
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F_GROUP(flist->files[i]) = match_gid(F_GROUP(flist->files[i]),
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&flist->files[i]->flags);
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}
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}
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}
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