/* SPDX-License-Identifier: GPL-2.0 */ /** \file command.c Client authentication and server commands. */ #include #include #include #include #include #include #include "para.h" #include "error.h" #include "lsu.h" #include "crypt.h" #include "sideband.h" #include "command.h" #include "string.h" #include "afh.h" #include "net.h" #include "list.h" #include "server.h" #include "sched.h" #include "send.h" #include "vss.h" #include "daemon.h" #include "fd.h" #include "ipc.h" #include "server_cmd.lsg.h" #include "signal.h" /** \cond doxygen_ignore */ #define SERVER_CMD_AUX_INFO(_arg) _arg, static const unsigned server_command_perms[] = {LSG_SERVER_CMD_AUX_INFOS}; #undef SERVER_CMD_AUX_INFO #define SERVER_CMD_AUX_INFO(_arg) #_arg, static const char * const server_command_perms_txt[] = {LSG_SERVER_CMD_AUX_INFOS}; #undef SERVER_CMD_AUX_INFO /* Commands including options must be shorter than this. */ #define MAX_COMMAND_LEN 32768 /* Must be large enough for the auth request and the challange response. */ #define HANDSHAKE_BUFSIZE 4096 /** \endcond */ extern int mmd_mutex; extern struct misc_meta_data *mmd; int send_afs_status(struct command_context *cc, bool parser_friendly); static bool subcmd_should_die; /* * Don't call PARA_XXX_LOG() here as we might already hold the log mutex. See * generic_signal_handler() for details. */ static void command_handler_sighandler(int s) { if (s == SIGTERM) subcmd_should_die = true; } /* * Compute human readable vss status text. * * We can't call vss_playing() and friends here because those functions read * the flags from the primary mmd structure, so calling them from command * handler context would require to take the mmd lock. At the time the function * is called we already took a copy of the mmd structure and want to use the * flags value of the copy for computing the vss status text. */ static char *vss_status_tohuman(unsigned int flags) { if (flags & VSS_PLAYING) return para_strdup("playing"); if (flags & VSS_NEXT) return para_strdup("stopped"); return para_strdup("paused"); } /* * Never returns NULL. */ static char *vss_get_status_flags(unsigned int flags) { char *msg = alloc(5 * sizeof(char)); msg[0] = (flags & VSS_PLAYING)? 'P' : '_'; msg[1] = (flags & VSS_NOMORE)? 'O' : '_'; msg[2] = (flags & VSS_NEXT)? 'N' : '_'; msg[3] = (flags & VSS_REPOS)? 'R' : '_'; msg[4] = '\0'; return msg; } static unsigned get_status(struct misc_meta_data *nmmd, bool parser_friendly, char **result) { char *status, *flags; /* vss status info */ long offset = (nmmd->offset + 500) / 1000; /* nobody updates the command handler's instance of "now" */ struct timeval current_time; struct para_buffer b = {.flags = parser_friendly? PBF_SIZE_PREFIX : 0}; /* report real status */ status = vss_status_tohuman(nmmd->vss_status_flags); flags = vss_get_status_flags(nmmd->vss_status_flags); clock_get_realtime(¤t_time); WRITE_STATUS_ITEM(&b, SI_status, "%s\n", status); WRITE_STATUS_ITEM(&b, SI_status_flags, "%s\n", flags); WRITE_STATUS_ITEM(&b, SI_offset, "%li\n", offset); WRITE_STATUS_ITEM(&b, SI_afs_mode, "%s\n", mmd->afs_mode_string); WRITE_STATUS_ITEM(&b, SI_stream_start, "%lu.%lu\n", (long unsigned)nmmd->stream_start.tv_sec, (long unsigned)nmmd->stream_start.tv_usec); WRITE_STATUS_ITEM(&b, SI_current_time, "%lu.%lu\n", (long unsigned)current_time.tv_sec, (long unsigned)current_time.tv_usec); free(flags); free(status); *result = b.buf; return b.offset; } /** * Send a sideband packet through a blocking file descriptor. * * \param scc fd and crypto keys. * \param buf The buffer to send. * \param numbytes The size of \a buf. * \param band The sideband designator of this packet. * \param dont_free If true, never deallocate \a buf. * * The nonblock flag must be disabled for the file descriptor given by \a scc. * * Stream cipher encryption is automatically activated if necessary via the * sideband transformation, depending on the value of \a band. * * \return Standard. * * \sa \ref send_sb_va(). */ int send_sb(struct stream_cipher_context *scc, void *buf, size_t numbytes, int band, bool dont_free) { int ret; struct sb_context *sbc; struct iovec iov[2]; sb_transformation trafo = band < SBD_PROCEED? NULL : sc_trafo; struct sb_buffer sbb = SBB_INIT(band, buf, numbytes); sbc = sb_new_send(&sbb, dont_free, trafo, scc->send); do { ret = sb_get_send_buffers(sbc, iov); ret = xwritev(scc->fd, iov, ret); if (ret < 0) goto fail; } while (sb_sent(sbc, ret) == false); return 1; fail: sb_free(sbc); return ret; } /** * Create a variable sized buffer and send it as a sideband packet. * * \param scc Passed to \ref send_sb. * \param band See \ref send_sb. * \param fmt The format string. * * \return The return value of the underlying call to \ref send_sb. */ __printf_3_4 int send_sb_va(struct stream_cipher_context *scc, int band, const char *fmt, ...) { va_list ap; char *msg; int ret; va_start(ap, fmt); ret = xvasprintf(&msg, fmt, ap); va_end(ap); return send_sb(scc, msg, ret, band, false); } /** * Send an error message to a client. * * \param cc Client info. * \param err The (positive) error code. * * \return The return value of the underlying call to send_sb_va(). */ int send_strerror(struct command_context *cc, int err) { return send_sb_va(&cc->scc, SBD_ERROR_LOG, "%s\n", para_strerror(err)); } /** * Send an error context to a client, * * \param cc Client info. * \param errctx The error context string. * * \return The return value of the underlying call to send_sb_va(). * * This function frees the error context string after it was sent. */ int send_errctx(struct command_context *cc, char *errctx) { int ret; if (!errctx) return 0; ret = send_sb_va(&cc->scc, SBD_ERROR_LOG, "%s\n", errctx); free(errctx); return ret; } static int check_sender_args(struct command_context *cc, struct lls_parse_result *lpr, struct sender_command_data *scd) { int i, ret; const char * const subcmds[] = {SENDER_SUBCOMMANDS}; const char *arg; char *errctx; unsigned num_inputs = lls_num_inputs(lpr); scd->sender_num = -1; ret = lls(lls_check_arg_count(lpr, 2, INT_MAX, &errctx)); if (ret < 0) { send_errctx(cc, errctx); return ret; } arg = lls_input(0, lpr); FOR_EACH_SENDER(i) if (strcmp(senders[i]->name, arg) == 0) break; if (!senders[i]) return -E_COMMAND_SYNTAX; scd->sender_num = i; arg = lls_input(1, lpr); for (i = 0; i < NUM_SENDER_CMDS; i++) if (!strcmp(subcmds[i], arg)) break; if (i == NUM_SENDER_CMDS) return -E_COMMAND_SYNTAX; scd->cmd_num = i; if (!senders[scd->sender_num]->client_cmds[scd->cmd_num]) return -E_SENDER_CMD; switch (scd->cmd_num) { case SENDER_on: case SENDER_off: if (num_inputs != 2) return -E_COMMAND_SYNTAX; break; case SENDER_deny: case SENDER_allow: if (num_inputs != 3 || parse_cidr(lls_input(2, lpr), scd->host, sizeof(scd->host), &scd->netmask) == NULL) return -E_COMMAND_SYNTAX; break; case SENDER_add: case SENDER_delete: if (num_inputs != 3) return -E_COMMAND_SYNTAX; return parse_fec_url(lls_input(2, lpr), scd); default: return -E_COMMAND_SYNTAX; } return 1; } /** * Receive a sideband packet from a blocking file descriptor. * * \param scc fd and crypto keys. * \param expected_band The expected band designator. * \param max_size Passed to \ref sb_new_recv(). * \param result Body of the sideband packet is returned here. * * If \a expected_band is not \p SBD_ANY, the band designator of the received * sideband packet is compared to \a expected_band and a mismatch is considered * an error. * * \return Standard. */ int recv_sb(struct stream_cipher_context *scc, enum sb_designator expected_band, size_t max_size, struct iovec *result) { int ret; struct sb_context *sbc; struct iovec iov; struct sb_buffer sbb; sb_transformation trafo; trafo = expected_band != SBD_ANY && expected_band < SBD_PROCEED? NULL : sc_trafo; sbc = sb_new_recv(max_size, trafo, scc->recv); for (;;) { sb_get_recv_buffer(sbc, &iov); ret = recv_bin_buffer(scc->fd, iov.iov_base, iov.iov_len); if (ret == 0) ret = -E_EOF; if (ret < 0) goto fail; ret = sb_received(sbc, ret, &sbb); if (ret < 0) goto fail; if (ret > 0) break; } ret = -E_BAD_BAND; if (expected_band != SBD_ANY && sbb.band != expected_band) goto fail; *result = sbb.iov; return 1; fail: sb_free(sbc); return ret; } /** \cond doxygen_ignore */ static int com_sender(struct command_context *cc, struct lls_parse_result *lpr) { int i, ret = 0; char *msg = NULL; struct sender_command_data scd; if (lls_num_inputs(lpr) == 0) { FOR_EACH_SENDER(i) { char *tmp; ret = xasprintf(&tmp, "%s%s\n", msg? msg : "", senders[i]->name); free(msg); msg = tmp; } return send_sb(&cc->scc, msg, ret, SBD_OUTPUT, false); } ret = check_sender_args(cc, lpr, &scd); if (ret < 0) { if (scd.sender_num < 0) return ret; if (strcmp(lls_input(1, lpr), "status") == 0) msg = senders[scd.sender_num]->status(); else msg = senders[scd.sender_num]->help(); return send_sb(&cc->scc, msg, strlen(msg), SBD_OUTPUT, false); } switch (scd.cmd_num) { case SENDER_add: case SENDER_delete: assert(senders[scd.sender_num]->resolve_target); ret = senders[scd.sender_num]->resolve_target(lls_input(2, lpr), &scd); if (ret < 0) return ret; } for (i = 0; i < 10; i++) { mutex_lock(mmd_mutex); if (mmd->sender_cmd_data.cmd_num >= 0) { /* another sender command is active, retry in 100ms */ struct timespec ts = {.tv_nsec = 100 * 1000 * 1000}; mutex_unlock(mmd_mutex); nanosleep(&ts, NULL); continue; } mmd->sender_cmd_data = scd; mutex_unlock(mmd_mutex); break; } return (i < 10)? 1 : -E_LOCK; } EXPORT_SERVER_CMD_HANDLER(sender); static int com_si(struct command_context *cc, __a_unused struct lls_parse_result *lpr) { char *msg, *ut; int ret; ut = daemon_get_uptime_str(now); mutex_lock(mmd_mutex); ret = xasprintf(&msg, "up: %s\nplayed: %u\n" "server_pid: %d\n" "afs_pid: %d\n" "connections (active/accepted/total): %u/%u/%u\n" "supported audio formats: %s\n", ut, mmd->num_played, (int)getppid(), (int)afs_pid, mmd->active_connections, mmd->num_commands, mmd->num_connects, AUDIO_FORMAT_HANDLERS ); mutex_unlock(mmd_mutex); free(ut); return send_sb(&cc->scc, msg, ret, SBD_OUTPUT, false); } EXPORT_SERVER_CMD_HANDLER(si); static int com_version(struct command_context *cc, struct lls_parse_result *lpr) { char *msg; size_t len; if (SERVER_CMD_OPT_GIVEN(VERSION, VERBOSE, lpr)) len = xasprintf(&msg, "%s", version_text("server")); else len = xasprintf(&msg, "%s\n", version_single_line("server")); return send_sb(&cc->scc, msg, len, SBD_OUTPUT, false); } EXPORT_SERVER_CMD_HANDLER(version); /* These status items are cleared if no audio file is currently open. */ #define EMPTY_STATUS_ITEMS \ ITEM(path) \ ITEM(directory) \ ITEM(basename) \ ITEM(score) \ ITEM(attributes_bitmap) \ ITEM(attributes_txt) \ ITEM(hash) \ ITEM(image_id) \ ITEM(image_name) \ ITEM(lyrics_id) \ ITEM(lyrics_name) \ ITEM(bitrate) \ ITEM(format) \ ITEM(frequency) \ ITEM(channels) \ ITEM(duration) \ ITEM(seconds_total) \ ITEM(num_played) \ ITEM(last_played) \ ITEM(techinfo) \ ITEM(artist) \ ITEM(title) \ ITEM(year) \ ITEM(album) \ ITEM(comment) \ ITEM(mtime) \ ITEM(file_size) \ ITEM(chunk_time) \ ITEM(num_chunks) \ ITEM(amplification) \ ITEM(play_time) \ /* * Create a set of audio-file related status items with empty values. These are * written to stat clients when no audio file is open. */ static unsigned empty_status_items(bool parser_friendly, char **result) { char *esi; unsigned len; if (parser_friendly) len = xasprintf(&esi, #define ITEM(x) "0004 %02x:\n" EMPTY_STATUS_ITEMS #undef ITEM #define ITEM(x) , (unsigned) SI_ ## x EMPTY_STATUS_ITEMS #undef ITEM ); else len = xasprintf(&esi, #define ITEM(x) "%s:\n" EMPTY_STATUS_ITEMS #undef ITEM #define ITEM(x) ,status_item_list[SI_ ## x] EMPTY_STATUS_ITEMS #undef ITEM ); *result = esi; return len; } #undef EMPTY_STATUS_ITEMS static int com_stat(struct command_context *cc, struct lls_parse_result *lpr) { int ret; struct misc_meta_data tmp, *nmmd = &tmp; char *s; bool parser_friendly = SERVER_CMD_OPT_GIVEN(STAT, PARSER_FRIENDLY, lpr) > 0; uint32_t num = SERVER_CMD_UINT32_VAL(STAT, NUM, lpr); const struct timespec ts = {.tv_sec = 50, .tv_nsec = 0}; para_sigaction(SIGINT, SIG_IGN); para_sigaction(SIGUSR1, command_handler_sighandler); para_sigaction(SIGTERM, command_handler_sighandler); /* * Simply checking subcmd_should_die is racy because a signal may * arrive after the check but before the subsequent call to sleep(3). * If this happens, sleep(3) would not be interrupted by the signal. * To avoid this we block SIGTERM here and allow it to arrive only * while we sleep. */ para_block_signal(SIGTERM); para_block_signal(SIGUSR1); for (;;) { sigset_t set; /* * Copy the mmd structure to minimize the time we hold the mmd * lock. */ mutex_lock(mmd_mutex); *nmmd = *mmd; mutex_unlock(mmd_mutex); ret = get_status(nmmd, parser_friendly, &s); ret = send_sb(&cc->scc, s, ret, SBD_OUTPUT, false); if (ret < 0) goto out; if (nmmd->vss_status_flags & VSS_NEXT) { char *esi; ret = empty_status_items(parser_friendly, &esi); ret = send_sb(&cc->scc, esi, ret, SBD_OUTPUT, false); if (ret < 0) goto out; } else send_afs_status(cc, parser_friendly); ret = 1; if (num > 0 && !--num) goto out; sigemptyset(&set); /* empty set means: unblock all signals */ /* * pselect(2) allows to atomically unblock signals, then go to * sleep. Calling sigprocmask(2) followed by sleep(3) would * open a race window similar to the one described above. */ pselect(1, NULL, NULL, NULL, &ts, &set); if (subcmd_should_die) { PARA_EMERG_LOG("terminating on SIGTERM\n"); goto out; } ret = -E_SERVER_CRASH; if (getppid() == 1) goto out; } out: return ret; } EXPORT_SERVER_CMD_HANDLER(stat); static const char *aux_info_cb(unsigned cmd_num, bool verbose) { static char result[80]; unsigned perms = server_command_perms[cmd_num]; if (verbose) { /* permissions: VSS_READ | VSS_WRITE */ sprintf(result, "permissions: %s", server_command_perms_txt[cmd_num]); } else { result[0] = perms & AFS_READ? 'a' : '-'; result[1] = perms & AFS_WRITE? 'A' : '-'; result[2] = perms & VSS_READ? 'v' : '-'; result[3] = perms & VSS_WRITE? 'V' : '-'; result[4] = '\0'; } return result; } static int com_help(struct command_context *cc, struct lls_parse_result *lpr) { char *buf; unsigned n; bool long_help = SERVER_CMD_OPT_GIVEN(HELP, LONG, lpr); int ret, ret2; uint8_t band; ret = lsu_com_help(long_help, lpr, server_cmd_suite, aux_info_cb, &buf, &n); band = ret < 0? SBD_ERROR_LOG : SBD_OUTPUT; ret2 = send_sb(&cc->scc, buf, n, band, false); return ret >= 0? ret2 : ret; } EXPORT_SERVER_CMD_HANDLER(help); static int com_hup(__a_unused struct command_context *cc, __a_unused struct lls_parse_result *lpr) { kill(getppid(), SIGHUP); return 1; } EXPORT_SERVER_CMD_HANDLER(hup); static int com_ll(struct command_context *cc, struct lls_parse_result *lpr) { unsigned ll, perms; char *errctx; const char *sev[] = {SEVERITIES}, *arg; int ret = lls(lls_check_arg_count(lpr, 0, 1, &errctx)); if (ret < 0) { send_errctx(cc, errctx); return ret; } if (lls_num_inputs(lpr) == 0) { /* reporting is an unprivileged op. */ const char *severity; mutex_lock(mmd_mutex); severity = sev[mmd->loglevel]; mutex_unlock(mmd_mutex); return send_sb_va(&cc->scc, SBD_OUTPUT, "%s\n", severity); } /* * Changing the loglevel changes the state of both the afs and the vss, * so we require both AFS_WRITE and VSS_WRITE. */ perms = AFS_WRITE | VSS_WRITE; if ((cc->u->perms & perms) != perms) return -ERRNO_TO_PARA_ERROR(EPERM); arg = lls_input(0, lpr); for (ll = 0; ll < NUM_LOGLEVELS; ll++) if (!strcmp(arg, sev[ll])) break; if (ll >= NUM_LOGLEVELS) return -ERRNO_TO_PARA_ERROR(EINVAL); PARA_INFO_LOG("new log level: %s\n", sev[ll]); /* Ask the server and afs processes to adjust their log level. */ mutex_lock(mmd_mutex); mmd->loglevel = ll; mutex_unlock(mmd_mutex); return 1; } EXPORT_SERVER_CMD_HANDLER(ll); static int com_term(__a_unused struct command_context *cc, __a_unused struct lls_parse_result *lpr) { /* * The server catches SIGTERM and propagates this signal to all its * children. We are about to exit anyway, but we'd leak tons of memory * if being terminated by the signal. So we ignore the signal here and * terminate via the normal exit path, deallocating all memory. */ para_sigaction(SIGTERM, SIG_IGN); kill(getppid(), SIGTERM); return 1; } EXPORT_SERVER_CMD_HANDLER(term); static int com_play(__a_unused struct command_context *cc, struct lls_parse_result *lpr) { mutex_lock(mmd_mutex); if (SERVER_CMD_OPT_GIVEN(PLAY, NEXT, lpr)) mmd->new_vss_status_flags |= VSS_NEXT; mmd->new_vss_status_flags |= VSS_PLAYING; mmd->new_vss_status_flags &= ~VSS_NOMORE; mutex_unlock(mmd_mutex); return 1; } EXPORT_SERVER_CMD_HANDLER(play); static int com_stop(__a_unused struct command_context *cc, __a_unused struct lls_parse_result *lpr) { mutex_lock(mmd_mutex); mmd->new_vss_status_flags &= ~VSS_PLAYING; mmd->new_vss_status_flags &= ~VSS_REPOS; mmd->new_vss_status_flags |= VSS_NEXT; mutex_unlock(mmd_mutex); return 1; } EXPORT_SERVER_CMD_HANDLER(stop); static int com_pause(__a_unused struct command_context *cc, __a_unused struct lls_parse_result *lpr) { mutex_lock(mmd_mutex); if (!vss_paused() && !vss_stopped()) { mmd->events++; mmd->new_vss_status_flags &= ~VSS_PLAYING; mmd->new_vss_status_flags &= ~VSS_NEXT; } mutex_unlock(mmd_mutex); return 1; } EXPORT_SERVER_CMD_HANDLER(pause); static int com_next(__a_unused struct command_context *cc, __a_unused struct lls_parse_result *lpr) { mutex_lock(mmd_mutex); mmd->events++; mmd->new_vss_status_flags |= VSS_NEXT; mutex_unlock(mmd_mutex); return 1; } EXPORT_SERVER_CMD_HANDLER(next); static int com_nomore(__a_unused struct command_context *cc, __a_unused struct lls_parse_result *lpr) { mutex_lock(mmd_mutex); if (vss_playing() || vss_paused()) mmd->new_vss_status_flags |= VSS_NOMORE; mutex_unlock(mmd_mutex); return 1; } EXPORT_SERVER_CMD_HANDLER(nomore); static int com_ff(struct command_context *cc, struct lls_parse_result *lpr) { long promille; int i, ret; char *errctx; ret = lls(lls_check_arg_count(lpr, 1, 1, &errctx)); if (ret < 0) { send_errctx(cc, errctx); return ret; } ret = para_atoi32(lls_input(0, lpr), &i); if (ret < 0) return ret; mutex_lock(mmd_mutex); ret = -E_NO_AUDIO_FILE; if (!mmd->afd.afhi.chunks_total || !mmd->afd.afhi.seconds_total) goto out; ret = 1; promille = (1000 * mmd->current_chunk) / mmd->afd.afhi.chunks_total; /* * We need this cast because without it the expression on the right * hand side is of unsigned type. */ promille += 1000 * i / (int)mmd->afd.afhi.seconds_total; if (promille < 0) promille = 0; if (promille > 1000) { mmd->new_vss_status_flags |= VSS_NEXT; goto out; } mmd->repos_request = (mmd->afd.afhi.chunks_total * promille) / 1000; mmd->new_vss_status_flags |= VSS_REPOS; mmd->new_vss_status_flags &= ~VSS_NEXT; mmd->events++; out: mutex_unlock(mmd_mutex); return ret; } EXPORT_SERVER_CMD_HANDLER(ff); static int com_jmp(struct command_context *cc, struct lls_parse_result *lpr) { int i, ret; char *errctx; ret = lls(lls_check_arg_count(lpr, 1, 1, &errctx)); if (ret < 0) { send_errctx(cc, errctx); return ret; } if (sscanf(lls_input(0, lpr), "%d", &i) <= 0) return -ERRNO_TO_PARA_ERROR(EINVAL); if (i < 0 || i > 100) return -ERRNO_TO_PARA_ERROR(EINVAL); mutex_lock(mmd_mutex); ret = -E_NO_AUDIO_FILE; if (!mmd->afd.afhi.chunks_total) goto out; PARA_INFO_LOG("jumping to %d%%\n", i); mmd->repos_request = (mmd->afd.afhi.chunks_total * i + 50) / 100; mmd->new_vss_status_flags |= VSS_REPOS; mmd->new_vss_status_flags &= ~VSS_NEXT; ret = 1; mmd->events++; out: mutex_unlock(mmd_mutex); return ret; } EXPORT_SERVER_CMD_HANDLER(jmp); /** \endcond */ static void reset_signals(void) { para_sigaction(SIGCHLD, SIG_IGN); para_sigaction(SIGINT, SIG_DFL); para_sigaction(SIGTERM, SIG_DFL); para_sigaction(SIGHUP, SIG_DFL); } static int parse_auth_request(char *buf, int len, const struct user **u) { int ret; char *p, *username, **features = NULL; size_t auth_rq_len = strlen(AUTH_REQUEST_MSG); *u = NULL; if (len < auth_rq_len + 2) return -E_AUTH_REQUEST; if (strncmp(buf, AUTH_REQUEST_MSG, auth_rq_len) != 0) return -E_AUTH_REQUEST; username = buf + auth_rq_len; p = strchr(username, ' '); if (p) { int i; if (p == username) return -E_AUTH_REQUEST; *p = '\0'; p++; create_argv(p, ",", &features); for (i = 0; features[i]; i++) { /* * sha256 is used unconditionally, but we need to * accept the feature request until 0.9.0. */ if (strcmp(features[i], "sha256")) { ret = -E_BAD_FEATURE; goto out; } } } PARA_DEBUG_LOG("received auth request for user %s\n", username); *u = user_list_lookup(username); ret = 1; out: free_argv(features); return ret; } static int run_command(struct command_context *cc, struct iovec *iov) { int ret, i, argc; char *p, *end, **argv; const struct lls_command *lcmd = NULL; unsigned perms; struct lls_parse_result *lpr; char *errctx; if (iov->iov_base == NULL || iov->iov_len == 0) return -ERRNO_TO_PARA_ERROR(EINVAL); p = iov->iov_base; p[iov->iov_len - 1] = '\0'; /* just to be sure */ ret = lls(lls_lookup_subcmd(p, server_cmd_suite, &errctx)); if (ret < 0) { send_errctx(cc, errctx); return ret; } perms = server_command_perms[ret]; if ((perms & cc->u->perms) != perms) return -ERRNO_TO_PARA_ERROR(EPERM); lcmd = lls_cmd(ret, server_cmd_suite); end = iov->iov_base + iov->iov_len; for (i = 0; p < end; i++) p += strlen(p) + 1; argc = i; argv = arr_alloc(argc + 1, sizeof(char *)); for (i = 0, p = iov->iov_base; p < end; i++) { argv[i] = para_strdup(p); p += strlen(p) + 1; } argv[argc] = NULL; PARA_NOTICE_LOG("calling com_%s() for user %s\n", lls_command_name(lcmd), cc->u->name); ret = lls(lls_parse(argc, argv, lcmd, &lpr, &errctx)); if (ret >= 0) { const struct server_cmd_user_data *ud = lls_user_data(lcmd); ret = ud->handler(cc, lpr); lls_free_parse_result(lpr, lcmd); } else send_errctx(cc, errctx); free_argv(argv); mutex_lock(mmd_mutex); mmd->num_commands++; if (ret >= 0 && (perms & AFS_WRITE)) mmd->events++; mutex_unlock(mmd_mutex); return ret; } /** * Perform user authentication and execute a command. * * \param fd The file descriptor to send output to. * \param afs_fd Permanent server-afs command socket, needed for afs callbacks. * * When the server process accepts an incoming tcp connection on the TCP command * port port, it forks and the resulting child calls this function. * * An RSA-based challenge/response is used to authenticate the peer. If the * authentication succeeds, a random session key is generated and sent back to * the peer, encrypted with its RSA public key. From this point on, all * transfers are encrypted with this session key using a stream cipher. * * Next it is checked if the peer supplied a valid server command or a command * for the audio file selector. If yes, and if the user has sufficient * permissions to execute this command, the function calls the corresponding * command handler which performs argument checking and further processing. * * To cope with DOS attacks, a timer is set up right after the fork. If the * connection was still not authenticated when the timeout expires, the child * process is terminated. * * \return Standard. * * \sa alarm(2), \ref openssl.c, \ref crypt.h. */ int handle_connect(int fd, int afs_fd) { int ret; unsigned char rand_buf[APC_CHALLENGE_SIZE + 2 * SESSION_KEY_LEN]; unsigned char challenge_hash[HASH_SIZE]; char *command = NULL, *buf = NULL, hsbuf[HANDSHAKE_BUFSIZE]; unsigned char *crypt_buf; size_t numbytes; struct command_context cc_struct = {.afs_fd = afs_fd}, *cc = &cc_struct; struct iovec iov; alarm(10); cc->scc.fd = fd; reset_signals(); /* we need a blocking fd here as recv() might return EAGAIN otherwise. */ ret = mark_fd_blocking(fd); if (ret < 0) goto net_err; /* send Welcome message */ ret = write_va_buffer(fd, "This is para_server, version %s.\n" "Features: \n", /* currently none */ paraslash_version() ); if (ret < 0) goto net_err; /* recv auth request line */ ret = recv_buffer(fd, hsbuf, HANDSHAKE_BUFSIZE); if (ret < 0) goto net_err; ret = parse_auth_request(hsbuf, ret, &cc->u); if (ret < 0) goto net_err; if (cc->u) { get_random_bytes_or_die(rand_buf, sizeof(rand_buf)); ret = apc_pub_encrypt(cc->u->pubkey, rand_buf, sizeof(rand_buf), &crypt_buf); if (ret < 0) goto net_err; numbytes = ret; } else { /* * We don't want to reveal our user names, so we send a * challenge to the client even if the user does not exist, and * fail the authentication later. */ numbytes = 256; crypt_buf = alloc(numbytes); get_random_bytes_or_die(crypt_buf, numbytes); } PARA_DEBUG_LOG("sending %d byte challenge + session key (%zu bytes)\n", APC_CHALLENGE_SIZE, numbytes); ret = send_sb(&cc->scc, crypt_buf, numbytes, SBD_CHALLENGE, false); if (ret < 0) goto net_err; ret = recv_sb(&cc->scc, SBD_CHALLENGE_RESPONSE, HANDSHAKE_BUFSIZE, &iov); if (ret < 0) goto net_err; buf = iov.iov_base; numbytes = iov.iov_len; PARA_DEBUG_LOG("received %zu bytes challenge response\n", numbytes); ret = -E_BAD_USER; if (!cc->u) goto net_err; /* * The correct response is the hash of the first APC_CHALLENGE_SIZE bytes * of the random data. */ ret = -E_BAD_AUTH; if (numbytes != HASH_SIZE) goto net_err; hash_function((char *)rand_buf, APC_CHALLENGE_SIZE, challenge_hash); if (memcmp(challenge_hash, buf, HASH_SIZE)) goto net_err; /* auth successful */ alarm(0); PARA_INFO_LOG("good auth for %s\n", cc->u->name); /* init stream cipher keys with the second part of the random buffer */ cc->scc.recv = sc_new(rand_buf + APC_CHALLENGE_SIZE, SESSION_KEY_LEN); cc->scc.send = sc_new(rand_buf + APC_CHALLENGE_SIZE + SESSION_KEY_LEN, SESSION_KEY_LEN); ret = send_sb(&cc->scc, NULL, 0, SBD_PROCEED, false); if (ret < 0) goto net_err; ret = recv_sb(&cc->scc, SBD_COMMAND, MAX_COMMAND_LEN, &iov); if (ret < 0) goto net_err; ret = run_command(cc, &iov); free(iov.iov_base); if (ret < 0) goto err_out; if (ret >= 0) goto out; err_out: if (send_strerror(cc, -ret) >= 0) send_sb(&cc->scc, NULL, 0, SBD_EXIT__FAILURE, true); net_err: PARA_NOTICE_LOG("%s\n", para_strerror(-ret)); out: free(buf); free(command); mutex_lock(mmd_mutex); mmd->active_connections--; mutex_unlock(mmd_mutex); if (ret >= 0) { ret = send_sb(&cc->scc, NULL, 0, SBD_EXIT__SUCCESS, true); if (ret < 0) PARA_NOTICE_LOG("%s\n", para_strerror(-ret)); } sc_free(cc->scc.recv); sc_free(cc->scc.send); return ret; }