#include "dc_context.h" #include "dc_apeerstate.h" #include "dc_aheader.h" #include "dc_hash.h" /******************************************************************************* * dc_apeerstate_t represents the state of an Autocrypt peer - Load/save ******************************************************************************/ static void dc_apeerstate_empty(dc_apeerstate_t* peerstate) { if (peerstate==NULL) { return; } peerstate->last_seen = 0; peerstate->last_seen_autocrypt = 0; peerstate->prefer_encrypt = 0; peerstate->to_save = 0; free(peerstate->addr); peerstate->addr = NULL; free(peerstate->public_key_fingerprint); peerstate->public_key_fingerprint = NULL; free(peerstate->gossip_key_fingerprint); peerstate->gossip_key_fingerprint = NULL; free(peerstate->verified_key_fingerprint); peerstate->verified_key_fingerprint = NULL; dc_key_unref(peerstate->public_key); peerstate->public_key = NULL; peerstate->gossip_timestamp = 0; dc_key_unref(peerstate->gossip_key); peerstate->gossip_key = NULL; dc_key_unref(peerstate->verified_key); peerstate->verified_key = NULL; peerstate->degrade_event = 0; } static void dc_apeerstate_set_from_stmt(dc_apeerstate_t* peerstate, sqlite3_stmt* stmt) { #define PEERSTATE_FIELDS "addr, last_seen, last_seen_autocrypt, prefer_encrypted, public_key, gossip_timestamp, gossip_key, public_key_fingerprint, gossip_key_fingerprint, verified_key, verified_key_fingerprint" peerstate->addr = dc_strdup((char*)sqlite3_column_text (stmt, 0)); peerstate->last_seen = sqlite3_column_int64 (stmt, 1); peerstate->last_seen_autocrypt = sqlite3_column_int64 (stmt, 2); peerstate->prefer_encrypt = sqlite3_column_int (stmt, 3); #define PUBLIC_KEY_COL 4 peerstate->gossip_timestamp = sqlite3_column_int (stmt, 5); #define GOSSIP_KEY_COL 6 peerstate->public_key_fingerprint = dc_strdup((char*)sqlite3_column_text (stmt, 7)); peerstate->gossip_key_fingerprint = dc_strdup((char*)sqlite3_column_text (stmt, 8)); #define VERIFIED_KEY_COL 9 peerstate->verified_key_fingerprint = dc_strdup((char*)sqlite3_column_text(stmt, 10)); if (sqlite3_column_type(stmt, PUBLIC_KEY_COL)!=SQLITE_NULL) { peerstate->public_key = dc_key_new(); dc_key_set_from_stmt(peerstate->public_key, stmt, PUBLIC_KEY_COL, DC_KEY_PUBLIC); } if (sqlite3_column_type(stmt, GOSSIP_KEY_COL)!=SQLITE_NULL) { peerstate->gossip_key = dc_key_new(); dc_key_set_from_stmt(peerstate->gossip_key, stmt, GOSSIP_KEY_COL, DC_KEY_PUBLIC); } if (sqlite3_column_type(stmt, VERIFIED_KEY_COL)!=SQLITE_NULL) { peerstate->verified_key = dc_key_new(); dc_key_set_from_stmt(peerstate->verified_key, stmt, VERIFIED_KEY_COL, DC_KEY_PUBLIC); } } int dc_apeerstate_load_by_addr(dc_apeerstate_t* peerstate, dc_sqlite3_t* sql, const char* addr) { int success = 0; sqlite3_stmt* stmt = NULL; if (peerstate==NULL || sql==NULL || addr==NULL) { goto cleanup; } dc_apeerstate_empty(peerstate); stmt = dc_sqlite3_prepare(sql, "SELECT " PEERSTATE_FIELDS " FROM acpeerstates " " WHERE addr=? COLLATE NOCASE;"); sqlite3_bind_text(stmt, 1, addr, -1, SQLITE_STATIC); if (sqlite3_step(stmt)!=SQLITE_ROW) { goto cleanup; } dc_apeerstate_set_from_stmt(peerstate, stmt); success = 1; cleanup: sqlite3_finalize(stmt); return success; } int dc_apeerstate_load_by_fingerprint(dc_apeerstate_t* peerstate, dc_sqlite3_t* sql, const char* fingerprint) { int success = 0; sqlite3_stmt* stmt = NULL; if (peerstate==NULL || sql==NULL || fingerprint==NULL) { goto cleanup; } dc_apeerstate_empty(peerstate); stmt = dc_sqlite3_prepare(sql, "SELECT " PEERSTATE_FIELDS " FROM acpeerstates " " WHERE public_key_fingerprint=? COLLATE NOCASE " " OR gossip_key_fingerprint=? COLLATE NOCASE " " ORDER BY public_key_fingerprint=? DESC;"); // if for, any reasons, different peers have the same key, prefer the peer with the correct public key. should not happen, however. sqlite3_bind_text(stmt, 1, fingerprint, -1, SQLITE_STATIC); sqlite3_bind_text(stmt, 2, fingerprint, -1, SQLITE_STATIC); sqlite3_bind_text(stmt, 3, fingerprint, -1, SQLITE_STATIC); if (sqlite3_step(stmt)!=SQLITE_ROW) { goto cleanup; } dc_apeerstate_set_from_stmt(peerstate, stmt); success = 1; cleanup: sqlite3_finalize(stmt); return success; } int dc_apeerstate_save_to_db(const dc_apeerstate_t* peerstate, dc_sqlite3_t* sql, int create) { int success = 0; sqlite3_stmt* stmt = NULL; if (peerstate==NULL || sql==NULL || peerstate->addr==NULL) { return 0; } if (create) { stmt = dc_sqlite3_prepare(sql, "INSERT INTO acpeerstates (addr) VALUES(?);"); sqlite3_bind_text(stmt, 1, peerstate->addr, -1, SQLITE_STATIC); sqlite3_step(stmt); sqlite3_finalize(stmt); stmt = NULL; } if ((peerstate->to_save&DC_SAVE_ALL) || create) { stmt = dc_sqlite3_prepare(sql, "UPDATE acpeerstates " " SET last_seen=?, last_seen_autocrypt=?, prefer_encrypted=?, " " public_key=?, gossip_timestamp=?, gossip_key=?, public_key_fingerprint=?, gossip_key_fingerprint=?, verified_key=?, verified_key_fingerprint=? " " WHERE addr=?;"); sqlite3_bind_int64(stmt, 1, peerstate->last_seen); sqlite3_bind_int64(stmt, 2, peerstate->last_seen_autocrypt); sqlite3_bind_int64(stmt, 3, peerstate->prefer_encrypt); sqlite3_bind_blob (stmt, 4, peerstate->public_key? peerstate->public_key->binary : NULL/*results in sqlite3_bind_null()*/, peerstate->public_key? peerstate->public_key->bytes : 0, SQLITE_STATIC); sqlite3_bind_int64(stmt, 5, peerstate->gossip_timestamp); sqlite3_bind_blob (stmt, 6, peerstate->gossip_key? peerstate->gossip_key->binary : NULL/*results in sqlite3_bind_null()*/, peerstate->gossip_key? peerstate->gossip_key->bytes : 0, SQLITE_STATIC); sqlite3_bind_text (stmt, 7, peerstate->public_key_fingerprint, -1, SQLITE_STATIC); sqlite3_bind_text (stmt, 8, peerstate->gossip_key_fingerprint, -1, SQLITE_STATIC); sqlite3_bind_blob (stmt, 9, peerstate->verified_key? peerstate->verified_key->binary : NULL/*results in sqlite3_bind_null()*/, peerstate->verified_key? peerstate->verified_key->bytes : 0, SQLITE_STATIC); sqlite3_bind_text (stmt,10, peerstate->verified_key_fingerprint, -1, SQLITE_STATIC); sqlite3_bind_text (stmt,11, peerstate->addr, -1, SQLITE_STATIC); if (sqlite3_step(stmt)!=SQLITE_DONE) { goto cleanup; } sqlite3_finalize(stmt); stmt = NULL; } else if (peerstate->to_save&DC_SAVE_TIMESTAMPS) { stmt = dc_sqlite3_prepare(sql, "UPDATE acpeerstates SET last_seen=?, last_seen_autocrypt=?, gossip_timestamp=? WHERE addr=?;"); sqlite3_bind_int64(stmt, 1, peerstate->last_seen); sqlite3_bind_int64(stmt, 2, peerstate->last_seen_autocrypt); sqlite3_bind_int64(stmt, 3, peerstate->gossip_timestamp); sqlite3_bind_text (stmt, 4, peerstate->addr, -1, SQLITE_STATIC); if (sqlite3_step(stmt)!=SQLITE_DONE) { goto cleanup; } sqlite3_finalize(stmt); stmt = NULL; } if ((peerstate->to_save&DC_SAVE_ALL) || create) { dc_reset_gossiped_timestamp(peerstate->context, 0); } success = 1; cleanup: sqlite3_finalize(stmt); return success; } /******************************************************************************* * Main interface ******************************************************************************/ dc_apeerstate_t* dc_apeerstate_new(dc_context_t* context) { dc_apeerstate_t* peerstate = NULL; if ((peerstate=calloc(1, sizeof(dc_apeerstate_t)))==NULL) { exit(43); /* cannot allocate little memory, unrecoverable error */ } peerstate->context = context; return peerstate; } void dc_apeerstate_unref(dc_apeerstate_t* peerstate) { dc_apeerstate_empty(peerstate); free(peerstate); } /** * Render an Autocrypt-Gossip header value. The contained key is either * public_key or gossip_key if public_key is NULL. * * @memberof dc_apeerstate_t * @param peerstate The peerstate object. * @return String that can be be used directly in an `Autocrypt-Gossip:` statement, * `Autocrypt-Gossip:` is _not_ included in the returned string. If there * is not key for the peer that can be gossiped, NULL is returned. */ char* dc_apeerstate_render_gossip_header(const dc_apeerstate_t* peerstate, int min_verified) { char* ret = NULL; dc_aheader_t* autocryptheader = dc_aheader_new(); if (peerstate==NULL || peerstate->addr==NULL) { goto cleanup; } autocryptheader->prefer_encrypt = DC_PE_NOPREFERENCE; /* the spec says, we SHOULD NOT gossip this flag */ autocryptheader->addr = dc_strdup(peerstate->addr); autocryptheader->public_key = dc_key_ref(dc_apeerstate_peek_key(peerstate, min_verified)); /* may be NULL */ ret = dc_aheader_render(autocryptheader); cleanup: dc_aheader_unref(autocryptheader); return ret; } /** * Return either public_key or gossip_key if public_key is null or not verified. * The function does not check if the keys are valid but the caller can assume * the returned key has data. * * This function does not do the Autocrypt encryption recommendation; it just * returns a key that can be used. * * @memberof dc_apeerstate_t * @param peerstate The peerstate object. * @param min_verified The minimal verification criterion the key should match. * Typically either DC_NOT_VERIFIED (0) if there is no need for the key being verified * or DC_BIDIRECT_VERIFIED (2) for bidirectional verification requirement. * @return public_key or gossip_key, NULL if nothing is available. * the returned pointer MUST NOT be unref()'d. */ dc_key_t* dc_apeerstate_peek_key(const dc_apeerstate_t* peerstate, int min_verified) { if ( peerstate==NULL || (peerstate->public_key && (peerstate->public_key->binary==NULL || peerstate->public_key->bytes<=0)) || (peerstate->gossip_key && (peerstate->gossip_key->binary==NULL || peerstate->gossip_key->bytes<=0)) || (peerstate->verified_key && (peerstate->verified_key->binary==NULL || peerstate->verified_key->bytes<=0))) { return NULL; } if (min_verified) { return peerstate->verified_key; } if (peerstate->public_key) { return peerstate->public_key; } return peerstate->gossip_key; } /******************************************************************************* * Change state ******************************************************************************/ int dc_apeerstate_init_from_header(dc_apeerstate_t* peerstate, const dc_aheader_t* header, time_t message_time) { if (peerstate==NULL || header==NULL) { return 0; } dc_apeerstate_empty(peerstate); peerstate->addr = dc_strdup(header->addr); peerstate->last_seen = message_time; peerstate->last_seen_autocrypt = message_time; peerstate->to_save |= DC_SAVE_ALL; peerstate->prefer_encrypt = header->prefer_encrypt; peerstate->public_key = dc_key_new(); dc_key_set_from_key(peerstate->public_key, header->public_key); dc_apeerstate_recalc_fingerprint(peerstate); return 1; } int dc_apeerstate_init_from_gossip(dc_apeerstate_t* peerstate, const dc_aheader_t* gossip_header, time_t message_time) { if (peerstate==NULL || gossip_header==NULL) { return 0; } dc_apeerstate_empty(peerstate); peerstate->addr = dc_strdup(gossip_header->addr); peerstate->gossip_timestamp = message_time; peerstate->to_save |= DC_SAVE_ALL; peerstate->gossip_key = dc_key_new(); dc_key_set_from_key(peerstate->gossip_key, gossip_header->public_key); dc_apeerstate_recalc_fingerprint(peerstate); return 1; } int dc_apeerstate_degrade_encryption(dc_apeerstate_t* peerstate, time_t message_time) { if (peerstate==NULL) { return 0; } if (peerstate->prefer_encrypt==DC_PE_MUTUAL) { peerstate->degrade_event |= DC_DE_ENCRYPTION_PAUSED; } peerstate->prefer_encrypt = DC_PE_RESET; peerstate->last_seen = message_time; /*last_seen_autocrypt is not updated as there was not Autocrypt:-header seen*/ peerstate->to_save |= DC_SAVE_ALL; return 1; } void dc_apeerstate_apply_header(dc_apeerstate_t* peerstate, const dc_aheader_t* header, time_t message_time) { if (peerstate==NULL || header==NULL || peerstate->addr==NULL || header->addr==NULL || header->public_key->binary==NULL || strcasecmp(peerstate->addr, header->addr)!=0) { return; } if (message_time > peerstate->last_seen_autocrypt) { peerstate->last_seen = message_time; peerstate->last_seen_autocrypt = message_time; peerstate->to_save |= DC_SAVE_TIMESTAMPS; if ((header->prefer_encrypt==DC_PE_MUTUAL || header->prefer_encrypt==DC_PE_NOPREFERENCE) /*this also switches from DC_PE_RESET to DC_PE_NOPREFERENCE, which is just fine as the function is only called _if_ the Autocrypt:-header is preset at all */ && header->prefer_encrypt!=peerstate->prefer_encrypt) { if (peerstate->prefer_encrypt==DC_PE_MUTUAL && header->prefer_encrypt!=DC_PE_MUTUAL) { peerstate->degrade_event |= DC_DE_ENCRYPTION_PAUSED; } peerstate->prefer_encrypt = header->prefer_encrypt; peerstate->to_save |= DC_SAVE_ALL; } if (peerstate->public_key==NULL) { peerstate->public_key = dc_key_new(); } if (!dc_key_equals(peerstate->public_key, header->public_key)) { dc_key_set_from_key(peerstate->public_key, header->public_key); dc_apeerstate_recalc_fingerprint(peerstate); peerstate->to_save |= DC_SAVE_ALL; } } } void dc_apeerstate_apply_gossip(dc_apeerstate_t* peerstate, const dc_aheader_t* gossip_header, time_t message_time) { if (peerstate==NULL || gossip_header==NULL || peerstate->addr==NULL || gossip_header->addr==NULL || gossip_header->public_key->binary==NULL || strcasecmp(peerstate->addr, gossip_header->addr)!=0) { return; } if (message_time > peerstate->gossip_timestamp) { peerstate->gossip_timestamp = message_time; peerstate->to_save |= DC_SAVE_TIMESTAMPS; if (peerstate->gossip_key==NULL) { peerstate->gossip_key = dc_key_new(); } if (!dc_key_equals(peerstate->gossip_key, gossip_header->public_key)) { dc_key_set_from_key(peerstate->gossip_key, gossip_header->public_key); dc_apeerstate_recalc_fingerprint(peerstate); peerstate->to_save |= DC_SAVE_ALL; } } } /** * Recalculate the fingerprints for the keys. * * If the fingerprint has changed, the verified-state is reset. * * An explicit call to this function from outside this class is only needed * for database updates; the dc_apeerstate_init_*() and dc_apeerstate_apply_*() * functions update the fingerprint automatically as needed. * * @memberof dc_apeerstate_t */ int dc_apeerstate_recalc_fingerprint(dc_apeerstate_t* peerstate) { int success = 0; char* old_public_fingerprint = NULL; char* old_gossip_fingerprint = NULL; if (peerstate==NULL) { goto cleanup; } if (peerstate->public_key) { old_public_fingerprint = peerstate->public_key_fingerprint; peerstate->public_key_fingerprint = dc_key_get_fingerprint(peerstate->public_key); /* returns the empty string for errors, however, this should be saved as well as it represents an erroneous key */ if (old_public_fingerprint==NULL || old_public_fingerprint[0]==0 || peerstate->public_key_fingerprint==NULL || peerstate->public_key_fingerprint[0]==0 || strcasecmp(old_public_fingerprint, peerstate->public_key_fingerprint)!=0) { peerstate->to_save |= DC_SAVE_ALL; if (old_public_fingerprint && old_public_fingerprint[0]) { // no degrade event when we recveive just the initial fingerprint peerstate->degrade_event |= DC_DE_FINGERPRINT_CHANGED; } } } if (peerstate->gossip_key) { old_gossip_fingerprint = peerstate->gossip_key_fingerprint; peerstate->gossip_key_fingerprint = dc_key_get_fingerprint(peerstate->gossip_key); /* returns the empty string for errors, however, this should be saved as well as it represents an erroneous key */ if (old_gossip_fingerprint==NULL || old_gossip_fingerprint[0]==0 || peerstate->gossip_key_fingerprint==NULL || peerstate->gossip_key_fingerprint[0]==0 || strcasecmp(old_gossip_fingerprint, peerstate->gossip_key_fingerprint)!=0) { peerstate->to_save |= DC_SAVE_ALL; if (old_gossip_fingerprint && old_gossip_fingerprint[0]) { // no degrade event when we recveive just the initial fingerprint peerstate->degrade_event |= DC_DE_FINGERPRINT_CHANGED; } } } success = 1; cleanup: free(old_public_fingerprint); free(old_gossip_fingerprint); return success; } /** * If the fingerprint of the peerstate equals the given fingerprint, the * peerstate is marked as being verified. * * The given fingerprint is present only to ensure the peer has not changed * between fingerprint comparison and calling this function. * * @memberof dc_apeerstate_t * @param peerstate The peerstate object. * @param which_key Which key should be marked as being verified? DC_PS_GOSSIP_KEY (1) or DC_PS_PUBLIC_KEY (2) * @param fingerprint Fingerprint expected in the object * @param verified DC_BIDIRECT_VERIFIED (2): contact verified in both directions * @return 1=the given fingerprint is equal to the peer's fingerprint and * the verified-state is set; you should call dc_apeerstate_save_to_db() * to permanently store this state. * 0=the given fingerprint is not eqial to the peer's fingerprint, * verified-state not changed. */ int dc_apeerstate_set_verified(dc_apeerstate_t* peerstate, int which_key, const char* fingerprint, int verified) { int success = 0; if (peerstate==NULL || (which_key!=DC_PS_GOSSIP_KEY && which_key!=DC_PS_PUBLIC_KEY) || (verified!=DC_BIDIRECT_VERIFIED)) { goto cleanup; } if (which_key==DC_PS_PUBLIC_KEY && peerstate->public_key_fingerprint!=NULL && peerstate->public_key_fingerprint[0]!=0 && fingerprint[0]!=0 && strcasecmp(peerstate->public_key_fingerprint, fingerprint)==0) { peerstate->to_save |= DC_SAVE_ALL; peerstate->verified_key = dc_key_ref(peerstate->public_key); peerstate->verified_key_fingerprint = dc_strdup(peerstate->public_key_fingerprint); success = 1; } if (which_key==DC_PS_GOSSIP_KEY && peerstate->gossip_key_fingerprint!=NULL && peerstate->gossip_key_fingerprint[0]!=0 && fingerprint[0]!=0 && strcasecmp(peerstate->gossip_key_fingerprint, fingerprint)==0) { peerstate->to_save |= DC_SAVE_ALL; peerstate->verified_key = dc_key_ref(peerstate->gossip_key); peerstate->verified_key_fingerprint = dc_strdup(peerstate->gossip_key_fingerprint); success = 1; } cleanup: return success; } int dc_apeerstate_has_verified_key(const dc_apeerstate_t* peerstate, const dc_hash_t* fingerprints) { if (peerstate==NULL || fingerprints==NULL) { return 0; } if (peerstate->verified_key && peerstate->verified_key_fingerprint && dc_hash_find_str(fingerprints, peerstate->verified_key_fingerprint)) { return 1; } return 0; }