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@ -24,9 +24,9 @@
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namespace srslte {
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pdcp_entity::pdcp_entity() {}
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pdcp_entity_nr::pdcp_entity_nr() {}
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pdcp_entity::~pdcp_entity() {}
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pdcp_entity_nr::~pdcp_entity_nr() {}
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void pdcp_entity_nr::init(srsue::rlc_interface_pdcp* rlc_,
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srsue::rrc_interface_pdcp* rrc_,
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@ -69,7 +69,7 @@ void pdcp_entity_nr::init(srsue::rlc_interface_pdcp* rlc_,
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}
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// Reestablishment procedure: 36.323 5.2
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void pdcp_entity::reestablish()
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void pdcp_entity_nr::reestablish()
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{
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log->info("Re-establish %s with bearer ID: %d\n", rrc->get_rb_name(lcid).c_str(), cfg.bearer_id);
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// For SRBs
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@ -96,7 +96,7 @@ void pdcp_entity::reestablish()
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}
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// Used to stop/pause the entity (called on RRC conn release)
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void pdcp_entity::reset()
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void pdcp_entity_nr::reset()
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{
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active = false;
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if (log) {
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@ -104,13 +104,8 @@ void pdcp_entity::reset()
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}
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}
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bool pdcp_entity::is_active()
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{
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return active;
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}
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// SDAP/RRC interface
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void pdcp_entity::write_sdu(unique_byte_buffer_t sdu, bool blocking)
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void pdcp_entity_nr::write_sdu(unique_byte_buffer_t sdu, bool blocking)
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{
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log->info_hex(sdu->msg, sdu->N_bytes,
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"TX %s SDU, SN: %d, do_integrity = %s, do_encryption = %s",
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@ -149,34 +144,8 @@ void pdcp_entity::write_sdu(unique_byte_buffer_t sdu, bool blocking)
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rlc->write_sdu(lcid, std::move(sdu), blocking);
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}
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void pdcp_entity::config_security(uint8_t *k_rrc_enc_,
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uint8_t *k_rrc_int_,
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uint8_t *k_up_enc_,
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CIPHERING_ALGORITHM_ID_ENUM cipher_algo_,
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INTEGRITY_ALGORITHM_ID_ENUM integ_algo_)
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{
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for(int i=0; i<32; i++)
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{
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k_rrc_enc[i] = k_rrc_enc_[i];
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k_rrc_int[i] = k_rrc_int_[i];
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k_up_enc[i] = k_up_enc_[i];
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}
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cipher_algo = cipher_algo_;
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integ_algo = integ_algo_;
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}
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void pdcp_entity::enable_integrity()
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{
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do_integrity = true;
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}
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void pdcp_entity::enable_encryption()
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{
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do_encryption = true;
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}
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// RLC interface
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void pdcp_entity::write_pdu(unique_byte_buffer_t pdu)
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void pdcp_entity_nr::write_pdu(unique_byte_buffer_t pdu)
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{
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log->info_hex(pdu->msg,
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pdu->N_bytes,
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@ -242,7 +211,7 @@ exit:
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* Ref: 3GPP TS 36.323 v10.1.0 Section 5.1.2
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***************************************************************************/
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// DRBs mapped on RLC UM (5.1.2.1.3)
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void pdcp_entity::handle_um_drb_pdu(const srslte::unique_byte_buffer_t &pdu)
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void pdcp_entity_nr::handle_um_drb_pdu(const srslte::unique_byte_buffer_t &pdu)
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{
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uint32_t sn;
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if (12 == cfg.sn_len) {
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@ -272,7 +241,7 @@ void pdcp_entity::handle_um_drb_pdu(const srslte::unique_byte_buffer_t &pdu)
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}
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// DRBs mapped on RLC AM, without re-ordering (5.1.2.1.2)
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void pdcp_entity::handle_am_drb_pdu(const srslte::unique_byte_buffer_t &pdu)
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void pdcp_entity_nr::handle_am_drb_pdu(const srslte::unique_byte_buffer_t &pdu)
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{
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uint32_t sn, count;
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pdcp_unpack_data_pdu_long_sn(pdu.get(), &sn);
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@ -331,206 +300,6 @@ void pdcp_entity::handle_am_drb_pdu(const srslte::unique_byte_buffer_t &pdu)
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/****************************************************************************
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* Security functions
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***************************************************************************/
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void pdcp_entity::integrity_generate( uint8_t *msg,
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uint32_t msg_len,
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uint8_t *mac)
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{
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switch(integ_algo)
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{
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case INTEGRITY_ALGORITHM_ID_EIA0:
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break;
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case INTEGRITY_ALGORITHM_ID_128_EIA1:
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security_128_eia1(&k_rrc_int[16],
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tx_count,
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cfg.bearer_id - 1,
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cfg.direction,
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msg,
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msg_len,
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mac);
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break;
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case INTEGRITY_ALGORITHM_ID_128_EIA2:
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security_128_eia2(&k_rrc_int[16],
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tx_count,
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cfg.bearer_id - 1,
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cfg.direction,
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msg,
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msg_len,
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mac);
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break;
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default:
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break;
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}
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log->debug("Integrity gen input:\n");
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log->debug_hex(&k_rrc_int[16], 16, " K_rrc_int");
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log->debug(" Local count: %d\n", tx_count);
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log->debug(" Bearer ID: %d\n", cfg.bearer_id);
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log->debug(" Direction: %s\n", (cfg.direction == SECURITY_DIRECTION_DOWNLINK) ? "Downlink" : "Uplink");
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log->debug_hex(msg, msg_len, " Message");
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log->debug_hex(mac, 4, "MAC (generated)");
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}
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bool pdcp_entity::integrity_verify(uint8_t *msg,
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uint32_t count,
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uint32_t msg_len,
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uint8_t *mac)
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{
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uint8_t mac_exp[4] = {0x00};
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uint8_t i = 0;
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bool isValid = true;
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switch(integ_algo)
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{
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case INTEGRITY_ALGORITHM_ID_EIA0:
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break;
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case INTEGRITY_ALGORITHM_ID_128_EIA1:
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security_128_eia1(&k_rrc_int[16],
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count,
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cfg.bearer_id - 1,
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(cfg.direction == SECURITY_DIRECTION_DOWNLINK) ? (SECURITY_DIRECTION_UPLINK) : (SECURITY_DIRECTION_DOWNLINK),
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msg,
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msg_len,
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mac_exp);
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break;
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case INTEGRITY_ALGORITHM_ID_128_EIA2:
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security_128_eia2(&k_rrc_int[16],
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count,
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cfg.bearer_id - 1,
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(cfg.direction == SECURITY_DIRECTION_DOWNLINK) ? (SECURITY_DIRECTION_UPLINK) : (SECURITY_DIRECTION_DOWNLINK),
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msg,
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msg_len,
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mac_exp);
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break;
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default:
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break;
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}
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log->debug("Integrity check input:\n");
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log->debug_hex(&k_rrc_int[16], 16, " K_rrc_int");
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log->debug(" Local count: %d\n", count);
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log->debug(" Bearer ID: %d\n", cfg.bearer_id);
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log->debug(" Direction: %s\n", (cfg.direction == SECURITY_DIRECTION_DOWNLINK) ? "Uplink" : "Downlink");
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log->debug_hex(msg, msg_len, " Message");
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switch(integ_algo)
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{
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case INTEGRITY_ALGORITHM_ID_EIA0:
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break;
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case INTEGRITY_ALGORITHM_ID_128_EIA1: // Intentional fall-through
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case INTEGRITY_ALGORITHM_ID_128_EIA2:
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for(i=0; i<4; i++){
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if(mac[i] != mac_exp[i]){
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log->error_hex(mac_exp, 4, "MAC mismatch (expected)");
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log->error_hex(mac, 4, "MAC mismatch (found)");
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isValid = false;
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break;
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}
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}
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if (isValid){
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log->info_hex(mac_exp, 4, "MAC match");
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}
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break;
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default:
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break;
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}
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return isValid;
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}
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void pdcp_entity::cipher_encrypt(uint8_t *msg,
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uint32_t msg_len,
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uint8_t *ct)
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{
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byte_buffer_t ct_tmp;
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uint8_t *k_enc;
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// If control plane use RRC encrytion key. If data use user plane key
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if (cfg.is_control) {
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k_enc = k_rrc_enc;
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} else {
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k_enc = k_up_enc;
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}
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log->debug("Cipher encrypt input:\n");
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log->debug_hex(&k_enc[16], 16, " K_enc");
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log->debug(" Local count: %d\n", tx_count);
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log->debug(" TX HFN: %d COUNT %d\n", (tx_count >> cfg.sn_len), (tx_count << (32-cfg.sn_len)) >> (32-cfg.sn_len));
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log->debug(" Bearer ID: %d\n", cfg.bearer_id);
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log->debug(" Direction: %s\n", (cfg.direction == SECURITY_DIRECTION_DOWNLINK) ? "Downlink" : "Uplink");
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switch(cipher_algo)
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{
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case CIPHERING_ALGORITHM_ID_EEA0:
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break;
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case CIPHERING_ALGORITHM_ID_128_EEA1:
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security_128_eea1(&(k_enc[16]),
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tx_count,
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cfg.bearer_id - 1,
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cfg.direction,
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msg,
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msg_len,
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ct_tmp.msg);
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memcpy(ct, ct_tmp.msg, msg_len);
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break;
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case CIPHERING_ALGORITHM_ID_128_EEA2:
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security_128_eea2(&(k_enc[16]),
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tx_count,
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cfg.bearer_id - 1,
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cfg.direction,
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msg,
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msg_len,
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ct_tmp.msg);
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memcpy(ct, ct_tmp.msg, msg_len);
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break;
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default:
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break;
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}
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}
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void pdcp_entity::cipher_decrypt(uint8_t *ct,
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uint32_t count,
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uint32_t ct_len,
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uint8_t *msg)
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{
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byte_buffer_t msg_tmp;
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uint8_t *k_enc;
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// If control plane use RRC encrytion key. If data use user plane key
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if (cfg.is_control) {
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k_enc = k_rrc_enc;
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} else {
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k_enc = k_up_enc;
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}
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switch(cipher_algo)
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{
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case CIPHERING_ALGORITHM_ID_EEA0:
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break;
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case CIPHERING_ALGORITHM_ID_128_EEA1:
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security_128_eea1(&(k_enc[16]),
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count,
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cfg.bearer_id - 1,
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(cfg.direction == SECURITY_DIRECTION_DOWNLINK) ? (SECURITY_DIRECTION_UPLINK) : (SECURITY_DIRECTION_DOWNLINK),
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ct,
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ct_len,
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msg_tmp.msg);
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memcpy(msg, msg_tmp.msg, ct_len);
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break;
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case CIPHERING_ALGORITHM_ID_128_EEA2:
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security_128_eea2(&(k_enc[16]),
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count,
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cfg.bearer_id - 1,
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(cfg.direction == SECURITY_DIRECTION_DOWNLINK) ? (SECURITY_DIRECTION_UPLINK) : (SECURITY_DIRECTION_DOWNLINK),
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ct,
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ct_len,
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msg_tmp.msg);
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memcpy(msg, msg_tmp.msg, ct_len);
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break;
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default:
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break;
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}
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}
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uint32_t pdcp_entity::get_dl_count()
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{
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return rx_count;
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@ -546,7 +315,6 @@ uint32_t pdcp_entity::get_ul_count()
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* Pack/Unpack helper functions
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* Ref: 3GPP TS 38.323 v15.2.0
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***************************************************************************/
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void pdcp_pack_control_pdu(uint32_t sn, byte_buffer_t *sdu)
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{
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// Make room and add header
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