Type: refactor Change-Id: I5235bf3e9aff58af6ba2c14e8c6529c4fc9ec86c Signed-off-by: Damjan Marion <damarion@cisco.com>
389 lines
10 KiB
C
389 lines
10 KiB
C
/*
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* Copyright (c) 2018 Cisco and/or its affiliates.
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* Licensed under the Apache License, Version 2.0 (the "License");
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* you may not use this file except in compliance with the License.
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* You may obtain a copy of the License at:
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*
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* http://www.apache.org/licenses/LICENSE-2.0
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*
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* Unless required by applicable law or agreed to in writing, software
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* distributed under the License is distributed on an "AS IS" BASIS,
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* WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
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* See the License for the specific language governing permissions and
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* limitations under the License.
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*/
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#include <vnet/ipsec/ipsec.h>
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#include <vnet/ipsec/ipsec_sa.h>
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#include <vnet/ipsec/ipsec_output.h>
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static clib_error_t *
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test_ipsec_command_fn (vlib_main_t *vm, unformat_input_t *input,
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vlib_cli_command_t *cmd)
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{
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u64 seq_num;
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u32 sa_id;
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sa_id = ~0;
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seq_num = 0;
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while (unformat_check_input (input) != UNFORMAT_END_OF_INPUT)
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{
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if (unformat (input, "sa %d", &sa_id))
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;
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else if (unformat (input, "seq 0x%llx", &seq_num))
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;
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else
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break;
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}
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if (~0 != sa_id)
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{
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ipsec_sa_t *sa;
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u32 sa_index;
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sa_index = ipsec_sa_find_and_lock (sa_id);
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sa = ipsec_sa_get (sa_index);
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sa->seq = seq_num & 0xffffffff;
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sa->seq_hi = seq_num >> 32;
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/* clear the window */
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if (ipsec_sa_is_set_ANTI_REPLAY_HUGE (sa))
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clib_bitmap_zero (sa->replay_window_huge);
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else
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sa->replay_window = 0;
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ipsec_sa_unlock (sa_index);
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}
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else
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{
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return clib_error_return (0, "unknown SA `%U'", format_unformat_error,
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input);
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}
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return (NULL);
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}
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static clib_error_t *
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test_ipsec_spd_outbound_perf_command_fn (vlib_main_t *vm,
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unformat_input_t *input,
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vlib_cli_command_t *cmd)
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{
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clib_error_t *err = 0;
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ipsec_crypto_alg_t crypto_alg = IPSEC_CRYPTO_ALG_AES_GCM_128;
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ipsec_integ_alg_t integ_alg = IPSEC_INTEG_ALG_NONE;
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ipsec_protocol_t proto = IPSEC_PROTOCOL_ESP;
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ipsec_sa_flags_t sa_flags = IPSEC_SA_FLAG_NONE;
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ipsec_key_t ck = { 0 };
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u8 key_data[] = { 31, 32, 33, 34, 35, 36, 37, 38,
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39, 30, 31, 32, 33, 34, 35, 36 };
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ipsec_mk_key (&ck, key_data, 16);
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ipsec_key_t ik = { 0 };
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u32 sa_id = 123456, spi = 654321, salt = 1234, sai;
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u16 udp_src = IPSEC_UDP_PORT_NONE, udp_dst = IPSEC_UDP_PORT_NONE;
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tunnel_t tun = {};
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/* SPD policy */
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ipsec_main_t *im = &ipsec_main;
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ipsec_policy_t *p0 = NULL;
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ipsec_spd_t *spd0;
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uword *pp;
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u32 stat_index, spd_idx, spd_id = 1;
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int is_add = 1;
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int rv;
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ipsec_policy_t *p_vec = NULL;
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u64 i;
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u64 flows = 100;
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u64 t_add_0 = 0;
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u64 t_add_1 = 0;
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u64 t_add = 0;
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u64 t_look_0 = 0;
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u64 t_look_1 = 0;
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u64 t_look = 0;
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u8 flow_cache_enabled = im->output_flow_cache_flag;
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u32 count_cached = 0;
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u32 count_slow_path = 0;
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u32 seed = random_default_seed ();
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u32 *rand_val = NULL;
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u32 ip4_start;
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#define BURST_MAX_SIZE 256
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ipsec_policy_t *policies[BURST_MAX_SIZE];
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ipsec4_spd_5tuple_t ip4_5tuples[BURST_MAX_SIZE];
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u32 burst_size = 10;
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int burst_enabled = 0;
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u64 t0 = clib_cpu_time_now ();
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u64 t1 = 0;
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u32 k = 0, m;
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u64 burst_counter = 0;
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while (unformat_check_input (input) != UNFORMAT_END_OF_INPUT)
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{
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if (unformat (input, "flows %d", &flows))
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;
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else if (unformat (input, "burst %d", &burst_size))
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{
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if (burst_size == 0)
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burst_enabled = 0;
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else
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{
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burst_enabled = 1;
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burst_size = clib_min (burst_size, BURST_MAX_SIZE);
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}
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}
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else
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break;
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}
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vlib_cli_output (vm, "Create env:");
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/* creating a new SA */
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rv = ipsec_sa_add_and_lock (sa_id, spi, proto, crypto_alg, &ck, integ_alg,
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&ik, sa_flags, clib_host_to_net_u32 (salt),
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udp_src, udp_dst, 0, &tun, &sai);
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if (rv)
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{
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err = clib_error_return (0, "create sa failure");
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goto done;
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}
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else
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vlib_cli_output (vm, "\tAdd a new SA");
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/* creating a new SPD */
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rv = ipsec_add_del_spd (vm, spd_id, is_add);
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if (rv)
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{
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err = clib_error_return (0, "create spd failure");
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goto done;
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}
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else
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vlib_cli_output (vm, "\tAdd a new SPD");
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/* vector for spd_policy */
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vec_validate (p_vec, flows + 1);
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vec_validate (rand_val, flows + 1);
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/* fill spd policy */
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for (i = 0; i < flows; i++)
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{
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rand_val[i] = random_u32 (&seed) % flows;
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p_vec[i].type = IPSEC_SPD_POLICY_IP4_OUTBOUND;
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p_vec[i].priority = flows - i;
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p_vec[i].policy = IPSEC_POLICY_ACTION_PROTECT;
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p_vec[i].id = spd_id;
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p_vec[i].sa_id = sa_id;
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p_vec[i].protocol = IP_PROTOCOL_UDP;
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p_vec[i].lport.start = 1;
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p_vec[i].lport.stop = 1;
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p_vec[i].rport.start = 1;
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p_vec[i].rport.stop = 1;
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/* address: 1.0.0.0 as u32 */
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ip4_start = 16777216;
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p_vec[i].laddr.start.ip4.data_u32 =
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clib_host_to_net_u32 (ip4_start + i * 32);
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p_vec[i].laddr.stop.ip4.data_u32 =
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clib_host_to_net_u32 (ip4_start + i * 32);
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p_vec[i].raddr.start.ip4.data_u32 =
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clib_host_to_net_u32 (ip4_start + i * 32);
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p_vec[i].raddr.stop.ip4.data_u32 =
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clib_host_to_net_u32 (ip4_start + i * 32);
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}
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vlib_cli_output (vm, "Add SPD Policy");
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t_add_0 = clib_cpu_time_now ();
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for (i = 0; i < flows; i++)
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{
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rv = ipsec_add_del_policy (vm, &p_vec[i], is_add, &stat_index);
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if (rv)
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{
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clib_warning ("No add SPD Policy: %u", stat_index);
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err = clib_error_return (0, "add SPD Policy failure");
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goto done;
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}
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}
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t_add_1 = clib_cpu_time_now ();
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pp = hash_get (im->spd_index_by_spd_id, spd_id);
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spd_idx = pp[0];
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spd0 = pool_elt_at_index (im->spds, spd_idx);
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vlib_cli_output (vm, "Lookup SPD Policy");
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u64 j = 0;
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u64 n_lookup = 1000 * 1000;
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t_look_0 = clib_cpu_time_now ();
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for (i = 0; i < n_lookup; i++)
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{
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if (flows == j)
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j = 0;
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p0 = NULL;
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if (flow_cache_enabled)
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{
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p0 = ipsec4_out_spd_find_flow_cache_entry (
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im, 0,
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clib_net_to_host_u32 (ip4_start +
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((flows - 1) - rand_val[j]) * 32),
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clib_net_to_host_u32 (ip4_start +
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((flows - 1) - rand_val[j]) * 32),
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clib_net_to_host_u16 (1), clib_net_to_host_u16 (1));
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if (p0)
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count_cached++;
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}
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if (p0 == NULL)
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{
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if (burst_enabled)
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{
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u32 src_addr = (ip4_start + ((flows - 1) - rand_val[j]) * 32);
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u32 dst_addr = (ip4_start + ((flows - 1) - rand_val[j]) * 32);
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ipsec4_spd_5tuple_t ip4_5tuple = {
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.ip4_addr = { (ip4_address_t) src_addr,
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(ip4_address_t) dst_addr },
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.port = { 1, 1 },
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.proto = IP_PROTOCOL_UDP
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};
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if (k == burst_size)
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{
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k = 0;
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clib_memset (policies, 0,
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burst_size * sizeof (ipsec_policy_t *));
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burst_counter += ipsec_output_policy_match_n (
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spd0, ip4_5tuples, policies, burst_size,
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flow_cache_enabled);
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for (m = 0; m < burst_size; m++)
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{
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ASSERT (policies[m] != 0);
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}
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}
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clib_memcpy (ip4_5tuples + k, &ip4_5tuple,
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sizeof (ipsec4_spd_5tuple_t));
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k++;
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}
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else
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{
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p0 = ipsec_output_policy_match (
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spd0, IP_PROTOCOL_UDP,
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(ip4_start + ((flows - 1) - rand_val[j]) * 32),
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(ip4_start + ((flows - 1) - rand_val[j]) * 32), 1, 1,
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flow_cache_enabled);
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}
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count_slow_path++;
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}
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j++;
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if (!burst_enabled)
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ASSERT (p0 != 0);
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}
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if (burst_enabled && k > 0)
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{
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clib_memset (policies, 0, k * sizeof (ipsec_policy_t *));
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burst_counter += ipsec_output_policy_match_n (
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spd0, ip4_5tuples, policies, k, flow_cache_enabled);
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for (m = 0; m < k; m++)
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{
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ASSERT (policies[m] != 0);
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}
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}
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t_look_1 = clib_cpu_time_now ();
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t_add = (t_add_1 - t_add_0);
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t_look = (t_look_1 - t_look_0);
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vlib_cli_output (vm, "Results Outbound:");
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vlib_cli_output (vm, "Time to add %u flows: \t\t%12.10f s", flows,
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(t_add / vm->clib_time.clocks_per_second));
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vlib_cli_output (vm, "Average time to add 1 flow: \t\t%12.10f s",
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((t_add / flows) / vm->clib_time.clocks_per_second));
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vlib_cli_output (vm, "Time to lookup %u flows: \t\t%12.10f s", flows,
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(t_look / vm->clib_time.clocks_per_second));
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vlib_cli_output (vm, "Average time to lookup 1 flow: \t\t%12.10f s",
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((t_look / n_lookup) / vm->clib_time.clocks_per_second));
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vlib_cli_output (vm, " ");
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vlib_cli_output (vm, "Cycle CPU to add %u flows: \t\t%32lu cycles", flows,
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t_add);
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vlib_cli_output (vm, "Average cycle CPU to add 1 flow: \t%32lu cycles",
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t_add / flows);
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vlib_cli_output (vm, "Cycle CPU to lookup %u flows: \t%32lu cycles", flows,
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t_look);
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vlib_cli_output (vm, "Average cycle CPU to lookup 1 flow: \t%32lu cycles",
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t_look / n_lookup);
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if (count_slow_path || count_cached)
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vlib_cli_output (
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vm, "flow cache hit rate: \t\t%12.10f\n cached: \t%d\n slow_path: \t%d",
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((float) count_cached) / ((float) count_cached + count_slow_path),
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count_cached, count_slow_path);
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if (burst_enabled)
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vlib_cli_output (vm, "Total number of packets matched in bursts: \t\t%d\n",
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burst_counter);
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done:
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vlib_cli_output (vm, "Cleaning:");
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/* delete SPD policy */
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is_add = 0;
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for (i = 0; i < flows; i++)
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{
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rv = ipsec_add_del_policy (vm, &p_vec[i], is_add, &stat_index);
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if (rv)
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{
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clib_warning ("No delete SPD Policy: %u", i);
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err = clib_error_return (0, "delete SPD Policy failure");
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}
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}
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vlib_cli_output (vm, "\tDelete all SPD Policy");
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/* delete SPD */
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rv = ipsec_add_del_spd (vm, spd_id, is_add);
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if (rv)
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{
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err = clib_error_return (0, "delete spd failure");
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}
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else
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vlib_cli_output (vm, "\tDelete SPD");
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/* delete SA */
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rv = ipsec_sa_unlock_id (sa_id);
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if (rv)
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{
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err = clib_error_return (0, "delete sa failure");
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}
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else
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vlib_cli_output (vm, "\tDelete SA");
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t1 = clib_cpu_time_now ();
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vlib_cli_output (vm, "Time for test: \t%12.10f s",
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((t1 - t0) / vm->clib_time.clocks_per_second));
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vec_free (p_vec);
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vlib_cli_output (vm, "End");
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return (err);
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}
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VLIB_CLI_COMMAND (test_ipsec_spd_perf_command, static) = {
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.path = "test ipsec_spd_outbound_perf",
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.short_help = "test ipsec_spd_outbound_perf flows <n_flows>",
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.function = test_ipsec_spd_outbound_perf_command_fn,
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};
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VLIB_CLI_COMMAND (test_ipsec_command, static) = {
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.path = "test ipsec",
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.short_help = "test ipsec sa <ID> seq-num <VALUE>",
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.function = test_ipsec_command_fn,
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};
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/*
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* fd.io coding-style-patch-verification: ON
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*
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* Local Variables:
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* eval: (c-set-style "gnu")
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* End:
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*/
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