Kea 3.2.1-git
test_control.cc
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1// Copyright (C) 2012-2026 Internet Systems Consortium, Inc. ("ISC")
2//
3// This Source Code Form is subject to the terms of the Mozilla Public
4// License, v. 2.0. If a copy of the MPL was not distributed with this
5// file, You can obtain one at http://mozilla.org/MPL/2.0/.
6
7#include <config.h>
8
10#include <perfdhcp/receiver.h>
12#include <perfdhcp/perf_pkt4.h>
13#include <perfdhcp/perf_pkt6.h>
14
16#include <dhcp/libdhcp++.h>
17#include <dhcp/iface_mgr.h>
18#include <dhcp/dhcp4.h>
19#include <dhcp/option6_ia.h>
20#include <dhcp/option6_iaaddr.h>
22#include <dhcp/option_int.h>
24
25#include <boost/date_time/posix_time/posix_time.hpp>
26#include <algorithm>
27#include <fstream>
28#include <stdio.h>
29#include <stdlib.h>
30#include <stdint.h>
31#include <unistd.h>
32#include <signal.h>
33#include <sstream>
34#include <sys/wait.h>
35
36using namespace std;
37using namespace boost::posix_time;
38using namespace isc;
39using namespace isc::dhcp;
40using namespace isc::asiolink;
41
42namespace isc {
43namespace perfdhcp {
44
45bool TestControl::interrupted_ = false;
46
47bool
49 uint32_t const wait_time = options_.getExitWaitTime();
50
51 // If we care and not all packets are in yet
52 if (wait_time && !haveAllPacketsBeenReceived()) {
53 const ptime now = microsec_clock::universal_time();
54
55 // Init the end time if it hasn't started yet
56 if (exit_time_.is_not_a_date_time()) {
57 exit_time_ = now + time_duration(microseconds(wait_time));
58 }
59
60 // If we're not at end time yet, return true
61 return (now < exit_time_);
62 }
63
64 // No need to wait, return false;
65 return (false);
66}
67
68bool
70 const uint8_t& ipversion = options_.getIpVersion();
71 const std::vector<int>& num_request = options_.getNumRequests();
72 const size_t& num_request_size = num_request.size();
73
74 if (num_request_size == 0) {
75 return (false);
76 }
77
78 uint32_t responses = 0;
79 uint32_t requests = num_request[0];
80 if (num_request_size >= 2) {
81 requests += num_request[1];
82 }
83
84 if (ipversion == 4) {
87 } else {
90 }
91
92 return (responses == requests);
93}
94
95void
97 // When Renews are not sent, Reply packets are not cached so there
98 // is nothing to do.
99 if (options_.getRenewRate() == 0) {
100 return;
101 }
102
103 static boost::posix_time::ptime last_clean =
104 microsec_clock::universal_time();
105
106 // Check how much time has passed since last cleanup.
107 time_period time_since_clean(last_clean,
108 microsec_clock::universal_time());
109 // Cleanup every 1 second.
110 if (time_since_clean.length().total_seconds() >= 1) {
111 // Calculate how many cached packets to remove. Actually we could
112 // just leave enough packets to handle Renews for 1 second but
113 // since we want to randomize leases to be renewed so leave 5
114 // times more packets to randomize from.
116 if (reply_storage_.size() > 5 * size_t(options_.getRenewRate())) {
117 reply_storage_.clear(reply_storage_.size() -
118 5 * options_.getRenewRate());
119 }
120 // Remember when we performed a cleanup for the last time.
121 // We want to do the next cleanup not earlier than in one second.
122 last_clean = microsec_clock::universal_time();
123 }
124}
125
126void
127TestControl::copyIaOptions(const Pkt6Ptr& pkt_from, Pkt6Ptr& pkt_to) {
128 if (!pkt_from || !pkt_to) {
129 isc_throw(BadValue, "NULL pointers must not be specified as arguments"
130 " for the copyIaOptions function");
131 }
132 // IA_NA
135 OptionPtr option = pkt_from->getOption(D6O_IA_NA);
136 if (!option) {
137 isc_throw(NotFound, "IA_NA option not found in the"
138 " server's response");
139 }
140 pkt_to->addOption(option);
141 }
142 // IA_PD
145 OptionPtr option = pkt_from->getOption(D6O_IA_PD);
146 if (!option) {
147 isc_throw(NotFound, "IA_PD option not found in the"
148 " server's response");
149 }
150 pkt_to->addOption(option);
151 }
152}
153
154std::string
155TestControl::byte2Hex(const uint8_t b) {
156 const int b1 = b / 16;
157 const int b0 = b % 16;
158 ostringstream stream;
159 stream << std::hex << b1 << b0 << std::dec;
160 return (stream.str());
161}
162
164TestControl::createMessageFromAck(const uint16_t msg_type,
165 const dhcp::Pkt4Ptr& ack) {
166 // Restrict messages to Release and Renew.
167 if (msg_type != DHCPREQUEST && msg_type != DHCPRELEASE) {
168 isc_throw(isc::BadValue, "invalid message type " << msg_type
169 << " to be created from Reply, expected DHCPREQUEST or"
170 " DHCPRELEASE");
171 }
172
173 // Get the string representation of the message - to be used for error
174 // logging purposes.
175 auto msg_type_str = [=]() -> const char* {
176 return (msg_type == DHCPREQUEST ? "Request" : "Release");
177 };
178
179 if (!ack) {
180 isc_throw(isc::BadValue, "Unable to create "
181 << msg_type_str()
182 << " from a null DHCPACK message");
183 } else if (ack->getYiaddr().isV4Zero()) {
185 "Unable to create "
186 << msg_type_str()
187 << " from a DHCPACK message containing yiaddr of 0");
188 }
189 Pkt4Ptr msg(new Pkt4(msg_type, generateTransid()));
190 msg->setCiaddr(ack->getYiaddr());
191 msg->setHWAddr(ack->getHWAddr());
192 msg->addOption(generateClientId(msg->getHWAddr()));
193 if (msg_type == DHCPRELEASE) {
194 // RFC 2132: DHCPRELEASE MUST include server ID.
195 if (options_.isUseFirst()) {
196 // Honor the '-1' flag if it exists.
197 if (first_packet_serverid_.empty()) {
199 "Unable to create "
200 << msg_type_str()
201 << "from the first packet which lacks the server "
202 "identifier option");
203 }
204 msg->addOption(Option::factory(Option::V4,
207 } else {
208 // Otherwise take it from the DHCPACK message.
209 OptionPtr server_identifier(
210 ack->getOption(DHO_DHCP_SERVER_IDENTIFIER));
211 if (!server_identifier) {
213 "Unable to create "
214 << msg_type_str()
215 << "from a DHCPACK message without the server "
216 "identifier option");
217 }
218 msg->addOption(server_identifier);
219 }
220 }
221 return (msg);
222}
223
226 const dhcp::Pkt6Ptr& reply) {
227 // Restrict messages to Release and Renew.
228 if (msg_type != DHCPV6_RENEW && msg_type != DHCPV6_RELEASE) {
229 isc_throw(isc::BadValue, "invalid message type " << msg_type
230 << " to be created from Reply, expected DHCPV6_RENEW or"
231 " DHCPV6_RELEASE");
232 }
233
234 // Get the string representation of the message - to be used for error
235 // logging purposes.
236 auto msg_type_str = [=]() -> const char* {
237 return (msg_type == DHCPV6_RENEW ? "Renew" : "Release");
238 };
239
240 // Reply message must be specified.
241 if (!reply) {
242 isc_throw(isc::BadValue, "Unable to create " << msg_type_str()
243 << " message from the Reply message because the instance of"
244 " the Reply message is NULL");
245 }
246
247 Pkt6Ptr msg(new Pkt6(msg_type, generateTransid()));
248 // Client id.
249 OptionPtr opt_clientid = reply->getOption(D6O_CLIENTID);
250 if (!opt_clientid) {
251 isc_throw(isc::Unexpected, "failed to create " << msg_type_str()
252 << " message because client id option has not been found"
253 " in the Reply message");
254 }
255 msg->addOption(opt_clientid);
256 // Server id.
257 OptionPtr opt_serverid = reply->getOption(D6O_SERVERID);
258 if (!opt_serverid) {
259 isc_throw(isc::Unexpected, "failed to create " << msg_type_str()
260 << " because server id option has not been found in the"
261 " Reply message");
262 }
263 msg->addOption(opt_serverid);
264 copyIaOptions(reply, msg);
265 return (msg);
266}
267
270 const OptionBuffer& buf) {
271 if (buf.size() == 2) {
272 return (OptionPtr(new Option(Option::V6, D6O_ELAPSED_TIME, buf)));
273 } else if (buf.size() == 0) {
275 OptionBuffer(2, 0))));
276 }
278 "elapsed time option buffer size has to be 0 or 2");
279}
280
283 const OptionBuffer& buf) {
284 OptionPtr opt(new Option(u, type, buf));
285 return (opt);
286}
287
290 const OptionBuffer& buf) {
292 const uint8_t buf_array[] = {
293 0, 0, 0, 1, // IAID = 1
294 0, 0, 3600 >> 8, 3600 & 0xff, // T1 = 3600
295 0, 0, 5400 >> 8, 5400 & 0xff, // T2 = 5400
296 };
297 OptionBuffer buf_ia_na(buf_array, buf_array + sizeof(buf_array));
298 for (size_t i = 0; i < buf.size(); ++i) {
299 buf_ia_na.push_back(buf[i]);
300 }
301 return (OptionPtr(new Option(Option::V6, D6O_IA_NA, buf_ia_na)));
302}
303
306 const OptionBuffer& buf) {
308 static const uint8_t buf_array[] = {
309 0, 0, 0, 1, // IAID = 1
310 0, 0, 3600 >> 8, 3600 & 0xff, // T1 = 3600
311 0, 0, 5400 >> 8, 5400 & 0xff, // T2 = 5400
312 };
313 OptionBuffer buf_ia_pd(buf_array, buf_array + sizeof(buf_array));
314 // Append sub-options to IA_PD.
315 buf_ia_pd.insert(buf_ia_pd.end(), buf.begin(), buf.end());
316 return (OptionPtr(new Option(Option::V6, D6O_IA_PD, buf_ia_pd)));
317}
318
319
325
328 uint16_t,
329 const OptionBuffer&) {
330 const uint8_t buf_array[] = {
333 };
334 OptionBuffer buf_with_options(buf_array, buf_array + sizeof(buf_array));
335 return (OptionPtr(new Option(Option::V6, D6O_ORO, buf_with_options)));
336}
337
338
341 uint16_t type,
342 const OptionBuffer& buf) {
343 const uint8_t buf_array[] = {
351 };
352
353 OptionBuffer buf_with_options(buf_array, buf_array + sizeof(buf_array));
354 OptionPtr opt(new Option(u, type, buf));
355 opt->setData(buf_with_options.begin(), buf_with_options.end());
356 return (opt);
357}
358
359std::vector<uint8_t>
362 // if we are using the -M option return a random one from the list...
363 if (macs.size() > 0) {
364 uint16_t r = random_generator_->generate();
365 if (r >= macs.size()) {
366 r = 0;
367 }
368 return (macs[r]);
369
370 } else {
371 // ... otherwise use the standard behavior
372 uint32_t clients_num = options_.getClientsNum();
373 if (clients_num < 2) {
374 return (options_.getMacTemplate());
375 }
376 // Get the base MAC address. We are going to randomize part of it.
377 std::vector<uint8_t> mac_addr(options_.getMacTemplate());
378 if (mac_addr.size() != HW_ETHER_LEN) {
379 isc_throw(BadValue, "invalid MAC address template specified");
380 }
381 uint32_t r = macaddr_gen_->generate();
382 randomized = 0;
383 // Randomize MAC address octets.
384 for (std::vector<uint8_t>::iterator it = mac_addr.end() - 1;
385 it >= mac_addr.begin();
386 --it) {
387 // Add the random value to the current octet.
388 (*it) += r;
389 ++randomized;
390 if (r < 256) {
391 // If we are here it means that there is no sense
392 // to randomize the remaining octets of MAC address
393 // because the following bytes of random value
394 // are zero and it will have no effect.
395 break;
396 }
397 // Randomize the next octet with the following
398 // byte of random value.
399 r >>= 8;
400 }
401 return (mac_addr);
402 }
403}
404
407 vector<uint8_t> client_id;
408 client_id.push_back(static_cast<uint8_t>(hwaddr->htype_));
409 for (uint8_t const& byte : hwaddr->hwaddr_) {
410 client_id.push_back(byte);
411 }
413 client_id)));
414}
415
416std::vector<uint8_t>
417TestControl::generateDuid(uint8_t& randomized) {
418 std::vector<uint8_t> mac_addr(generateMacAddress(randomized));
420 // pick a random mac address if we are using option -M..
421 if (macs.size() > 0) {
422 uint16_t r = random_generator_->generate();
423 if (r >= macs.size()) {
424 r = 0;
425 }
426 std::vector<uint8_t> mac = macs[r];
427 // DUID_LL is in this format
428 // 0 1 2 3
429 // 0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1
430 // +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
431 // | 3 | hardware type (16 bits) |
432 // +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
433 // . .
434 // . link-layer address (variable length) .
435 // . .
436 // +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
437
438 // No C++11 so initializer list support, building a vector<uint8_t> is a
439 // pain...
440 uint8_t duid_ll[] = {0, 3, 0, 1, 0, 0, 0, 0, 0, 0};
441 // copy duid_ll array into the vector
442 std::vector<uint8_t> duid(duid_ll,
443 duid_ll + sizeof(duid_ll) / sizeof(duid_ll[0]));
444 // put the mac address bytes at the end
445 std::copy(mac.begin(), mac.end(), duid.begin() + 4);
446 return (duid);
447 } else {
448 uint32_t clients_num = options_.getClientsNum();
449 if ((clients_num == 0) || (clients_num == 1)) {
450 return (options_.getDuidTemplate());
451 }
452 // Get the base DUID. We are going to randomize part of it.
453 std::vector<uint8_t> duid(options_.getDuidTemplate());
455 duid.resize(duid.size());
456 std::copy(mac_addr.begin(), mac_addr.end(),
457 duid.begin() + duid.size() - mac_addr.size());
458 return (duid);
459 }
460}
461
462int
464 int elp_offset = options_.getIpVersion() == 4 ?
465 DHCPV4_ELAPSED_TIME_OFFSET : DHCPV6_ELAPSED_TIME_OFFSET;
466 if (options_.getElapsedTimeOffset() > 0) {
467 elp_offset = options_.getElapsedTimeOffset();
468 }
469 return (elp_offset);
470}
471
472template<class T>
473uint32_t
474TestControl::getElapsedTime(const T& pkt1, const T& pkt2) {
475 using namespace boost::posix_time;
476 ptime pkt1_time = pkt1->getTimestamp();
477 ptime pkt2_time = pkt2->getTimestamp();
478 if (pkt1_time.is_not_a_date_time() ||
479 pkt2_time.is_not_a_date_time()) {
480 isc_throw(InvalidOperation, "packet timestamp not set");;
481 }
482 time_period elapsed_period(pkt1_time, pkt2_time);
483 return (elapsed_period.is_null() ? 0 :
484 elapsed_period.length().total_milliseconds());
485}
486
487int
488TestControl::getRandomOffset(const int arg_idx) const {
489 int rand_offset = options_.getIpVersion() == 4 ?
490 DHCPV4_RANDOMIZATION_OFFSET : DHCPV6_RANDOMIZATION_OFFSET;
491 if (options_.getRandomOffset().size() > size_t(arg_idx)) {
492 rand_offset = options_.getRandomOffset()[arg_idx];
493 }
494 return (rand_offset);
495}
496
497int
499 int rip_offset = options_.getIpVersion() == 4 ?
500 DHCPV4_REQUESTED_IP_OFFSET : DHCPV6_IA_NA_OFFSET;
501 if (options_.getRequestedIpOffset() > 0) {
502 rip_offset = options_.getRequestedIpOffset();
503 }
504 return (rip_offset);
505}
506
507int
509 int srvid_offset = options_.getIpVersion() == 4 ?
510 DHCPV4_SERVERID_OFFSET : DHCPV6_SERVERID_OFFSET;
511 if (options_.getServerIdOffset() > 0) {
512 srvid_offset = options_.getServerIdOffset();
513 }
514 return (srvid_offset);
515}
516
518TestControl::getTemplateBuffer(const size_t idx) const {
519 if (template_buffers_.size() > idx) {
520 return (template_buffers_[idx]);
521 }
522 isc_throw(OutOfRange, "invalid buffer index");
523}
524
525int
526TestControl::getTransactionIdOffset(const int arg_idx) const {
527 int xid_offset = options_.getIpVersion() == 4 ?
528 DHCPV4_TRANSID_OFFSET : DHCPV6_TRANSID_OFFSET;
529 if (options_.getTransactionIdOffset().size() > size_t(arg_idx)) {
530 xid_offset = options_.getTransactionIdOffset()[arg_idx];
531 }
532 return (xid_offset);
533}
534
535void
537 int status = 0;
538 while (wait3(&status, WNOHANG, NULL) > 0) {
539 // continue
540 }
541}
542
543void
547
548void
550 template_packets_v4_.clear();
551 template_packets_v6_.clear();
552 template_buffers_.clear();
553 std::vector<std::string> template_files = options_.getTemplateFiles();
554 for (auto const& it : template_files) {
556 }
557}
558
559void
560TestControl::sendPackets(const uint64_t packets_num,
561 const bool preload /* = false */) {
562 for (uint64_t i = packets_num; i > 0; --i) {
563 if (options_.getIpVersion() == 4) {
564 // No template packets means that no -T option was specified.
565 // We have to build packets ourselves.
566 if (template_buffers_.empty()) {
567 sendDiscover4(preload);
568 } else {
571 sendDiscover4(template_buffers_[0], preload);
572 }
573 } else {
574 // No template packets means that no -T option was specified.
575 // We have to build packets ourselves.
576 if (template_buffers_.empty()) {
577 sendSolicit6(preload);
578 } else {
581 sendSolicit6(template_buffers_[0], preload);
582 }
583 }
584 }
585}
586
587uint64_t
589 const uint64_t msg_num) {
590 for (uint64_t i = 0; i < msg_num; ++i) {
591 if (!sendMessageFromAck(msg_type)) {
592 return (i);
593 }
594 }
595 return (msg_num);
596}
597
598uint64_t
600 const uint64_t msg_num) {
601 for (uint64_t i = 0; i < msg_num; ++i) {
602 if (!sendMessageFromReply(msg_type)) {
603 return (i);
604 }
605 }
606 return (msg_num);
607}
608
609void
611 if (options_.testDiags('a')) {
612 // Print all command line parameters.
614 // Print MAC and DUID.
615 std::cout << "Set MAC to " << vector2Hex(options_.getMacTemplate(), "::")
616 << std::endl;
617 if (options_.getDuidTemplate().size() > 0) {
618 std::cout << "Set DUID to " << vector2Hex(options_.getDuidTemplate()) << std::endl;
619 }
620 }
621}
622
623void
624TestControl::printTemplate(const uint8_t packet_type) const {
625 std::string hex_buf;
626 int arg_idx = 0;
627 if (options_.getIpVersion() == 4) {
628 if (packet_type == DHCPREQUEST) {
629 arg_idx = 1;
630 }
631 std::map<uint8_t, dhcp::Pkt4Ptr>::const_iterator pkt_it =
632 template_packets_v4_.find(packet_type);
633 if ((pkt_it != template_packets_v4_.end()) &&
634 pkt_it->second) {
635 hex_buf = vector2Hex(pkt_it->second->getBuffer().getVector());
636 }
637 } else if (options_.getIpVersion() == 6) {
638 if (packet_type == DHCPV6_REQUEST) {
639 arg_idx = 1;
640 }
641 std::map<uint8_t, dhcp::Pkt6Ptr>::const_iterator pkt_it =
642 template_packets_v6_.find(packet_type);
643 if (pkt_it != template_packets_v6_.end() &&
644 pkt_it->second) {
645 hex_buf = vector2Hex(pkt_it->second->getBuffer().getVector());
646 }
647 }
648 std::cout << "xid-offset=" << getTransactionIdOffset(arg_idx) << std::endl;
649 std::cout << "random-offset=" << getRandomOffset(arg_idx) << std::endl;
650 if (arg_idx > 0) {
651 std::cout << "srvid-offset=" << getServerIdOffset() << std::endl;
652 std::cout << "time-offset=" << getElapsedTimeOffset() << std::endl;
653 std::cout << "ip-offset=" << getRequestedIpOffset() << std::endl;
654 }
655
656 std::cout << "contents: " << std::endl;
657 int line_len = 32;
658 int i = 0;
659 // Save cout fmtflags.
660 auto flags(std::cout.flags());
661 while (line_len == 32) {
662 if (hex_buf.length() - i < 32) {
663 line_len = hex_buf.length() - i;
664 };
665 if (line_len > 0) {
666 std::cout << setfill('0') << setw(4) << std::hex << i << std::dec
667 << " " << hex_buf.substr(i, line_len) << std::endl;
668 }
669 i += 32;
670 }
671 // Restore cout fmtflags.
672 std::cout.flags(flags);
673 std::cout << std::endl;
674}
675
676void
686
687void
689 double rate = 0;
690 std::string exchange_name = "4-way exchanges";
691 ExchangeType xchg_type = ExchangeType::DO;
692 if (options_.getIpVersion() == 4) {
693 xchg_type =
696 if (xchg_type == ExchangeType::DO) {
697 exchange_name = "DISCOVER-OFFER";
698 }
699 } else if (options_.getIpVersion() == 6) {
700 xchg_type =
703 if (xchg_type == ExchangeType::SA) {
704 exchange_name = options_.isRapidCommit() ? "Solicit-Reply" :
705 "Solicit-Advertise";
706 }
707 }
708 double duration =
709 stats_mgr_.getTestPeriod().length().total_nanoseconds() / 1e9;
710 rate = stats_mgr_.getRcvdPacketsNum(xchg_type) / duration;
711 std::ostringstream s;
712 s << "***Rate statistics***" << std::endl;
713 s << "Rate: " << rate << " " << exchange_name << "/second";
714 if (options_.getRate() > 0) {
715 s << ", expected rate: " << options_.getRate() << std::endl;
716 }
717
718 std::cout << s.str() << std::endl;
719
720 std::cout <<"***Malformed Packets***" << std::endl
721 << "Malformed packets: " << ExchangeStats::malformed_pkts_
722 << std::endl;
723}
724
725void
727 int delay = options_.getReportDelay();
728 ptime now = microsec_clock::universal_time();
729 time_period time_since_report(last_report_, now);
730 if (time_since_report.length().total_seconds() >= delay) {
733 last_report_ = now;
734 }
735}
736
737void
745
746std::string
747TestControl::vector2Hex(const std::vector<uint8_t>& vec,
748 const std::string& separator /* = "" */) {
749 std::ostringstream stream;
750 bool first = true;
751 for (auto const& it : vec) {
752 if (first) {
753 stream << byte2Hex(it);
754 first = false;
755 } else {
756 stream << separator << byte2Hex(it);
757 }
758 }
759 return (stream.str());
760}
761
762void
763TestControl::readPacketTemplate(const std::string& file_name) {
764 std::ifstream temp_file;
765 temp_file.open(file_name.c_str(), ios::in | ios::binary | ios::ate);
766 if (!temp_file.is_open()) {
767 isc_throw(BadValue, "unable to open template file " << file_name);
768 }
769 // Read template file contents.
770 std::streampos pos = temp_file.tellg();
771 if (pos == std::streampos(0)) {
772 temp_file.close();
773 isc_throw(OutOfRange, "the template file " << file_name << " is empty");
774 }
775 temp_file.seekg(0, ios::beg);
776 size_t temp_size = static_cast<size_t>(pos);
777 std::vector<char> file_contents(temp_size);
778 temp_file.read(&file_contents[0], temp_size);
779 temp_file.close();
780 // Spaces are allowed so we have to strip the contents
781 // from them. In the same time we want to make sure that
782 // apart from spaces the file contains hexadecimal digits
783 // only.
784 std::vector<char> hex_digits;
785 for (size_t i = 0; i < file_contents.size(); ++i) {
786 if (isxdigit(file_contents[i])) {
787 hex_digits.push_back(file_contents[i]);
788 } else if (!isxdigit(file_contents[i]) &&
789 !isspace(file_contents[i])) {
790 isc_throw(BadValue, "'" << file_contents[i] << "' is not a"
791 " hexadecimal digit");
792 }
793 }
794 // Expect even number of digits.
795 if (hex_digits.size() % 2 != 0) {
796 isc_throw(OutOfRange, "odd number of digits in template file");
797 } else if (hex_digits.empty()) {
798 isc_throw(OutOfRange, "template file " << file_name << " is empty");
799 }
800 std::vector<uint8_t> binary_stream;
801 for (size_t i = 0; i < hex_digits.size(); i += 2) {
802 stringstream s;
803 s << "0x" << hex_digits[i] << hex_digits[i+1];
804 int b;
805 s >> std::hex >> b;
806 binary_stream.push_back(static_cast<uint8_t>(b));
807 }
808 template_buffers_.push_back(binary_stream);
809}
810
811void
813 if (pkt4->getType() == DHCPOFFER) {
816 Pkt4Ptr discover_pkt4(boost::dynamic_pointer_cast<Pkt4>(pkt));
818 if ((xchg_mode == CommandOptions::DORA_SARR) && discover_pkt4) {
819 if (template_buffers_.size() < 2) {
820 sendRequest4(discover_pkt4, pkt4);
821 } else {
824 sendRequest4(template_buffers_[1], discover_pkt4, pkt4);
825 }
826 }
827 } else if (pkt4->getType() == DHCPACK) {
828 // If received message is DHCPACK, we have to check if this is
829 // a response to 4-way exchange. We'll match this packet with
830 // a DHCPREQUEST sent as part of the 4-way exchanges.
833 // The DHCPACK belongs to DHCPREQUEST-DHCPACK exchange type.
834 // So, we may need to keep this DHCPACK in the storage if renews.
835 // Note that, DHCPACK messages hold the information about
836 // leases assigned. We use this information to renew.
839 // Renew or release messages are sent, because StatsMgr has the
840 // specific exchange type specified. Let's append the DHCPACK
841 // message to a storage.
842 ack_storage_.append(pkt4);
843 }
844 // The DHCPACK message is not a server's response to the DHCPREQUEST
845 // message sent within the 4-way exchange. It may be a response to a
846 // renewal. In this case we first check if StatsMgr has exchange type
847 // for renew specified, and if it has, if there is a corresponding
848 // renew message for the received DHCPACK.
851 }
852 }
853}
854
855void
857 // check if received address is unique
858 if (options_.getAddrUnique()) {
859 std::set<std::string> current;
860 // addresses were already checked in validateIA
861 // we can safely assume that those are correct
862 for (auto const& opt : pkt6->options_) {
863 switch (opt.second->getType()) {
864 case D6O_IA_PD: {
865 // add address and check if it has not been already assigned
866 // addresses should be unique cross options of the packet
867 auto ret = current.emplace(boost::dynamic_pointer_cast<
868 Option6IAPrefix>(opt.second->getOption(D6O_IAPREFIX))->getAddress().toText());
869 if (!ret.second) {
871 }
872 break;
873 }
874 case D6O_IA_NA: {
875 // add address and check if it has not been already assigned
876 // addresses should be unique cross options of the packet
877 auto ret = current.emplace(boost::dynamic_pointer_cast<
878 Option6IAAddr>(opt.second->getOption(D6O_IAADDR))->getAddress().toText());
879 if (!ret.second) {
881 }
882 break;
883 }
884 default:
885 break;
886 }
887 }
888 // addresses should be unique cross packets
889 addUniqeAddr(current, xchg_type);
890 }
891}
892
893void
895 // check if received address is unique
896 if (options_.getAddrUnique()) {
897 // addresses were already checked in validateIA
898 // we can safely assume that those are correct
899 std::set<std::string> current;
900 current.insert(pkt4->getYiaddr().toText());
901 // addresses should be unique cross packets
902 addUniqeAddr(current, xchg_type);
903 }
904}
905
906bool
908 // check if iaaddr exists - if it does, we can continue sending request
909 // if not we will update statistics about rejected leases
910 // @todo it's checking just one iaaddress option for now it's ok
911 // but when perfdhcp will be extended to create message with multiple IA
912 // this will have to be iterate on:
913 // OptionCollection ias = pkt6->getOptions(D6O_IA_NA);
914 Option6IAPrefixPtr iapref;
915 Option6IAAddrPtr iaaddr;
916 if (pkt6->getOption(D6O_IA_PD)) {
917 iapref = boost::dynamic_pointer_cast<
918 Option6IAPrefix>(pkt6->getOption(D6O_IA_PD)->getOption(D6O_IAPREFIX));
919 }
920 if (pkt6->getOption(D6O_IA_NA)) {
921 iaaddr = boost::dynamic_pointer_cast<
922 Option6IAAddr>(pkt6->getOption(D6O_IA_NA)->getOption(D6O_IAADDR));
923 }
924
925 bool address_and_prefix = options_.getLeaseType().includes(
927 bool prefix_only = options_.getLeaseType().includes(
929 bool address_only = options_.getLeaseType().includes(
931 if ((address_and_prefix && iapref && iaaddr) ||
932 (prefix_only && iapref && !address_and_prefix) ||
933 (address_only && iaaddr && !address_and_prefix)) {
934 return (true);
935 } else {
936 return (false);
937 }
938}
939
940void
942 uint8_t packet_type = pkt6->getType();
943 if (packet_type == DHCPV6_ADVERTISE) {
945 Pkt6Ptr solicit_pkt6(boost::dynamic_pointer_cast<Pkt6>(pkt));
947 if ((xchg_mode == CommandOptions::DORA_SARR) && solicit_pkt6) {
948 if (validateIA(pkt6)) {
949 // if address is correct - check uniqueness
951 if (template_buffers_.size() < 2) {
952 sendRequest6(pkt6);
953 } else {
957 }
958 } else {
960 }
961 }
962 } else if (packet_type == DHCPV6_REPLY) {
963 // If the received message is Reply, we have to find out which exchange
964 // type the Reply message belongs to. It is doable by matching the Reply
965 // transaction id with the transaction id of the sent Request, Renew
966 // or Release. First we start with the Request.
968 // The Reply belongs to Request-Reply exchange type. So, we may need
969 // to keep this Reply in the storage if Renews or/and Releases are
970 // being sent. Note that, Reply messages hold the information about
971 // leases assigned. We use this information to construct Renew and
972 // Release messages.
973 if (validateIA(pkt6)) {
974 // if address is correct - check uniqueness
976 // check if there is correct IA to continue with Renew/Release
979 // Renew or Release messages are sent, because StatsMgr has the
980 // specific exchange type specified. Let's append the Reply
981 // message to a storage.
982 reply_storage_.append(pkt6);
983 }
984 } else {
986 }
987 // The Reply message is not a server's response to the Request message
988 // sent within the 4-way exchange. It may be a response to the Renew
989 // or Release message. In the if clause we first check if StatsMgr
990 // has exchange type for Renew specified, and if it has, if there is
991 // a corresponding Renew message for the received Reply. If not,
992 // we check that StatsMgr has exchange type for Release specified,
993 // as possibly the Reply has been sent in response to Release.
997 // At this point, it is only possible that the Reply has been sent
998 // in response to a Release. Try to match the Reply with Release.
1000 }
1001 }
1002}
1003
1004unsigned int
1006 unsigned int pkt_count = 0;
1007 PktPtr pkt;
1008 while ((pkt = receiver_.getPkt())) {
1009 pkt_count += 1;
1010 if (options_.getIpVersion() == 4) {
1011 Pkt4Ptr pkt4 = boost::dynamic_pointer_cast<Pkt4>(pkt);
1013 } else {
1014 Pkt6Ptr pkt6 = boost::dynamic_pointer_cast<Pkt6>(pkt);
1016 }
1017 }
1018 return pkt_count;
1019}
1020void
1022 static bool factories_registered = false;
1023 if (!factories_registered) {
1024 // DHCP_MESSAGE_TYPE option factory.
1028 // DHCP_SERVER_IDENTIFIER option factory.
1032 // DHCP_PARAMETER_REQUEST_LIST option factory.
1036 }
1037 factories_registered = true;
1038}
1039
1040void
1042 static bool factories_registered = false;
1043 if (!factories_registered) {
1044 // D6O_ELAPSED_TIME
1048 // D6O_RAPID_COMMIT
1052 // D6O_ORO (option request option) factory.
1054 D6O_ORO,
1056 // D6O_CLIENTID option factory.
1060 // D6O_SERVERID option factory.
1064 // D6O_IA_NA option factory.
1066 D6O_IA_NA,
1068
1069 // D6O_IA_PD option factory.
1071 D6O_IA_PD,
1073
1074
1075 }
1076 factories_registered = true;
1077}
1078
1079void
1081 switch(options_.getIpVersion()) {
1082 case 4:
1084 break;
1085 case 6:
1087 break;
1088 default:
1089 isc_throw(InvalidOperation, "command line options have to be parsed "
1090 "before DHCP option factories can be registered");
1091 }
1092}
1093
1094void
1096 transid_gen_.reset();
1097 last_report_ = microsec_clock::universal_time();
1098 // Actual generators will have to be set later on because we need to
1099 // get command line parameters first.
1102 first_packet_serverid_.clear();
1103 interrupted_ = false;
1104}
1105
1107 exit_time_(not_a_date_time),
1108 socket_(socket),
1109 receiver_(socket, options.isSingleThreaded(), options.getIpVersion()),
1110 stats_mgr_(options),
1111 random_generator_(new RandomGenerator(0, options.getMacsFromFile().size())),
1112 options_(options) {
1113 // Reset singleton state before test starts.
1114 reset();
1115
1116 // Ip version is not set ONLY in case the command options
1117 // were not parsed. This surely means that parse() function
1118 // was not called prior to starting the test. This is fatal
1119 // error.
1120 if (options_.getIpVersion() == 0) {
1122 "command options must be parsed before running a test");
1123 } else if (options_.getIpVersion() == 4) {
1124 // Turn off packet queueing.
1127 } else {
1128 // Turn off packet queueing.
1131 }
1132
1133 uint32_t clients_num = options_.getClientsNum() == 0 ?
1134 1 : options_.getClientsNum();
1136
1137 // Diagnostics are command line options mainly.
1139 // Option factories have to be registered.
1141 // Initialize packet templates.
1143 // Initialize randomization seed.
1144 if (options_.isSeeded()) {
1145 srandom(options_.getSeed());
1146 } else {
1147 // Seed with current time.
1148 time_period duration(from_iso_string("20111231T235959"),
1149 microsec_clock::universal_time());
1150 srandom(duration.length().total_seconds()
1151 + duration.length().fractional_seconds());
1152 }
1153 // If user interrupts the program we will exit gracefully.
1154 signal(SIGINT, TestControl::handleInterrupt);
1155}
1156
1157void
1158TestControl::runWrapped(bool do_stop /*= false */) const {
1159 if (!options_.getWrapped().empty()) {
1160 pid_t pid = 0;
1161 signal(SIGCHLD, handleChild);
1162 pid = fork();
1163 if (pid < 0) {
1164 isc_throw(Unexpected, "unable to fork");
1165 } else if (pid == 0) {
1166 execlp(options_.getWrapped().c_str(), do_stop ? "stop" : "start", (void*)0);
1167 }
1168 }
1169}
1170
1171void
1173 if (options_.testDiags('T')) {
1174 if (template_packets_v4_.find(pkt->getType()) == template_packets_v4_.end()) {
1175 template_packets_v4_[pkt->getType()] = pkt;
1176 }
1177 }
1178}
1179
1180void
1182 if (options_.testDiags('T')) {
1183 if (template_packets_v6_.find(pkt->getType()) == template_packets_v6_.end()) {
1184 template_packets_v6_[pkt->getType()] = pkt;
1185 }
1186 }
1187}
1188
1189void
1190TestControl::sendDiscover4(const bool preload /*= false*/) {
1191 // Generate the MAC address to be passed in the packet.
1192 uint8_t randomized = 0;
1193 std::vector<uint8_t> mac_address = generateMacAddress(randomized);
1194 // Generate transaction id to be set for the new exchange.
1195 const uint32_t transid = generateTransid();
1196 Pkt4Ptr pkt4(new Pkt4(DHCPDISCOVER, transid));
1197 if (!pkt4) {
1198 isc_throw(Unexpected, "failed to create DISCOVER packet");
1199 }
1200
1201 // Delete the default Message Type option set by Pkt4
1202 pkt4->delOption(DHO_DHCP_MESSAGE_TYPE);
1203
1204 // Set options: DHCP_MESSAGE_TYPE and DHCP_PARAMETER_REQUEST_LIST
1205 OptionBuffer buf_msg_type;
1206 buf_msg_type.push_back(DHCPDISCOVER);
1208 buf_msg_type));
1209 pkt4->addOption(Option::factory(Option::V4,
1211
1212
1213 // Set client's and server's ports as well as server's address,
1214 // and local (relay) address.
1215 setDefaults4(pkt4);
1216
1217 // Set hardware address
1218 pkt4->setHWAddr(HTYPE_ETHER, mac_address.size(), mac_address);
1219
1220 // Set client identifier
1221 pkt4->addOption(generateClientId(pkt4->getHWAddr()));
1222
1223 // Check if we need to simulate HA failures by pretending no responses were received.
1224 // The DHCP protocol signals that by increasing secs field (seconds since the configuration attempt started).
1226 stats_mgr_.getTestPeriod().length().total_seconds() >= options_.getWaitForElapsedTime() &&
1227 stats_mgr_.getTestPeriod().length().total_seconds() < options_.getWaitForElapsedTime() +
1229
1230 // Keep increasing elapsed time. The value should start increasing steadily.
1231 uint32_t val = stats_mgr_.getTestPeriod().length().total_seconds() - options_.getWaitForElapsedTime() + 1;
1232 if (val > 65535) {
1233 val = 65535;
1234 }
1235 pkt4->setSecs(static_cast<uint16_t>(val));
1236 }
1237
1238 // Add any extra options that user may have specified.
1239 addExtraOpts(pkt4);
1240
1241 pkt4->pack();
1242 socket_.send(pkt4);
1243 if (!preload) {
1245 }
1246
1247 saveFirstPacket(pkt4);
1248}
1249
1250void
1251TestControl::sendDiscover4(const std::vector<uint8_t>& template_buf,
1252 const bool preload /* = false */) {
1253 // Get the first argument if multiple the same arguments specified
1254 // in the command line. First one refers to DISCOVER packets.
1255 const uint8_t arg_idx = 0;
1256 // Generate the MAC address to be passed in the packet.
1257 uint8_t randomized = 0;
1258 std::vector<uint8_t> mac_address = generateMacAddress(randomized);
1259 // Generate transaction id to be set for the new exchange.
1260 const uint32_t transid = generateTransid();
1261 // Get transaction id offset.
1262 size_t transid_offset = getTransactionIdOffset(arg_idx);
1263 // Get randomization offset.
1264 // We need to go back by HW_ETHER_LEN (MAC address length)
1265 // because this offset points to last octet of MAC address.
1266 size_t rand_offset = getRandomOffset(arg_idx) - HW_ETHER_LEN + 1;
1267 // Create temporary buffer with template contents. We will
1268 // modify this temporary buffer but we don't want to modify
1269 // the original template.
1270 std::vector<uint8_t> in_buf(template_buf.begin(),
1271 template_buf.end());
1272 // Check if we are not going out of bounds.
1273 if (rand_offset + HW_ETHER_LEN > in_buf.size()) {
1274 isc_throw(OutOfRange, "randomization offset is out of bounds");
1275 }
1276 PerfPkt4Ptr pkt4(new PerfPkt4(&in_buf[0], in_buf.size(),
1277 transid_offset,
1278 transid));
1279
1280 // Replace MAC address in the template with actual MAC address.
1281 pkt4->writeAt(rand_offset, mac_address.begin(), mac_address.end());
1282 // Create a packet from the temporary buffer.
1283 setDefaults4(boost::static_pointer_cast<Pkt4>(pkt4));
1284 // Pack the input packet buffer to output buffer so as it can
1285 // be sent to server.
1286 pkt4->rawPack();
1287 socket_.send(boost::static_pointer_cast<Pkt4>(pkt4));
1288 if (!preload) {
1289 // Update packet stats.
1291 boost::static_pointer_cast<Pkt4>(pkt4));
1292 }
1293 saveFirstPacket(pkt4);
1294}
1295
1296bool
1297TestControl::sendMessageFromAck(const uint16_t msg_type) {
1298 // We only permit Request or Release messages to be sent using this
1299 // function.
1300 if (msg_type != DHCPREQUEST && msg_type != DHCPRELEASE) {
1302 "invalid message type "
1303 << msg_type
1304 << " to be sent, expected DHCPREQUEST or DHCPRELEASE");
1305 }
1306
1307 // Get one of the recorded DHCPACK messages.
1308 Pkt4Ptr ack = ack_storage_.getRandom();
1309 if (!ack) {
1310 return (false);
1311 }
1312
1313 // Create message of the specified type.
1314 Pkt4Ptr msg = createMessageFromAck(msg_type, ack);
1315 setDefaults4(msg);
1316
1317 // Override relay address
1318 msg->setGiaddr(ack->getGiaddr());
1319
1320 // Add any extra options that user may have specified.
1321 addExtraOpts(msg);
1322
1323 // Pack it.
1324 msg->pack();
1325
1326 // And send it.
1327 socket_.send(msg);
1331 msg);
1332 return (true);
1333}
1334
1335
1336bool
1337TestControl::sendMessageFromReply(const uint16_t msg_type) {
1338 // We only permit Release or Renew messages to be sent using this function.
1339 if (msg_type != DHCPV6_RENEW && msg_type != DHCPV6_RELEASE) {
1340 isc_throw(isc::BadValue, "invalid message type " << msg_type
1341 << " to be sent, expected DHCPV6_RENEW or DHCPV6_RELEASE");
1342 }
1343
1344 // Get one of the recorded DHCPV6_OFFER messages.
1345 Pkt6Ptr reply = reply_storage_.getRandom();
1346 if (!reply) {
1347 return (false);
1348 }
1349 // Prepare the message of the specified type.
1350 Pkt6Ptr msg = createMessageFromReply(msg_type, reply);
1351 setDefaults6(msg);
1352
1353 // Add any extra options that user may have specified.
1354 addExtraOpts(msg);
1355
1356 // Pack it.
1357 msg->pack();
1358
1359 // And send it.
1360 socket_.send(msg);
1363 : ExchangeType::RL), msg);
1364 return (true);
1365}
1366
1367void
1369 const dhcp::Pkt4Ptr& offer_pkt4) {
1370 // Use the same transaction id as the one used in the discovery packet.
1371 const uint32_t transid = discover_pkt4->getTransid();
1372 Pkt4Ptr pkt4(new Pkt4(DHCPREQUEST, transid));
1373
1374 // Use first flags indicates that we want to use the server
1375 // id captured in first packet.
1376 if (options_.isUseFirst() &&
1377 (first_packet_serverid_.size() > 0)) {
1380 } else {
1381 OptionPtr opt_serverid =
1382 offer_pkt4->getOption(DHO_DHCP_SERVER_IDENTIFIER);
1383 if (!opt_serverid) {
1384 isc_throw(BadValue, "there is no SERVER_IDENTIFIER option "
1385 << "in OFFER message");
1386 }
1388 first_packet_serverid_ = opt_serverid->getData();
1389 }
1390 pkt4->addOption(opt_serverid);
1391 }
1392
1394 asiolink::IOAddress yiaddr = offer_pkt4->getYiaddr();
1395 if (!yiaddr.isV4()) {
1396 isc_throw(BadValue, "the YIADDR returned in OFFER packet is not "
1397 " IPv4 address");
1398 }
1399 OptionPtr opt_requested_address =
1401 OptionBuffer()));
1402 opt_requested_address->setUint32(yiaddr.toUint32());
1403 pkt4->addOption(opt_requested_address);
1404 OptionPtr opt_parameter_list =
1406 pkt4->addOption(opt_parameter_list);
1407 // Set client's and server's ports as well as server's address
1408 setDefaults4(pkt4);
1409 // Override relay address
1410 pkt4->setGiaddr(offer_pkt4->getGiaddr());
1411 // Add any extra options that user may have specified.
1412 addExtraOpts(pkt4);
1413
1414 // Set hardware address
1415 pkt4->setHWAddr(offer_pkt4->getHWAddr());
1416 // Set client id.
1417 pkt4->addOption(generateClientId(pkt4->getHWAddr()));
1418 // Set elapsed time.
1419 uint32_t elapsed_time = getElapsedTime<Pkt4Ptr>(discover_pkt4, offer_pkt4);
1420 pkt4->setSecs(static_cast<uint16_t>(elapsed_time / 1000));
1421 // Prepare on wire data to send.
1422 pkt4->pack();
1423 socket_.send(pkt4);
1425 saveFirstPacket(pkt4);
1426}
1427
1428void
1429TestControl::sendRequest4(const std::vector<uint8_t>& template_buf,
1430 const dhcp::Pkt4Ptr& discover_pkt4,
1431 const dhcp::Pkt4Ptr& offer_pkt4) {
1432 // Get the second argument if multiple the same arguments specified
1433 // in the command line. Second one refers to REQUEST packets.
1434 const uint8_t arg_idx = 1;
1435 // Use the same transaction id as the one used in the discovery packet.
1436 const uint32_t transid = discover_pkt4->getTransid();
1437 // Get transaction id offset.
1438 size_t transid_offset = getTransactionIdOffset(arg_idx);
1439 // Get the offset of MAC's last octet.
1440 // We need to go back by HW_ETHER_LEN (MAC address length)
1441 // because this offset points to last octet of MAC address.
1442 size_t rand_offset = getRandomOffset(arg_idx) - HW_ETHER_LEN + 1;
1443 // Create temporary buffer from the template.
1444 std::vector<uint8_t> in_buf(template_buf.begin(),
1445 template_buf.end());
1446 // Check if given randomization offset is not out of bounds.
1447 if (rand_offset + HW_ETHER_LEN > in_buf.size()) {
1448 isc_throw(OutOfRange, "randomization offset is out of bounds");
1449 }
1450
1451 // Create packet from the temporary buffer.
1452 PerfPkt4Ptr pkt4(new PerfPkt4(&in_buf[0], in_buf.size(),
1453 transid_offset,
1454 transid));
1455
1456 // Set hardware address from OFFER packet received.
1457 HWAddrPtr hwaddr = offer_pkt4->getHWAddr();
1458 std::vector<uint8_t> mac_address(HW_ETHER_LEN, 0);
1459 uint8_t hw_len = hwaddr->hwaddr_.size();
1460 if (hw_len != 0) {
1461 memcpy(&mac_address[0], &hwaddr->hwaddr_[0],
1462 hw_len > HW_ETHER_LEN ? HW_ETHER_LEN : hw_len);
1463 }
1464 pkt4->writeAt(rand_offset, mac_address.begin(), mac_address.end());
1465
1466 // Set elapsed time.
1467 size_t elp_offset = getElapsedTimeOffset();
1468 uint32_t elapsed_time = getElapsedTime<Pkt4Ptr>(discover_pkt4, offer_pkt4);
1469 pkt4->writeValueAt<uint16_t>(elp_offset,
1470 static_cast<uint16_t>(elapsed_time / 1000));
1471
1472 // Get the actual server id offset.
1473 size_t sid_offset = getServerIdOffset();
1474 // Use first flags indicates that we want to use the server
1475 // id captured in first packet.
1476 if (options_.isUseFirst() &&
1477 (first_packet_serverid_.size() > 0)) {
1478 boost::shared_ptr<LocalizedOption>
1479 opt_serverid(new LocalizedOption(Option::V4,
1482 sid_offset));
1483 pkt4->addOption(opt_serverid);
1484 } else {
1485 // Copy the contents of server identifier received in
1486 // OFFER packet to put this into REQUEST.
1487 OptionPtr opt_serverid_offer =
1488 offer_pkt4->getOption(DHO_DHCP_SERVER_IDENTIFIER);
1489 if (!opt_serverid_offer) {
1490 isc_throw(BadValue, "there is no SERVER_IDENTIFIER option "
1491 << "in OFFER message");
1492 }
1493 boost::shared_ptr<LocalizedOption>
1494 opt_serverid(new LocalizedOption(Option::V4,
1496 opt_serverid_offer->getData(),
1497 sid_offset));
1498 pkt4->addOption(opt_serverid);
1500 first_packet_serverid_ = opt_serverid_offer->getData();
1501 }
1502 }
1503
1505 asiolink::IOAddress yiaddr = offer_pkt4->getYiaddr();
1506 if (!yiaddr.isV4()) {
1507 isc_throw(BadValue, "the YIADDR returned in OFFER packet is not "
1508 " IPv4 address");
1509 }
1510
1511 // Get the actual offset of requested ip.
1512 size_t rip_offset = getRequestedIpOffset();
1513 // Place requested IP option at specified position (rip_offset).
1514 boost::shared_ptr<LocalizedOption>
1515 opt_requested_ip(new LocalizedOption(Option::V4,
1517 OptionBuffer(),
1518 rip_offset));
1519 // The IOAddress is convertible to uint32_t and returns exactly what we need.
1520 opt_requested_ip->setUint32(yiaddr.toUint32());
1521 pkt4->addOption(opt_requested_ip);
1522
1523 setDefaults4(boost::static_pointer_cast<Pkt4>(pkt4));
1524
1525 // Add any extra options that user may have specified.
1526 addExtraOpts(pkt4);
1527
1528 // Prepare on-wire data.
1529 pkt4->rawPack();
1530 socket_.send(boost::static_pointer_cast<Pkt4>(pkt4));
1531 // Update packet stats.
1533 boost::static_pointer_cast<Pkt4>(pkt4));
1534 saveFirstPacket(pkt4);
1535}
1536
1537void
1538TestControl::sendRequest6(const Pkt6Ptr& advertise_pkt6) {
1539 const uint32_t transid = generateTransid();
1540 Pkt6Ptr pkt6(new Pkt6(DHCPV6_REQUEST, transid));
1541 // Set elapsed time.
1542 OptionPtr opt_elapsed_time =
1544 pkt6->addOption(opt_elapsed_time);
1545 // Set client id.
1546 OptionPtr opt_clientid = advertise_pkt6->getOption(D6O_CLIENTID);
1547 if (!opt_clientid) {
1548 isc_throw(Unexpected, "client id not found in received packet");
1549 }
1550 pkt6->addOption(opt_clientid);
1551
1552 // Use first flags indicates that we want to use the server
1553 // id captured in first packet.
1554 if (options_.isUseFirst() &&
1555 (first_packet_serverid_.size() > 0)) {
1556 pkt6->addOption(Option::factory(Option::V6, D6O_SERVERID,
1558 } else {
1559 OptionPtr opt_serverid = advertise_pkt6->getOption(D6O_SERVERID);
1560 if (!opt_serverid) {
1561 isc_throw(Unexpected, "server id not found in received packet");
1562 }
1564 first_packet_serverid_ = opt_serverid->getData();
1565 }
1566 pkt6->addOption(opt_serverid);
1567 }
1568
1569 // Copy IA_NA or IA_PD option from the Advertise message to the Request
1570 // message being sent to the server. This will throw exception if the
1571 // option to be copied is not found. Note that this function will copy
1572 // one of IA_NA or IA_PD options, depending on the lease-type value
1573 // specified in the command line.
1574 copyIaOptions(advertise_pkt6, pkt6);
1575
1576 // Set default packet data.
1577 setDefaults6(pkt6);
1578
1579 // Add any extra options that user may have specified.
1580 addExtraOpts(pkt6);
1581
1582 // Prepare on-wire data.
1583 pkt6->pack();
1584 socket_.send(pkt6);
1586 saveFirstPacket(pkt6);
1587}
1588
1589void
1590TestControl::sendRequest6(const std::vector<uint8_t>& template_buf,
1591 const Pkt6Ptr& advertise_pkt6) {
1592 // Get the second argument if multiple the same arguments specified
1593 // in the command line. Second one refers to REQUEST packets.
1594 const uint8_t arg_idx = 1;
1595 // Generate transaction id.
1596 const uint32_t transid = generateTransid();
1597 // Get transaction id offset.
1598 size_t transid_offset = getTransactionIdOffset(arg_idx);
1599 PerfPkt6Ptr pkt6(new PerfPkt6(&template_buf[0], template_buf.size(),
1600 transid_offset, transid));
1601 // Set elapsed time.
1602 size_t elp_offset = getElapsedTimeOffset();
1603 boost::shared_ptr<LocalizedOption>
1604 opt_elapsed_time(new LocalizedOption(Option::V6, D6O_ELAPSED_TIME,
1605 OptionBuffer(), elp_offset));
1606 pkt6->addOption(opt_elapsed_time);
1607
1608 // Get the actual server id offset.
1609 size_t sid_offset = getServerIdOffset();
1610 // Use first flags indicates that we want to use the server
1611 // id captured in first packet.
1612 if (options_.isUseFirst() &&
1613 (first_packet_serverid_.size() > 0)) {
1614 boost::shared_ptr<LocalizedOption>
1615 opt_serverid(new LocalizedOption(Option::V6,
1618 sid_offset));
1619 pkt6->addOption(opt_serverid);
1620
1621 } else {
1622 // Copy the contents of server identifier received in
1623 // ADVERTISE packet to put this into REQUEST.
1624 OptionPtr opt_serverid_advertise =
1625 advertise_pkt6->getOption(D6O_SERVERID);
1626 if (!opt_serverid_advertise) {
1627 isc_throw(BadValue, "there is no SERVERID option "
1628 << "in ADVERTISE message");
1629 }
1630 boost::shared_ptr<LocalizedOption>
1631 opt_serverid(new LocalizedOption(Option::V6,
1633 opt_serverid_advertise->getData(),
1634 sid_offset));
1635 pkt6->addOption(opt_serverid);
1637 first_packet_serverid_ = opt_serverid_advertise->getData();
1638 }
1639 }
1640 // Set IA_NA
1641 OptionPtr opt_ia_na_advertise = advertise_pkt6->getOption(D6O_IA_NA);
1642 if (!opt_ia_na_advertise) {
1643 isc_throw(Unexpected, "DHCPv6 IA_NA option not found in received "
1644 "packet");
1645 }
1646 size_t addr_offset = getRequestedIpOffset();
1647 boost::shared_ptr<LocalizedOption>
1648 opt_ia_na(new LocalizedOption(Option::V6, D6O_IA_NA, opt_ia_na_advertise->getData(), addr_offset));
1649 if (!opt_ia_na->valid()) {
1650 isc_throw(BadValue, "Option IA_NA in advertise packet is invalid");
1651 }
1652 pkt6->addOption(opt_ia_na);
1653 // Set server id.
1654 OptionPtr opt_serverid_advertise = advertise_pkt6->getOption(D6O_SERVERID);
1655 if (!opt_serverid_advertise) {
1656 isc_throw(Unexpected, "DHCPV6 SERVERID option not found in received "
1657 "packet");
1658 }
1659 size_t srvid_offset = getServerIdOffset();
1660 boost::shared_ptr<LocalizedOption>
1661 opt_serverid(new LocalizedOption(Option::V6, D6O_SERVERID,
1662 opt_serverid_advertise->getData(),
1663 srvid_offset));
1664 pkt6->addOption(opt_serverid);
1665 // Get randomization offset.
1666 size_t rand_offset = getRandomOffset(arg_idx);
1667 OptionPtr opt_clientid_advertise = advertise_pkt6->getOption(D6O_CLIENTID);
1668 if (!opt_clientid_advertise) {
1669 isc_throw(Unexpected, "DHCPV6 CLIENTID option not found in received packet");
1670 }
1671 rand_offset -= (opt_clientid_advertise->len() - 1);
1672 // Set client id.
1673 boost::shared_ptr<LocalizedOption>
1674 opt_clientid(new LocalizedOption(Option::V6, D6O_CLIENTID,
1675 opt_clientid_advertise->getData(),
1676 rand_offset));
1677 pkt6->addOption(opt_clientid);
1678 // Set default packet data.
1679 setDefaults6(pkt6);
1680
1681 // Add any extra options that user may have specified.
1682 addExtraOpts(pkt6);
1683
1684 // Prepare on wire data.
1685 pkt6->rawPack();
1686 // Send packet.
1687 socket_.send(pkt6);
1688 // Update packet stats.
1690
1691 // When 'T' diagnostics flag is specified it means that user requested
1692 // printing packet contents. It will be just one (first) packet which
1693 // contents will be printed. Here we check if this packet has been already
1694 // collected. If it hasn't we save this packet so as we can print its
1695 // contents when test is finished.
1696 if (options_.testDiags('T') &&
1699 }
1700}
1701
1702void
1703TestControl::sendSolicit6(const bool preload /*= false*/) {
1704 // Generate DUID to be passed to the packet
1705 uint8_t randomized = 0;
1706 std::vector<uint8_t> duid = generateDuid(randomized);
1707 // Generate transaction id to be set for the new exchange.
1708 const uint32_t transid = generateTransid();
1709 Pkt6Ptr pkt6(new Pkt6(DHCPV6_SOLICIT, transid));
1710 if (!pkt6) {
1711 isc_throw(Unexpected, "failed to create SOLICIT packet");
1712 }
1713
1714 // Check if we need to simulate HA failures by pretending no responses were received.
1715 // The DHCPv6 protocol signals that by increasing the elapsed option field. Note it is in 1/100 of a second.
1717 stats_mgr_.getTestPeriod().length().total_seconds() >= options_.getWaitForElapsedTime() &&
1718 stats_mgr_.getTestPeriod().length().total_seconds() < options_.getWaitForElapsedTime() +
1720
1721
1722 // Keep increasing elapsed time. The value should start increasing steadily.
1723 uint32_t val = (stats_mgr_.getTestPeriod().length().total_seconds() - options_.getWaitForElapsedTime() + 1)*100;
1724 if (val > 65535) {
1725 val = 65535;
1726 }
1728 pkt6->addOption(elapsed);
1729 } else {
1730 pkt6->addOption(Option::factory(Option::V6, D6O_ELAPSED_TIME));
1731 }
1732
1733 if (options_.isRapidCommit()) {
1734 pkt6->addOption(Option::factory(Option::V6, D6O_RAPID_COMMIT));
1735 }
1736 pkt6->addOption(Option::factory(Option::V6, D6O_CLIENTID, duid));
1737 pkt6->addOption(Option::factory(Option::V6, D6O_ORO));
1738
1739
1740 // Depending on the lease-type option specified, we should request
1741 // IPv6 address (with IA_NA) or IPv6 prefix (IA_PD) or both.
1742
1743 // IA_NA
1745 pkt6->addOption(Option::factory(Option::V6, D6O_IA_NA));
1746 }
1747 // IA_PD
1749 pkt6->addOption(Option::factory(Option::V6, D6O_IA_PD));
1750 }
1751
1752 setDefaults6(pkt6);
1753
1754 // Add any extra options that user may have specified.
1755 addExtraOpts(pkt6);
1756
1757 pkt6->pack();
1758 socket_.send(pkt6);
1759 if (!preload) {
1761 }
1762
1763 saveFirstPacket(pkt6);
1764}
1765
1766void
1767TestControl::sendSolicit6(const std::vector<uint8_t>& template_buf,
1768 const bool preload /*= false*/) {
1769 const int arg_idx = 0;
1770 // Get transaction id offset.
1771 size_t transid_offset = getTransactionIdOffset(arg_idx);
1772 // Generate transaction id to be set for the new exchange.
1773 const uint32_t transid = generateTransid();
1774 // Create packet.
1775 PerfPkt6Ptr pkt6(new PerfPkt6(&template_buf[0], template_buf.size(),
1776 transid_offset, transid));
1777 if (!pkt6) {
1778 isc_throw(Unexpected, "failed to create SOLICIT packet");
1779 }
1780 size_t rand_offset = getRandomOffset(arg_idx);
1781 // randomized will pick number of bytes randomized so we can
1782 // just use part of the generated duid and substitute a few bytes
1784 uint8_t randomized = 0;
1785 std::vector<uint8_t> duid = generateDuid(randomized);
1786 if (rand_offset > template_buf.size()) {
1787 isc_throw(OutOfRange, "randomization offset is out of bounds");
1788 }
1789 // Store random part of the DUID into the packet.
1790 pkt6->writeAt(rand_offset - randomized + 1,
1791 duid.end() - randomized, duid.end());
1792
1793 // Prepare on-wire data.
1794 pkt6->rawPack();
1795 setDefaults6(pkt6);
1796
1797 // Add any extra options that user may have specified.
1798 addExtraOpts(pkt6);
1799
1800 // Send solicit packet.
1801 socket_.send(pkt6);
1802 if (!preload) {
1803 // Update packet stats.
1805 }
1806 saveFirstPacket(pkt6);
1807}
1808
1809
1810void
1812 // Interface name.
1813 IfacePtr iface = socket_.getIface();
1814 if (iface == NULL) {
1815 isc_throw(BadValue, "unable to find interface with given index");
1816 }
1817 pkt->setIface(iface->getName());
1818 // Interface index.
1819 pkt->setIndex(socket_.ifindex_);
1820 // Local client's port (68)
1821 pkt->setLocalPort(DHCP4_CLIENT_PORT);
1822 // Server's port (67)
1823 if (options_.getRemotePort()) {
1824 pkt->setRemotePort(options_.getRemotePort());
1825 } else {
1826 pkt->setRemotePort(DHCP4_SERVER_PORT);
1827 }
1828 // The remote server's name or IP.
1829 pkt->setRemoteAddr(IOAddress(options_.getServerName()));
1830 // Set local address.
1831 pkt->setLocalAddr(socket_.addr_);
1832 // Set relay (GIADDR) address to local address if multiple
1833 // subnet mode is not enabled
1834 if (!options_.checkMultiSubnet()) {
1835 pkt->setGiaddr(socket_.addr_);
1836 } else {
1837 pkt->setGiaddr(IOAddress(options_.getRandRelayAddr()));
1838 }
1839 // Pretend that we have one relay (which is us).
1840 pkt->setHops(1);
1841}
1842
1843void
1845 // Interface name.
1846 IfacePtr iface = socket_.getIface();
1847 if (iface == NULL) {
1848 isc_throw(BadValue, "unable to find interface with given index");
1849 }
1850 pkt->setIface(iface->getName());
1851 // Interface index.
1852 pkt->setIndex(socket_.ifindex_);
1853 // Local client's port (547)
1854 pkt->setLocalPort(DHCP6_CLIENT_PORT);
1855 // Server's port (548)
1856 if (options_.getRemotePort()) {
1857 pkt->setRemotePort(options_.getRemotePort());
1858 } else {
1859 pkt->setRemotePort(DHCP6_SERVER_PORT);
1860 }
1861 // Set local address.
1862 pkt->setLocalAddr(socket_.addr_);
1863 // The remote server's name or IP.
1864 pkt->setRemoteAddr(IOAddress(options_.getServerName()));
1865
1866 // only act as a relay agent when told so.
1869 if (options_.isUseRelayedV6()) {
1870 Pkt6::RelayInfo relay_info;
1871 relay_info.msg_type_ = DHCPV6_RELAY_FORW;
1872 relay_info.hop_count_ = 0;
1873 if (options_.checkMultiSubnet()) {
1875 } else {
1876 relay_info.linkaddr_ = socket_.addr_;
1877 }
1878 relay_info.peeraddr_ = socket_.addr_;
1879 relay_info.options_.insert(options_.getRelayOpts().begin(), options_.getRelayOpts().end());
1880 pkt->addRelayInfo(relay_info);
1881 }
1882}
1883
1884namespace {
1885
1886static OptionBuffer const concatenateBuffers(OptionBuffer const& a,
1887 OptionBuffer const& b) {
1888 OptionBuffer result;
1889 result.insert(result.end(), a.begin(), a.end());
1890 result.insert(result.end(), b.begin(), b.end());
1891 return (result);
1892}
1893
1894static void mergeOptionIntoPacket(Pkt4Ptr const& packet,
1895 OptionPtr const& extra_option) {
1896 uint16_t const code(extra_option->getType());
1897 // If option already exists...
1898 OptionPtr const& option(packet->getOption(code));
1899 if (option) {
1900 switch (code) {
1901 // List here all the options for which we want to concatenate buffers.
1903 packet->delOption(code);
1904 packet->addOption(boost::make_shared<Option>(
1905 Option::V4, code,
1906 concatenateBuffers(option->getData(),
1907 extra_option->getData())));
1908 return;
1909 default:
1910 // For all others, add option as usual, it will result in "Option
1911 // already present in this message" error.
1912 break;
1913 }
1914 }
1915 packet->addOption(extra_option);
1916}
1917
1918} // namespace
1919
1920void
1922 // Add all extra options that the user may have specified.
1923 const dhcp::OptionCollection& extra_opts = options_.getExtraOpts();
1924 for (auto const& entry : extra_opts) {
1925 mergeOptionIntoPacket(pkt, entry.second);
1926 }
1927}
1928
1929void
1931 // Add all extra options that the user may have specified.
1932 const dhcp::OptionCollection& extra_opts = options_.getExtraOpts();
1933 for (auto const& entry : extra_opts) {
1934 pkt->addOption(entry.second);
1935 }
1936}
1937
1938} // namespace perfdhcp
1939} // namespace isc
Pkt4(uint8_t msg_type, uint32_t transid)
Constructor, used in replying to a message.
Definition pkt4.cc:34
A generic exception that is thrown if a parameter given to a method is considered invalid in that con...
A generic exception that is thrown if a function is called in a prohibited way.
A generic exception that is thrown when an object can not be found.
A generic exception that is thrown if a parameter given to a method would refer to or modify out-of-r...
A generic exception that is thrown when an unexpected error condition occurs.
static IfaceMgr & instance()
IfaceMgr is a singleton class.
Definition iface_mgr.cc:52
bool configureDHCPPacketQueue(const uint16_t family, data::ConstElementPtr queue_control)
Configures DHCP packet queue.
static void OptionFactoryRegister(Option::Universe u, uint16_t type, Option::Factory *factory)
Registers factory method that produces options of specific option types.
isc::asiolink::IOAddress getAddress() const
Returns address contained within this option.
Class that represents IAPREFIX option in DHCPv6.
Forward declaration to OptionInt.
Definition option_int.h:49
static OptionPtr factory(Option::Universe u, uint16_t type, const OptionBuffer &buf)
Factory function to create instance of option.
Definition option.cc:33
Universe
defines option universe DHCPv4 or DHCPv6
Definition option.h:90
Option(Universe u, uint16_t type)
ctor, used for options constructed, usually during transmission
Definition option.cc:39
Pkt6(uint8_t msg_type, uint32_t transid, DHCPv6Proto proto=UDP)
Constructor, used in replying to a message.
Definition pkt6.cc:58
Socket wrapper structure.
Definition perf_socket.h:26
virtual dhcp::IfacePtr getIface()=0
See description of this method in PerfSocket class below.
unsigned int ifindex_
Interface index.
Definition perf_socket.h:29
virtual bool send(const dhcp::Pkt4Ptr &pkt)=0
See description of this method in PerfSocket class below.
bool includes(const Type lease_type) const
Checks if lease type implies request for the address, prefix (or both) as specified by the function a...
bool testDiags(const char diag)
Find if diagnostic flag has been set.
std::string getRandRelayAddr()
Returns random relay address.
int getIncreaseElapsedTime() const
Returns increased elapsed time.
int getServerIdOffset() const
Returns template offset for server-ID.
std::string getWrapped() const
Returns wrapped command.
int getRenewRate() const
Returns a rate at which DHCPv6 Renew messages are sent.
uint8_t getIpVersion() const
Returns IP version.
std::vector< uint8_t > getDuidTemplate() const
Returns DUID template.
bool getAddrUnique() const
Returns address uniqueness value.
int getRate() const
Returns exchange rate.
std::string getCleanReportSeparator() const
Returns clean report separator.
bool isRapidCommit() const
Check if rapid commit option used.
bool checkMultiSubnet()
Check if multi subnet mode is enabled.
const isc::dhcp::OptionCollection & getExtraOpts() const
Returns extra options to be inserted.
bool isUseFirst() const
Check if server-ID to be taken from first package.
int getReportDelay() const
Returns delay between two performance reports.
std::vector< int > getRandomOffset() const
Returns template offsets for rnd.
int getRemotePort() const
Returns remote port number.
int getWaitForElapsedTime() const
Returns time to wait for elapsed time increase.
ExchangeMode
2-way (cmd line param -i) or 4-way exchanges
const MacAddrsVector & getMacsFromFile() const
Returns reference to a vector of MAC addresses read from a file.
std::vector< std::string > getTemplateFiles() const
Returns template file names.
std::vector< int > getTransactionIdOffset() const
brief Returns template offsets for xid.
std::vector< std::vector< uint8_t > > MacAddrsVector
A vector holding MAC addresses.
int getElapsedTimeOffset() const
Returns template offset for elapsed time.
std::string getServerName() const
Returns server name.
const isc::dhcp::OptionCollection & getRelayOpts(uint8_t encapsulation_level=1) const
Returns relay options to be inserted at given level of encapsulation.
std::vector< int > getNumRequests() const
Returns maximum number of exchanges.
LeaseType getLeaseType() const
\ brief Returns the type of lease being requested.
bool isUseRelayedV6() const
Check if generated DHCPv6 messages should appear as relayed.
int getExitWaitTime() const
Returns the time in microseconds to delay the program by.
uint32_t getClientsNum() const
Returns number of simulated clients.
bool isSeeded() const
Checks if seed provided.
uint32_t getSeed() const
Returns random seed.
ExchangeMode getExchangeMode() const
Returns packet exchange mode.
void printCommandLine() const
Print command line arguments.
int getCleanReport() const
Returns clean report mode.
std::vector< uint8_t > getMacTemplate() const
Returns MAC address template.
int getRequestedIpOffset() const
Returns template offset for requested IP.
LocalizedOption(dhcp::Option::Universe u, uint16_t type, const dhcp::OptionBuffer &data, const size_t offset=0)
Constructor, used to create localized option from buffer.
PerfPkt4(const uint8_t *buf, size_t len, size_t transid_offset=1, uint32_t transid=0)
Constructor, used to create messages from packet template files.
Definition perf_pkt4.cc:21
PerfPkt6(const uint8_t *buf, size_t len, size_t transid_offset=1, uint32_t transid=0)
Constructor, used to create messages from packet template files.
Definition perf_pkt6.cc:25
dhcp::PktPtr getPkt()
Get DHCP packet.
Definition receiver.cc:58
void updateRejLeases(const ExchangeType xchg_type)
Increase total number of rejected leases.
void printStats() const
Print statistics counters for all exchange types.
void printCustomCounters() const
Print names and values of custom counters.
void updateNonUniqueAddrNum(const ExchangeType xchg_type)
Increase total number of non unique addresses.
uint64_t getRcvdPacketsNum(const ExchangeType xchg_type) const
Return total number of received packets.
bool hasExchangeStats(const ExchangeType xchg_type) const
Check if the exchange type has been specified.
void printIntermediateStats(bool clean_report, std::string clean_sep) const
Print intermediate statistics.
boost::posix_time::time_period getTestPeriod() const
Get time period since the start of test.
void passSentPacket(const ExchangeType xchg_type, const dhcp::PktPtr &packet)
Adds new packet to the sent packets list.
dhcp::PktPtr passRcvdPacket(const ExchangeType xchg_type, const dhcp::PktPtr &packet)
Add new received packet and match with sent packet.
Random numbers generator class.
SequentialGenerator(uint32_t range=0xFFFFFFFF)
Constructor.
void saveFirstPacket(const dhcp::Pkt4Ptr &pkt)
Save the first DHCPv4 sent packet of the specified type.
void address6Uniqueness(const dhcp::Pkt6Ptr &pkt6, ExchangeType xchg_type)
Process received v6 addresses uniqueness.
static const uint8_t HW_ETHER_LEN
Length of the Ethernet HW address (MAC) in bytes.
bool waitToExit()
Delay the exit by a fixed given time to catch up to all exchanges that were already started.
std::map< uint8_t, dhcp::Pkt4Ptr > template_packets_v4_
First packets send.
bool sendMessageFromReply(const uint16_t msg_type)
Send DHCPv6 Renew or Release message.
void addExtraOpts(const dhcp::Pkt4Ptr &pkt4)
Inserts extra options specified by user.
void printDiagnostics() const
Print main diagnostics data.
static void handleChild(int sig)
Handle child signal.
void registerOptionFactories4() const
Register option factory functions for DHCPv4.
NumberGeneratorPtr transid_gen_
Transaction id generator.
NumberGeneratorPtr macaddr_gen_
Numbers generator for MAC address.
int getRequestedIpOffset() const
Return requested ip offset in a packet.
NumberGeneratorPtr random_generator_
Generate uniformly distributed integers in range of [min, max].
boost::shared_ptr< NumberGenerator > NumberGeneratorPtr
The default generator pointer.
uint64_t sendMultipleMessages4(const uint32_t msg_type, const uint64_t msg_num)
Send number of DHCPREQUEST (renew) messages to a server.
bool validateIA(const dhcp::Pkt6Ptr &pkt6)
Process IA in received DHCPv6 packet.
dhcp::Pkt4Ptr createMessageFromAck(const uint16_t msg_type, const dhcp::Pkt4Ptr &ack)
Creates DHCPREQUEST from a DHCPACK message.
static bool interrupted_
Program interrupted flag.
void readPacketTemplate(const std::string &file_name)
Read DHCP message template from file.
TemplateBuffer getTemplateBuffer(const size_t idx) const
Return template buffer.
std::vector< uint8_t > generateMacAddress(uint8_t &randomized)
Generate MAC address.
void setDefaults4(const dhcp::Pkt4Ptr &pkt)
Set default DHCPv4 packet parameters.
boost::posix_time::ptime exit_time_
Initialized at first exit condition with the time perfdhcp should exit.
CommandOptions & options_
Command options.
Receiver receiver_
Receiver used to receive DHCP traffic.
static std::string vector2Hex(const std::vector< uint8_t > &vec, const std::string &separator="")
Convert vector in hexadecimal string.
uint64_t sendMultipleMessages6(const uint32_t msg_type, const uint64_t msg_num)
Send number of DHCPv6 Renew or Release messages to the server.
void setMacAddrGenerator(const NumberGeneratorPtr &generator)
Set new MAC address generator.
void setDefaults6(const dhcp::Pkt6Ptr &pkt)
Set default DHCPv6 packet parameters.
boost::posix_time::ptime last_report_
Last intermediate report time.
bool haveAllPacketsBeenReceived() const
Checks if all expected packets were already received.
void cleanCachedPackets()
Removes cached DHCPv6 Reply packets every second.
void processReceivedPacket4(const dhcp::Pkt4Ptr &pkt4)
Process received DHCPv4 packet.
void sendRequest6(const dhcp::Pkt6Ptr &advertise_pkt6)
Send DHCPv6 REQUEST message.
TestControl(CommandOptions &options, BasePerfSocket &socket)
Default constructor.
static dhcp::OptionPtr factoryOptionRequestOption6(dhcp::Option::Universe u, uint16_t type, const dhcp::OptionBuffer &buf)
Factory function to create DHCPv6 ORO option.
void sendSolicit6(const bool preload=false)
Send DHCPv6 SOLICIT message.
static dhcp::OptionPtr factoryIapd6(dhcp::Option::Universe u, uint16_t type, const dhcp::OptionBuffer &buf)
Factory function to create IA_PD option.
std::map< uint8_t, dhcp::Pkt6Ptr > template_packets_v6_
Template for v6.
static dhcp::OptionPtr factoryRapidCommit6(dhcp::Option::Universe u, uint16_t type, const dhcp::OptionBuffer &buf)
Factory function to create DHCPv6 RAPID_COMMIT option instance.
PacketStorage< dhcp::Pkt6 > reply_storage_
Storage for reply messages.
void registerOptionFactories6() const
Register option factory functions for DHCPv6.
void sendPackets(const uint64_t packets_num, const bool preload=false)
Send number of packets to initiate new exchanges.
void registerOptionFactories() const
Register option factory functions for DHCPv4 or DHCPv6.
std::vector< uint8_t > TemplateBuffer
Packet template buffer.
bool sendMessageFromAck(const uint16_t msg_type)
Send DHCPv4 renew (DHCPREQUEST).
void runWrapped(bool do_stop=false) const
Run wrapped command.
void processReceivedPacket6(const dhcp::Pkt6Ptr &pkt6)
Process received DHCPv6 packet.
uint32_t getElapsedTime(const T &pkt1, const T &pkt2)
Calculate elapsed time between two packets.
BasePerfSocket & socket_
Socket used for DHCP traffic.
void reset()
Resets internal state of the object.
void addUniqeAddr(const std::set< std::string > &current, ExchangeType xchg_type)
add unique address to already assigned list.
void address4Uniqueness(const dhcp::Pkt4Ptr &pkt4, ExchangeType xchg_type)
Process received v4 addresses uniqueness.
int getRandomOffset(const int arg_idx) const
Return randomization offset in a packet.
dhcp::Pkt6Ptr createMessageFromReply(const uint16_t msg_type, const dhcp::Pkt6Ptr &reply)
Creates DHCPv6 message from the Reply packet.
int getElapsedTimeOffset() const
Return elapsed time offset in a packet.
static std::string byte2Hex(const uint8_t b)
Convert binary value to hex string.
void printTemplates() const
Print templates information.
void sendRequest4(const dhcp::Pkt4Ptr &discover_pkt4, const dhcp::Pkt4Ptr &offer_pkt4)
Send DHCPv4 REQUEST message.
unsigned int consumeReceivedPackets()
Pull packets from receiver and process them.
TemplateBufferCollection template_buffers_
Packet template buffers.
StatsMgr stats_mgr_
Statistics Manager.
void printStats() const
Print performance statistics.
PacketStorage< dhcp::Pkt4 > ack_storage_
Storage for DHCPACK messages.
void copyIaOptions(const dhcp::Pkt6Ptr &pkt_from, dhcp::Pkt6Ptr &pkt_to)
Copies IA_NA or IA_PD option from one packet to another.
void setTransidGenerator(const NumberGeneratorPtr &generator)
Set new transaction id generator.
static dhcp::OptionPtr factoryGeneric(dhcp::Option::Universe u, uint16_t type, const dhcp::OptionBuffer &buf)
Factory function to create generic option.
static dhcp::OptionPtr factoryRequestList4(dhcp::Option::Universe u, uint16_t type, const dhcp::OptionBuffer &buf)
Factory function to create DHCPv4 Request List option.
static dhcp::OptionPtr factoryElapsedTime6(dhcp::Option::Universe u, uint16_t type, const dhcp::OptionBuffer &buf)
Factory function to create DHCPv6 ELAPSED_TIME option.
static void handleInterrupt(int sig)
Handle interrupt signal.
int getTransactionIdOffset(const int arg_idx) const
Return transaction id offset in a packet.
void initPacketTemplates()
Reads packet templates from files.
void printRate() const
Print rate statistics.
void printIntermediateStats()
Print intermediate statistics.
void printTemplate(const uint8_t packet_type) const
Print template information.
int getServerIdOffset() const
Return server id offset in a packet.
std::vector< uint8_t > generateDuid(uint8_t &randomized)
Generate DUID.
void sendDiscover4(const bool preload=false)
Send DHCPv4 DISCOVER message.
dhcp::OptionPtr generateClientId(const dhcp::HWAddrPtr &hwaddr) const
Generate DHCPv4 client identifier from HW address.
dhcp::OptionBuffer first_packet_serverid_
Buffer holding server id received in first packet.
uint32_t generateTransid()
generate transaction id.
static dhcp::OptionPtr factoryIana6(dhcp::Option::Universe u, uint16_t type, const dhcp::OptionBuffer &buf)
Factory function to create IA_NA option.
@ D6O_SERVERID
Definition dhcp6.h:22
@ D6O_CLIENTID
Definition dhcp6.h:21
@ D6O_NAME_SERVERS
Definition dhcp6.h:43
@ D6O_RAPID_COMMIT
Definition dhcp6.h:34
@ D6O_IA_NA
Definition dhcp6.h:23
@ D6O_ORO
Definition dhcp6.h:26
@ D6O_IA_PD
Definition dhcp6.h:45
@ D6O_DOMAIN_SEARCH
Definition dhcp6.h:44
@ D6O_IAADDR
Definition dhcp6.h:25
@ D6O_ELAPSED_TIME
Definition dhcp6.h:28
@ D6O_IAPREFIX
Definition dhcp6.h:46
@ DHCPV6_ADVERTISE
Definition dhcp6.h:209
@ DHCPV6_REQUEST
Definition dhcp6.h:210
@ DHCPV6_RENEW
Definition dhcp6.h:212
@ DHCPV6_REPLY
Definition dhcp6.h:214
@ DHCPV6_SOLICIT
Definition dhcp6.h:208
@ DHCPV6_RELEASE
Definition dhcp6.h:215
@ DHCPV6_RELAY_FORW
Definition dhcp6.h:219
#define isc_throw(type, stream)
A shortcut macro to insert known values into exception arguments.
boost::shared_ptr< Element > ElementPtr
Definition data.h:29
boost::shared_ptr< isc::dhcp::Pkt > PktPtr
A pointer to either Pkt4 or Pkt6 packet.
Definition pkt.h:999
@ DHO_SUBNET_MASK
Definition dhcp4.h:70
@ DHO_ROUTERS
Definition dhcp4.h:72
@ DHO_DOMAIN_NAME
Definition dhcp4.h:84
@ DHO_DOMAIN_NAME_SERVERS
Definition dhcp4.h:75
@ DHO_DHCP_MESSAGE_TYPE
Definition dhcp4.h:122
@ DHO_DHCP_SERVER_IDENTIFIER
Definition dhcp4.h:123
@ DHO_HOST_NAME
Definition dhcp4.h:81
@ DHO_DHCP_CLIENT_IDENTIFIER
Definition dhcp4.h:130
@ DHO_DHCP_REQUESTED_ADDRESS
Definition dhcp4.h:119
@ DHO_TIME_OFFSET
Definition dhcp4.h:71
@ DHO_DHCP_PARAMETER_REQUEST_LIST
Definition dhcp4.h:124
@ DHO_BROADCAST_ADDRESS
Definition dhcp4.h:97
boost::shared_ptr< Pkt4 > Pkt4Ptr
A pointer to Pkt4 object.
Definition pkt4.h:556
boost::shared_ptr< Iface > IfacePtr
Type definition for the pointer to an Iface object.
Definition iface_mgr.h:555
std::multimap< unsigned int, OptionPtr > OptionCollection
A collection of DHCP (v4 or v6) options.
Definition option.h:40
boost::shared_ptr< Option6IAPrefix > Option6IAPrefixPtr
Pointer to the Option6IAPrefix object.
boost::shared_ptr< HWAddr > HWAddrPtr
Shared pointer to a hardware address structure.
Definition hwaddr.h:154
boost::shared_ptr< Option6IAAddr > Option6IAAddrPtr
A pointer to the isc::dhcp::Option6IAAddr object.
@ DHCPREQUEST
Definition dhcp4.h:237
@ DHCPOFFER
Definition dhcp4.h:236
@ DHCPRELEASE
Definition dhcp4.h:241
@ DHCPDISCOVER
Definition dhcp4.h:235
@ DHCPACK
Definition dhcp4.h:239
boost::shared_ptr< Pkt6 > Pkt6Ptr
A pointer to Pkt6 packet.
Definition pkt6.h:31
std::vector< uint8_t > OptionBuffer
buffer types used in DHCP code.
Definition option.h:24
@ HTYPE_ETHER
Ethernet 10Mbps.
Definition dhcp4.h:56
boost::shared_ptr< Option > OptionPtr
Definition option.h:37
boost::shared_ptr< PerfPkt4 > PerfPkt4Ptr
Definition perf_pkt4.h:128
ExchangeType
DHCP packet exchange types.
@ SA
DHCPv6 SOLICIT-ADVERTISE.
@ RNA
DHCPv4 REQUEST-ACK (renewal).
boost::shared_ptr< PerfPkt6 > PerfPkt6Ptr
Definition perf_pkt6.h:127
Defines the logger used by the top-level component of kea-lfc.
structure that describes a single relay information
Definition pkt6.h:85
isc::dhcp::OptionCollection options_
options received from a specified relay, except relay-msg option
Definition pkt6.h:104
uint8_t msg_type_
message type (RELAY-FORW oro RELAY-REPL)
Definition pkt6.h:94
isc::asiolink::IOAddress linkaddr_
fixed field in relay-forw/relay-reply
Definition pkt6.h:96
uint8_t hop_count_
number of traversed relays (up to 32)
Definition pkt6.h:95
isc::asiolink::IOAddress peeraddr_
fixed field in relay-forw/relay-reply
Definition pkt6.h:97
isc::asiolink::IOAddress addr_
Bound address.
Definition socket_info.h:21