A Discrete-Event Network Simulator
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tcp-pacing.cc
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1/*
2 * Copyright (c) 2020 NITK Surathkal
3 *
4 * This program is free software; you can redistribute it and/or modify
5 * it under the terms of the GNU General Public License version 2 as
6 * published by the Free Software Foundation;
7 *
8 * This program is distributed in the hope that it will be useful,
9 * but WITHOUT ANY WARRANTY; without even the implied warranty of
10 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
11 * GNU General Public License for more details.
12 *
13 * You should have received a copy of the GNU General Public License
14 * along with this program; if not, write to the Free Software
15 * Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
16 *
17 * Authors: Vivek Jain <jain.vivek.anand@gmail.com>
18 * Deepak Kumaraswamy <deepakkavoor99@gmail.com>
19 */
20
21// The following network topology is used in this example, and is taken from
22// Figure 2 of https://homes.cs.washington.edu/~tom/pubs/pacing.pdf
23//
24// n0 n4
25// | |
26// |(4x Mbps, 5ms) |(4x Mbps, 5ms)
27// | |
28// | |
29// | (x Mbps, 40ms) |
30// n2 ------------------------ n3
31// | |
32// | |
33// |(4x Mbps, 5ms) |(4x Mbps, 5ms)
34// | |
35// n1 n5
36//
37//
38
39// This example illustrates how TCP pacing can be enabled on a socket.
40// Two long-running TCP flows are instantiated at nodes n0 and n1 to
41// send data over a bottleneck link (n2->n3) to sink nodes n4 and n5.
42// At the end of the simulation, the IP-level flow monitor tool will
43// print out summary statistics of the flows. The flow monitor detects
44// four flows, but that is because the flow records are unidirectional;
45// the latter two flows reported are actually ack streams.
46//
47// At the end of this simulation, data files are also generated
48// that track changes in Congestion Window, Slow Start threshold and
49// TCP pacing rate for the first flow (n0). Additionally, a data file
50// that contains information about packet transmission and reception times
51// (collected through TxTrace and RxTrace respectively) is also produced.
52// This transmission and reception (ack) trace is the most direct way to
53// observe the effects of pacing. All the above information is traced
54// just for the single node n0.
55//
56// A small amount of randomness is introduced to the program to control
57// the start time of the flows.
58//
59// This example has pacing enabled by default, which means that TCP
60// does not send packets back-to-back, but instead paces them out over
61// an RTT. The size of initial congestion window is set to 10, and pacing
62// of the initial window is enabled. The available command-line options and
63// their default values can be observed in the usual way by running the
64// program to print the help info; i.e.: ./ns3 run 'tcp-pacing --PrintHelp'
65//
66// When pacing is disabled, TCP sends eligible packets back-to-back. The
67// differences in behaviour when pacing is disabled can be observed from the
68// packet transmission data file. For instance, one can observe that
69// packets in the initial window are sent one after the other simultaneously,
70// without any inter-packet gaps. Another instance is when n0 receives a
71// packet in the form of an acknowledgement, and sends out data packets without
72// pacing them.
73//
74// Although this example serves as a useful demonstration of how pacing could
75// be enabled/disabled in ns-3 TCP congestion controls, we could not observe
76// significant improvements in throughput for the above topology when pacing
77// was enabled. In future, one could try and incorporate models such as
78// TCP Prague and ACK-filtering, which may show a stronger performance
79// impact for TCP pacing.
80
81#include "ns3/applications-module.h"
82#include "ns3/core-module.h"
83#include "ns3/flow-monitor-module.h"
84#include "ns3/internet-module.h"
85#include "ns3/ipv4-global-routing-helper.h"
86#include "ns3/network-module.h"
87#include "ns3/packet-sink.h"
88#include "ns3/point-to-point-module.h"
89#include "ns3/traffic-control-module.h"
90
91#include <fstream>
92#include <iomanip>
93#include <iostream>
94#include <string>
95
96using namespace ns3;
97
98NS_LOG_COMPONENT_DEFINE("TcpPacingExample");
99
100std::ofstream cwndStream;
101std::ofstream pacingRateStream;
102std::ofstream ssThreshStream;
103std::ofstream packetTraceStream;
104
105static void
107{
108 cwndStream << std::fixed << std::setprecision(6) << Simulator::Now().GetSeconds()
109 << std::setw(12) << newval << std::endl;
110}
111
112static void
114{
115 pacingRateStream << std::fixed << std::setprecision(6) << Simulator::Now().GetSeconds()
116 << std::setw(12) << newval.GetBitRate() / 1e6 << std::endl;
117}
118
119static void
121{
122 ssThreshStream << std::fixed << std::setprecision(6) << Simulator::Now().GetSeconds()
123 << std::setw(12) << newval << std::endl;
124}
125
126static void
128{
129 packetTraceStream << std::fixed << std::setprecision(6) << Simulator::Now().GetSeconds()
130 << " tx " << p->GetSize() << std::endl;
131}
132
133static void
135{
136 packetTraceStream << std::fixed << std::setprecision(6) << Simulator::Now().GetSeconds()
137 << " rx " << p->GetSize() << std::endl;
138}
139
140void
142{
143 Config::ConnectWithoutContext("/NodeList/0/$ns3::TcpL4Protocol/SocketList/0/CongestionWindow",
145 Config::ConnectWithoutContext("/NodeList/0/$ns3::TcpL4Protocol/SocketList/0/PacingRate",
147 Config::ConnectWithoutContext("/NodeList/0/$ns3::TcpL4Protocol/SocketList/0/SlowStartThreshold",
149 Config::ConnectWithoutContext("/NodeList/0/$ns3::Ipv4L3Protocol/Tx", MakeCallback(&TxTracer));
150 Config::ConnectWithoutContext("/NodeList/0/$ns3::Ipv4L3Protocol/Rx", MakeCallback(&RxTracer));
151}
152
153int
154main(int argc, char* argv[])
155{
156 bool tracing = false;
157
158 uint32_t maxBytes = 0; // value of zero corresponds to unlimited send
159 std::string transportProtocol = "ns3::TcpCubic";
160
161 Time simulationEndTime = Seconds(5);
162 DataRate bottleneckBandwidth("10Mbps"); // value of x as shown in the above network topology
163 Time bottleneckDelay = MilliSeconds(40);
164 DataRate regLinkBandwidth(4 * bottleneckBandwidth.GetBitRate());
165 Time regLinkDelay = MilliSeconds(5);
166 DataRate maxPacingRate("4Gbps");
167
168 bool isPacingEnabled = true;
169 bool useEcn = true;
170 bool useQueueDisc = true;
171 bool shouldPaceInitialWindow = true;
172
173 // Configure defaults that are not based on explicit command-line arguments
174 // They may be overridden by general attribute configuration of command line
175 Config::SetDefault("ns3::TcpL4Protocol::SocketType",
176 TypeIdValue(TypeId::LookupByName(transportProtocol)));
177 Config::SetDefault("ns3::TcpSocket::InitialCwnd", UintegerValue(10));
178
179 CommandLine cmd(__FILE__);
180 cmd.AddValue("tracing", "Flag to enable/disable Ascii and Pcap tracing", tracing);
181 cmd.AddValue("maxBytes", "Total number of bytes for application to send", maxBytes);
182 cmd.AddValue("isPacingEnabled", "Flag to enable/disable pacing in TCP", isPacingEnabled);
183 cmd.AddValue("maxPacingRate", "Max Pacing Rate", maxPacingRate);
184 cmd.AddValue("useEcn", "Flag to enable/disable ECN", useEcn);
185 cmd.AddValue("useQueueDisc", "Flag to enable/disable queue disc on bottleneck", useQueueDisc);
186 cmd.AddValue("shouldPaceInitialWindow",
187 "Flag to enable/disable pacing of TCP initial window",
188 shouldPaceInitialWindow);
189 cmd.AddValue("simulationEndTime", "Simulation end time", simulationEndTime);
190 cmd.Parse(argc, argv);
191
192 // Configure defaults based on command-line arguments
193 Config::SetDefault("ns3::TcpSocketState::EnablePacing", BooleanValue(isPacingEnabled));
194 Config::SetDefault("ns3::TcpSocketState::PaceInitialWindow",
195 BooleanValue(shouldPaceInitialWindow));
196 Config::SetDefault("ns3::TcpSocketBase::UseEcn",
198 Config::SetDefault("ns3::TcpSocketState::MaxPacingRate", DataRateValue(maxPacingRate));
199
200 NS_LOG_INFO("Create nodes.");
202 c.Create(6);
203
204 NS_LOG_INFO("Create channels.");
205 NodeContainer n0n2 = NodeContainer(c.Get(0), c.Get(2));
206 NodeContainer n1n2 = NodeContainer(c.Get(1), c.Get(2));
207
208 NodeContainer n2n3 = NodeContainer(c.Get(2), c.Get(3));
209
210 NodeContainer n3n4 = NodeContainer(c.Get(3), c.Get(4));
211 NodeContainer n3n5 = NodeContainer(c.Get(3), c.Get(5));
212
213 // Define Node link properties
214 PointToPointHelper regLink;
215 regLink.SetDeviceAttribute("DataRate", DataRateValue(regLinkBandwidth));
216 regLink.SetChannelAttribute("Delay", TimeValue(regLinkDelay));
217
218 NetDeviceContainer d0d2 = regLink.Install(n0n2);
219 NetDeviceContainer d1d2 = regLink.Install(n1n2);
220 NetDeviceContainer d3d4 = regLink.Install(n3n4);
221 NetDeviceContainer d3d5 = regLink.Install(n3n5);
222
223 PointToPointHelper bottleNeckLink;
224 bottleNeckLink.SetDeviceAttribute("DataRate", DataRateValue(bottleneckBandwidth));
225 bottleNeckLink.SetChannelAttribute("Delay", TimeValue(bottleneckDelay));
226
227 NetDeviceContainer d2d3 = bottleNeckLink.Install(n2n3);
228
229 // Install Internet stack
231 stack.Install(c);
232
233 // Install traffic control
234 if (useQueueDisc)
235 {
236 TrafficControlHelper tchBottleneck;
237 tchBottleneck.SetRootQueueDisc("ns3::FqCoDelQueueDisc");
238 tchBottleneck.Install(d2d3);
239 }
240
241 NS_LOG_INFO("Assign IP Addresses.");
243 ipv4.SetBase("10.1.1.0", "255.255.255.0");
244 Ipv4InterfaceContainer regLinkInterface0 = ipv4.Assign(d0d2);
245
246 ipv4.SetBase("10.1.2.0", "255.255.255.0");
247 Ipv4InterfaceContainer regLinkInterface1 = ipv4.Assign(d1d2);
248
249 ipv4.SetBase("10.1.3.0", "255.255.255.0");
250 Ipv4InterfaceContainer bottleneckInterface = ipv4.Assign(d2d3);
251
252 ipv4.SetBase("10.1.4.0", "255.255.255.0");
253 Ipv4InterfaceContainer regLinkInterface4 = ipv4.Assign(d3d4);
254
255 ipv4.SetBase("10.1.5.0", "255.255.255.0");
256 Ipv4InterfaceContainer regLinkInterface5 = ipv4.Assign(d3d5);
257
259
260 NS_LOG_INFO("Create Applications.");
261
262 // Two Sink Applications at n4 and n5
263 uint16_t sinkPort = 8080;
264 Address sinkAddress4(
265 InetSocketAddress(regLinkInterface4.GetAddress(1), sinkPort)); // interface of n4
266 Address sinkAddress5(
267 InetSocketAddress(regLinkInterface5.GetAddress(1), sinkPort)); // interface of n5
268 PacketSinkHelper packetSinkHelper("ns3::TcpSocketFactory",
270 ApplicationContainer sinkApps4 = packetSinkHelper.Install(c.Get(4)); // n4 as sink
271 ApplicationContainer sinkApps5 = packetSinkHelper.Install(c.Get(5)); // n5 as sink
272
273 sinkApps4.Start(Seconds(0));
274 sinkApps4.Stop(simulationEndTime);
275 sinkApps5.Start(Seconds(0));
276 sinkApps5.Stop(simulationEndTime);
277
278 // Randomize the start time between 0 and 1ms
279 Ptr<UniformRandomVariable> uniformRv = CreateObject<UniformRandomVariable>();
280 uniformRv->SetStream(0);
281
282 // Two Source Applications at n0 and n1
283 BulkSendHelper source0("ns3::TcpSocketFactory", sinkAddress4);
284 BulkSendHelper source1("ns3::TcpSocketFactory", sinkAddress5);
285 // Set the amount of data to send in bytes. Zero is unlimited.
286 source0.SetAttribute("MaxBytes", UintegerValue(maxBytes));
287 source1.SetAttribute("MaxBytes", UintegerValue(maxBytes));
288 ApplicationContainer sourceApps0 = source0.Install(c.Get(0));
289 ApplicationContainer sourceApps1 = source1.Install(c.Get(1));
290
291 sourceApps0.Start(MicroSeconds(uniformRv->GetInteger(0, 1000)));
292 sourceApps0.Stop(simulationEndTime);
293 sourceApps1.Start(MicroSeconds(uniformRv->GetInteger(0, 1000)));
294 sourceApps1.Stop(simulationEndTime);
295
296 if (tracing)
297 {
298 AsciiTraceHelper ascii;
299 regLink.EnableAsciiAll(ascii.CreateFileStream("tcp-dynamic-pacing.tr"));
300 regLink.EnablePcapAll("tcp-dynamic-pacing", false);
301 }
302
303 cwndStream.open("tcp-dynamic-pacing-cwnd.dat", std::ios::out);
304 cwndStream << "#Time(s) Congestion Window (B)" << std::endl;
305
306 pacingRateStream.open("tcp-dynamic-pacing-pacing-rate.dat", std::ios::out);
307 pacingRateStream << "#Time(s) Pacing Rate (Mb/s)" << std::endl;
308
309 ssThreshStream.open("tcp-dynamic-pacing-ssthresh.dat", std::ios::out);
310 ssThreshStream << "#Time(s) Slow Start threshold (B)" << std::endl;
311
312 packetTraceStream.open("tcp-dynamic-pacing-packet-trace.dat", std::ios::out);
313 packetTraceStream << "#Time(s) tx/rx size (B)" << std::endl;
314
316
317 FlowMonitorHelper flowmon;
318 Ptr<FlowMonitor> monitor = flowmon.InstallAll();
319
320 NS_LOG_INFO("Run Simulation.");
321 Simulator::Stop(simulationEndTime);
323
324 monitor->CheckForLostPackets();
325 Ptr<Ipv4FlowClassifier> classifier = DynamicCast<Ipv4FlowClassifier>(flowmon.GetClassifier());
326 FlowMonitor::FlowStatsContainer stats = monitor->GetFlowStats();
327 for (auto i = stats.begin(); i != stats.end(); ++i)
328 {
329 Ipv4FlowClassifier::FiveTuple t = classifier->FindFlow(i->first);
330
331 std::cout << "Flow " << i->first << " (" << t.sourceAddress << " -> "
332 << t.destinationAddress << ")\n";
333 std::cout << " Tx Packets: " << i->second.txPackets << "\n";
334 std::cout << " Tx Bytes: " << i->second.txBytes << "\n";
335 std::cout << " TxOffered: "
336 << i->second.txBytes * 8.0 / simulationEndTime.GetSeconds() / 1000 / 1000
337 << " Mbps\n";
338 std::cout << " Rx Packets: " << i->second.rxPackets << "\n";
339 std::cout << " Rx Bytes: " << i->second.rxBytes << "\n";
340 std::cout << " Throughput: "
341 << i->second.rxBytes * 8.0 / simulationEndTime.GetSeconds() / 1000 / 1000
342 << " Mbps\n";
343 }
344
345 cwndStream.close();
346 pacingRateStream.close();
347 ssThreshStream.close();
349
350 return 0;
351}
NodeContainer n2n3
Nodecontainer n2 + n3.
NodeContainer n1n2
Nodecontainer n1 + n2.
NodeContainer n3n4
Nodecontainer n3 + n4.
NodeContainer n0n2
Nodecontainer n0 + n2.
NodeContainer n3n5
Nodecontainer n3 + n5.
a polymophic address class
Definition: address.h:101
holds a vector of ns3::Application pointers.
void Start(Time start) const
Start all of the Applications in this container at the start time given as a parameter.
void Stop(Time stop) const
Arrange for all of the Applications in this container to Stop() at the Time given as a parameter.
void EnableAsciiAll(std::string prefix)
Enable ascii trace output on each device (which is of the appropriate type) in the set of all nodes c...
Manage ASCII trace files for device models.
Definition: trace-helper.h:174
Ptr< OutputStreamWrapper > CreateFileStream(std::string filename, std::ios::openmode filemode=std::ios::out)
Create and initialize an output stream object we'll use to write the traced bits.
AttributeValue implementation for Boolean.
Definition: boolean.h:37
A helper to make it easier to instantiate an ns3::BulkSendApplication on a set of nodes.
Parse command-line arguments.
Definition: command-line.h:232
Class for representing data rates.
Definition: data-rate.h:89
uint64_t GetBitRate() const
Get the underlying bitrate.
Definition: data-rate.cc:305
AttributeValue implementation for DataRate.
Definition: data-rate.h:296
Hold variables of type enum.
Definition: enum.h:62
Helper to enable IP flow monitoring on a set of Nodes.
Ptr< FlowClassifier > GetClassifier()
Retrieve the FlowClassifier object for IPv4 created by the Install* methods.
Ptr< FlowMonitor > InstallAll()
Enable flow monitoring on all nodes.
std::map< FlowId, FlowStats > FlowStatsContainer
Container: FlowId, FlowStats.
Definition: flow-monitor.h:231
an Inet address class
aggregate IP/TCP/UDP functionality to existing Nodes.
A helper class to make life easier while doing simple IPv4 address assignment in scripts.
static Ipv4Address GetAny()
static void PopulateRoutingTables()
Build a routing database and initialize the routing tables of the nodes in the simulation.
holds a vector of std::pair of Ptr<Ipv4> and interface index.
Ipv4Address GetAddress(uint32_t i, uint32_t j=0) const
holds a vector of ns3::NetDevice pointers
keep track of a set of node pointers.
void Create(uint32_t n)
Create n nodes and append pointers to them to the end of this NodeContainer.
Ptr< Node > Get(uint32_t i) const
Get the Ptr<Node> stored in this container at a given index.
A helper to make it easier to instantiate an ns3::PacketSinkApplication on a set of nodes.
void EnablePcapAll(std::string prefix, bool promiscuous=false)
Enable pcap output on each device (which is of the appropriate type) in the set of all nodes created ...
Build a set of PointToPointNetDevice objects.
void SetDeviceAttribute(std::string name, const AttributeValue &value)
Set an attribute value to be propagated to each NetDevice created by the helper.
void SetChannelAttribute(std::string name, const AttributeValue &value)
Set an attribute value to be propagated to each Channel created by the helper.
NetDeviceContainer Install(NodeContainer c)
Smart pointer class similar to boost::intrusive_ptr.
Definition: ptr.h:77
static EventId Schedule(const Time &delay, FUNC f, Ts &&... args)
Schedule an event to expire after delay.
Definition: simulator.h:571
static void Destroy()
Execute the events scheduled with ScheduleDestroy().
Definition: simulator.cc:142
static Time Now()
Return the current simulation virtual time.
Definition: simulator.cc:208
static void Run()
Run the simulation.
Definition: simulator.cc:178
static void Stop()
Tell the Simulator the calling event should be the last one executed.
Definition: simulator.cc:186
Simulation virtual time values and global simulation resolution.
Definition: nstime.h:105
double GetSeconds() const
Get an approximation of the time stored in this instance in the indicated unit.
Definition: nstime.h:403
AttributeValue implementation for Time.
Definition: nstime.h:1413
Build a set of QueueDisc objects.
QueueDiscContainer Install(NetDeviceContainer c)
uint16_t SetRootQueueDisc(const std::string &type, Args &&... args)
Helper function used to set a root queue disc of the given type and with the given attributes.
static TypeId LookupByName(std::string name)
Get a TypeId by name.
Definition: type-id.cc:836
AttributeValue implementation for TypeId.
Definition: type-id.h:598
Hold an unsigned integer type.
Definition: uinteger.h:45
void SetDefault(std::string name, const AttributeValue &value)
Definition: config.cc:894
void ConnectWithoutContext(std::string path, const CallbackBase &cb)
Definition: config.cc:954
#define NS_LOG_COMPONENT_DEFINE(name)
Define a Log component with a specific name.
Definition: log.h:202
#define NS_LOG_INFO(msg)
Use NS_LOG to output a message of level LOG_INFO.
Definition: log.h:275
Time MicroSeconds(uint64_t value)
Construct a Time in the indicated unit.
Definition: nstime.h:1350
Time Seconds(double value)
Construct a Time in the indicated unit.
Definition: nstime.h:1326
Time MilliSeconds(uint64_t value)
Construct a Time in the indicated unit.
Definition: nstime.h:1338
ns stack
Definition: first.py:44
Every class exported by the ns3 library is enclosed in the ns3 namespace.
Callback< R, Args... > MakeCallback(R(T::*memPtr)(Args...), OBJ objPtr)
Build Callbacks for class method members which take varying numbers of arguments and potentially retu...
Definition: callback.h:704
ns cmd
Definition: second.py:40
Structure to classify a packet.
Ipv4Address sourceAddress
Source address.
Ipv4Address destinationAddress
Destination address.
std::ofstream packetTraceStream
Definition: tcp-pacing.cc:103
static void TxTracer(Ptr< const Packet > p, Ptr< Ipv4 > ipv4, uint32_t interface)
Definition: tcp-pacing.cc:127
static void RxTracer(Ptr< const Packet > p, Ptr< Ipv4 > ipv4, uint32_t interface)
Definition: tcp-pacing.cc:134
std::ofstream ssThreshStream
Definition: tcp-pacing.cc:102
static void CwndTracer(uint32_t oldval, uint32_t newval)
Definition: tcp-pacing.cc:106
std::ofstream pacingRateStream
Definition: tcp-pacing.cc:101
std::ofstream cwndStream
Definition: tcp-pacing.cc:100
static void SsThreshTracer(uint32_t oldval, uint32_t newval)
Definition: tcp-pacing.cc:120
static void PacingRateTracer(DataRate oldval, DataRate newval)
Definition: tcp-pacing.cc:113
void ConnectSocketTraces()
Definition: tcp-pacing.cc:141
bool tracing
Flag to enable/disable generation of tracing files.