A Discrete-Event Network Simulator
API
wifi-ht-network.cc
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1 /* -*- Mode: C++; c-file-style: "gnu"; indent-tabs-mode:nil; -*- */
2 /*
3  * Copyright (c) 2009 MIRKO BANCHI
4  *
5  * This program is free software; you can redistribute it and/or modify
6  * it under the terms of the GNU General Public License version 2 as
7  * published by the Free Software Foundation;
8  *
9  * This program is distributed in the hope that it will be useful,
10  * but WITHOUT ANY WARRANTY; without even the implied warranty of
11  * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
12  * GNU General Public License for more details.
13  *
14  * You should have received a copy of the GNU General Public License
15  * along with this program; if not, write to the Free Software
16  * Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
17  *
18  * Authors: Mirko Banchi <mk.banchi@gmail.com>
19  * Sebastien Deronne <sebastien.deronne@gmail.com>
20  */
21 
22 #include "ns3/command-line.h"
23 #include "ns3/config.h"
24 #include "ns3/uinteger.h"
25 #include "ns3/boolean.h"
26 #include "ns3/double.h"
27 #include "ns3/string.h"
28 #include "ns3/log.h"
29 #include "ns3/yans-wifi-helper.h"
30 #include "ns3/ssid.h"
31 #include "ns3/mobility-helper.h"
32 #include "ns3/internet-stack-helper.h"
33 #include "ns3/ipv4-address-helper.h"
34 #include "ns3/udp-client-server-helper.h"
35 #include "ns3/packet-sink-helper.h"
36 #include "ns3/on-off-helper.h"
37 #include "ns3/ipv4-global-routing-helper.h"
38 #include "ns3/packet-sink.h"
39 #include "ns3/yans-wifi-channel.h"
40 
41 // This is a simple example in order to show how to configure an IEEE 802.11n Wi-Fi network.
42 //
43 // It outputs the UDP or TCP goodput for every HT MCS value, which depends on the MCS value (0 to 7), the
44 // channel width (20 or 40 MHz) and the guard interval (long or short). The PHY bitrate is constant over all
45 // the simulation run. The user can also specify the distance between the access point and the station: the
46 // larger the distance the smaller the goodput.
47 //
48 // The simulation assumes a single station in an infrastructure network:
49 //
50 // STA AP
51 // * *
52 // | |
53 // n1 n2
54 //
55 //Packets in this simulation belong to BestEffort Access Class (AC_BE).
56 
57 using namespace ns3;
58 
59 NS_LOG_COMPONENT_DEFINE ("ht-wifi-network");
60 
61 int main (int argc, char *argv[])
62 {
63  bool udp = true;
64  bool useRts = false;
65  double simulationTime = 10; //seconds
66  double distance = 1.0; //meters
67  double frequency = 5.0; //whether 2.4 or 5.0 GHz
68  int mcs = -1; // -1 indicates an unset value
69  double minExpectedThroughput = 0;
70  double maxExpectedThroughput = 0;
71 
72  CommandLine cmd (__FILE__);
73  cmd.AddValue ("frequency", "Whether working in the 2.4 or 5.0 GHz band (other values gets rejected)", frequency);
74  cmd.AddValue ("distance", "Distance in meters between the station and the access point", distance);
75  cmd.AddValue ("simulationTime", "Simulation time in seconds", simulationTime);
76  cmd.AddValue ("udp", "UDP if set to 1, TCP otherwise", udp);
77  cmd.AddValue ("useRts", "Enable/disable RTS/CTS", useRts);
78  cmd.AddValue ("mcs", "if set, limit testing to a specific MCS (0-7)", mcs);
79  cmd.AddValue ("minExpectedThroughput", "if set, simulation fails if the lowest throughput is below this value", minExpectedThroughput);
80  cmd.AddValue ("maxExpectedThroughput", "if set, simulation fails if the highest throughput is above this value", maxExpectedThroughput);
81  cmd.Parse (argc,argv);
82 
83  if (useRts)
84  {
85  Config::SetDefault ("ns3::WifiRemoteStationManager::RtsCtsThreshold", StringValue ("0"));
86  }
87 
88  double prevThroughput [8];
89  for (uint32_t l = 0; l < 8; l++)
90  {
91  prevThroughput[l] = 0;
92  }
93  std::cout << "MCS value" << "\t\t" << "Channel width" << "\t\t" << "short GI" << "\t\t" << "Throughput" << '\n';
94  int minMcs = 0;
95  int maxMcs = 7;
96  if (mcs >= 0 && mcs <= 7)
97  {
98  minMcs = mcs;
99  maxMcs = mcs;
100  }
101  for (int mcs = minMcs; mcs <= maxMcs; mcs++)
102  {
103  uint8_t index = 0;
104  double previous = 0;
105  for (int channelWidth = 20; channelWidth <= 40; )
106  {
107  for (int sgi = 0; sgi < 2; sgi++)
108  {
109  uint32_t payloadSize; //1500 byte IP packet
110  if (udp)
111  {
112  payloadSize = 1472; //bytes
113  }
114  else
115  {
116  payloadSize = 1448; //bytes
117  Config::SetDefault ("ns3::TcpSocket::SegmentSize", UintegerValue (payloadSize));
118  }
119 
120  NodeContainer wifiStaNode;
121  wifiStaNode.Create (1);
123  wifiApNode.Create (1);
124 
127  phy.SetChannel (channel.Create ());
128 
131  if (frequency == 5.0)
132  {
133  wifi.SetStandard (WIFI_STANDARD_80211n_5GHZ);
134  }
135  else if (frequency == 2.4)
136  {
137  wifi.SetStandard (WIFI_STANDARD_80211n_2_4GHZ);
138  Config::SetDefault ("ns3::LogDistancePropagationLossModel::ReferenceLoss", DoubleValue (40.046));
139  }
140  else
141  {
142  std::cout << "Wrong frequency value!" << std::endl;
143  return 0;
144  }
145 
146  std::ostringstream oss;
147  oss << "HtMcs" << mcs;
148  wifi.SetRemoteStationManager ("ns3::ConstantRateWifiManager","DataMode", StringValue (oss.str ()),
149  "ControlMode", StringValue (oss.str ()));
150 
151  Ssid ssid = Ssid ("ns3-80211n");
152 
153  mac.SetType ("ns3::StaWifiMac",
154  "Ssid", SsidValue (ssid));
155  phy.Set ("ChannelWidth", UintegerValue (channelWidth));
156 
157  NetDeviceContainer staDevice;
158  staDevice = wifi.Install (phy, mac, wifiStaNode);
159 
160  mac.SetType ("ns3::ApWifiMac",
161  "EnableBeaconJitter", BooleanValue (false),
162  "Ssid", SsidValue (ssid));
163  phy.Set ("ChannelWidth", UintegerValue (channelWidth));
164 
165  NetDeviceContainer apDevice;
166  apDevice = wifi.Install (phy, mac, wifiApNode);
167 
168  // Set guard interval
169  Config::Set ("/NodeList/*/DeviceList/*/$ns3::WifiNetDevice/HtConfiguration/ShortGuardIntervalSupported", BooleanValue (sgi));
170 
171  // mobility.
173  Ptr<ListPositionAllocator> positionAlloc = CreateObject<ListPositionAllocator> ();
174 
175  positionAlloc->Add (Vector (0.0, 0.0, 0.0));
176  positionAlloc->Add (Vector (distance, 0.0, 0.0));
177  mobility.SetPositionAllocator (positionAlloc);
178 
179  mobility.SetMobilityModel ("ns3::ConstantPositionMobilityModel");
180 
181  mobility.Install (wifiApNode);
182  mobility.Install (wifiStaNode);
183 
184  /* Internet stack*/
186  stack.Install (wifiApNode);
187  stack.Install (wifiStaNode);
188 
190  address.SetBase ("192.168.1.0", "255.255.255.0");
191  Ipv4InterfaceContainer staNodeInterface;
192  Ipv4InterfaceContainer apNodeInterface;
193 
194  staNodeInterface = address.Assign (staDevice);
195  apNodeInterface = address.Assign (apDevice);
196 
197  /* Setting applications */
198  ApplicationContainer serverApp;
199  if (udp)
200  {
201  //UDP flow
202  uint16_t port = 9;
203  UdpServerHelper server (port);
204  serverApp = server.Install (wifiStaNode.Get (0));
205  serverApp.Start (Seconds (0.0));
206  serverApp.Stop (Seconds (simulationTime + 1));
207 
208  UdpClientHelper client (staNodeInterface.GetAddress (0), port);
209  client.SetAttribute ("MaxPackets", UintegerValue (4294967295u));
210  client.SetAttribute ("Interval", TimeValue (Time ("0.00001"))); //packets/s
211  client.SetAttribute ("PacketSize", UintegerValue (payloadSize));
212  ApplicationContainer clientApp = client.Install (wifiApNode.Get (0));
213  clientApp.Start (Seconds (1.0));
214  clientApp.Stop (Seconds (simulationTime + 1));
215  }
216  else
217  {
218  //TCP flow
219  uint16_t port = 50000;
220  Address localAddress (InetSocketAddress (Ipv4Address::GetAny (), port));
221  PacketSinkHelper packetSinkHelper ("ns3::TcpSocketFactory", localAddress);
222  serverApp = packetSinkHelper.Install (wifiStaNode.Get (0));
223  serverApp.Start (Seconds (0.0));
224  serverApp.Stop (Seconds (simulationTime + 1));
225 
226  OnOffHelper onoff ("ns3::TcpSocketFactory", Ipv4Address::GetAny ());
227  onoff.SetAttribute ("OnTime", StringValue ("ns3::ConstantRandomVariable[Constant=1]"));
228  onoff.SetAttribute ("OffTime", StringValue ("ns3::ConstantRandomVariable[Constant=0]"));
229  onoff.SetAttribute ("PacketSize", UintegerValue (payloadSize));
230  onoff.SetAttribute ("DataRate", DataRateValue (200000000)); //bit/s
231  AddressValue remoteAddress (InetSocketAddress (staNodeInterface.GetAddress (0), port));
232  onoff.SetAttribute ("Remote", remoteAddress);
233  ApplicationContainer clientApp = onoff.Install (wifiApNode.Get (0));
234  clientApp.Start (Seconds (1.0));
235  clientApp.Stop (Seconds (simulationTime + 1));
236  }
237 
239 
240  Simulator::Stop (Seconds (simulationTime + 1));
241  Simulator::Run ();
242 
243  uint64_t rxBytes = 0;
244  if (udp)
245  {
246  rxBytes = payloadSize * DynamicCast<UdpServer> (serverApp.Get (0))->GetReceived ();
247  }
248  else
249  {
250  rxBytes = DynamicCast<PacketSink> (serverApp.Get (0))->GetTotalRx ();
251  }
252  double throughput = (rxBytes * 8) / (simulationTime * 1000000.0); //Mbit/s
253 
255 
256  std::cout << mcs << "\t\t\t" << channelWidth << " MHz\t\t\t" << sgi << "\t\t\t" << throughput << " Mbit/s" << std::endl;
257 
258  //test first element
259  if (mcs == 0 && channelWidth == 20 && sgi == 0)
260  {
261  if (throughput < minExpectedThroughput)
262  {
263  NS_FATAL_ERROR ("Obtained throughput " << throughput << " is not expected!");
264  }
265  }
266  //test last element
267  if (mcs == 7 && channelWidth == 40 && sgi == 1)
268  {
269  if (maxExpectedThroughput > 0 && throughput > maxExpectedThroughput)
270  {
271  NS_FATAL_ERROR ("Obtained throughput " << throughput << " is not expected!");
272  }
273  }
274  //test previous throughput is smaller (for the same mcs)
275  if (throughput > previous)
276  {
277  previous = throughput;
278  }
279  else
280  {
281  NS_FATAL_ERROR ("Obtained throughput " << throughput << " is not expected!");
282  }
283  //test previous throughput is smaller (for the same channel width and GI)
284  if (throughput > prevThroughput [index])
285  {
286  prevThroughput [index] = throughput;
287  }
288  else
289  {
290  NS_FATAL_ERROR ("Obtained throughput " << throughput << " is not expected!");
291  }
292  index++;
293 
294  }
295  channelWidth *= 2;
296  }
297  }
298  return 0;
299 }
holds a vector of ns3::Application pointers.
Simulation virtual time values and global simulation resolution.
Definition: nstime.h:103
an Inet address class
static Ipv4Address GetAny(void)
Smart pointer class similar to boost::intrusive_ptr.
Definition: ptr.h:73
AttributeValue implementation for Boolean.
Definition: boolean.h:36
holds a vector of std::pair of Ptr<Ipv4> and interface index.
static void PopulateRoutingTables(void)
Build a routing database and initialize the routing tables of the nodes in the simulation.
Hold variables of type string.
Definition: string.h:41
Make it easy to create and manage PHY objects for the YANS model.
static YansWifiChannelHelper Default(void)
Create a channel helper in a default working state.
void Set(std::string path, const AttributeValue &value)
Definition: config.cc:839
static void Run(void)
Run the simulation.
Definition: simulator.cc:172
#define NS_LOG_COMPONENT_DEFINE(name)
Define a Log component with a specific name.
Definition: log.h:205
aggregate IP/TCP/UDP functionality to existing Nodes.
#define NS_FATAL_ERROR(msg)
Report a fatal error with a message and terminate.
Definition: fatal-error.h:165
A helper to make it easier to instantiate an ns3::PacketSinkApplication on a set of nodes...
cmd
Definition: second.py:35
helps to create WifiNetDevice objects
Definition: wifi-helper.h:326
A helper to make it easier to instantiate an ns3::OnOffApplication on a set of nodes.
Definition: on-off-helper.h:42
stack
Definition: first.py:41
uint16_t port
Definition: dsdv-manet.cc:45
a polymophic address class
Definition: address.h:90
channel
Definition: third.py:92
mobility
Definition: third.py:108
phy
Definition: third.py:93
Create a client application which sends UDP packets carrying a 32bit sequence number and a 64 bit tim...
AttributeValue implementation for Time.
Definition: nstime.h:1353
Ipv4Address GetAddress(uint32_t i, uint32_t j=0) const
Hold an unsigned integer type.
Definition: uinteger.h:44
ssid
Definition: third.py:100
holds a vector of ns3::NetDevice pointers
mac
Definition: third.py:99
Create a server application which waits for input UDP packets and uses the information carried into t...
wifiApNode
Definition: third.py:90
void Start(Time start)
Arrange for all of the Applications in this container to Start() at the Time given as a parameter...
Parse command-line arguments.
Definition: command-line.h:227
static void Destroy(void)
Execute the events scheduled with ScheduleDestroy().
Definition: simulator.cc:136
void SetAttribute(std::string name, const AttributeValue &value)
Record an attribute to be set in each Application after it is is created.
Every class exported by the ns3 library is enclosed in the ns3 namespace.
keep track of a set of node pointers.
address
Definition: first.py:44
manage and create wifi channel objects for the YANS model.
create MAC layers for a ns3::WifiNetDevice.
The IEEE 802.11 SSID Information Element.
Definition: ssid.h:35
wifi
Definition: third.py:96
Helper class used to assign positions and mobility models to nodes.
AttributeValue implementation for Address.
Definition: address.h:278
void Stop(Time stop)
Arrange for all of the Applications in this container to Stop() at the Time given as a parameter...
AttributeValue implementation for DataRate.
Definition: data-rate.h:298
static void Stop(void)
Tell the Simulator the calling event should be the last one executed.
Definition: simulator.cc:180
Time Seconds(double value)
Construct a Time in the indicated unit.
Definition: nstime.h:1289
AttributeValue implementation for Ssid.
Definition: ssid.h:105
void SetDefault(std::string name, const AttributeValue &value)
Definition: config.cc:849
void Add(Vector v)
Add a position to the list of positions.
Ptr< Node > Get(uint32_t i) const
Get the Ptr<Node> stored in this container at a given index.
A helper class to make life easier while doing simple IPv4 address assignment in scripts.
void Create(uint32_t n)
Create n nodes and append pointers to them to the end of this NodeContainer.
This class can be used to hold variables of floating point type such as &#39;double&#39; or &#39;float&#39;...
Definition: double.h:41
Ptr< Application > Get(uint32_t i) const
Get the Ptr<Application> stored in this container at a given index.