A Discrete-Event Network Simulator
API
wifi-80211e-txop.cc
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1 /*
2  * Copyright (c) 2016 Sébastien Deronne
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  * Author: Sébastien Deronne <sebastien.deronne@gmail.com>
18  */
19 
20 #include "ns3/command-line.h"
21 #include "ns3/internet-stack-helper.h"
22 #include "ns3/ipv4-address-helper.h"
23 #include "ns3/log.h"
24 #include "ns3/mobility-helper.h"
25 #include "ns3/on-off-helper.h"
26 #include "ns3/pointer.h"
27 #include "ns3/qos-txop.h"
28 #include "ns3/ssid.h"
29 #include "ns3/string.h"
30 #include "ns3/udp-client-server-helper.h"
31 #include "ns3/wifi-mac.h"
32 #include "ns3/wifi-net-device.h"
33 #include "ns3/yans-wifi-channel.h"
34 #include "ns3/yans-wifi-helper.h"
35 
36 // This is an example that illustrates 802.11 QoS for different Access Categories.
37 // It defines 4 independent Wi-Fi networks (working on different logical channels
38 // on the same "ns3::YansWifiPhy" channel object).
39 // Each network contains one access point and one station. Each station continuously
40 // transmits data packets to its respective AP.
41 //
42 // Network topology (numbers in parentheses are channel numbers):
43 //
44 // BSS A (36) BSS B (40) BSS C (44) BSS D (48)
45 // * * * * * * * *
46 // | | | | | | | |
47 // AP A STA A AP B STA B AP C STA C AP D STA D
48 //
49 // The configuration is the following on the 4 networks:
50 // - STA A sends AC_BE traffic to AP A with default AC_BE TXOP value of 0 (1 MSDU);
51 // - STA B sends AC_BE traffic to AP B with non-default AC_BE TXOP of 4096 us;
52 // - STA C sends AC_VI traffic to AP C with default AC_VI TXOP of 4096 us;
53 // - STA D sends AC_VI traffic to AP D with non-default AC_VI TXOP value of 0 (1 MSDU);
54 //
55 // The user can select the distance between the stations and the APs, can enable/disable the RTS/CTS
56 // mechanism and can choose the payload size and the simulation duration. Example: ./ns3 run
57 // "wifi-80211e-txop --distance=10 --simulationTime=20 --payloadSize=1000"
58 //
59 // The output prints the throughput measured for the 4 cases/networks described above. When TXOP is
60 // enabled, results show increased throughput since the channel is granted for a longer duration.
61 // TXOP is enabled by default for AC_VI and AC_VO, so that they can use the channel for a longer
62 // duration than AC_BE and AC_BK.
63 
64 using namespace ns3;
65 
66 NS_LOG_COMPONENT_DEFINE("80211eTxop");
67 
72 {
80  void Trace(Time startTime, Time duration, uint8_t linkId);
81  Time m_max{Seconds(0)};
82 };
83 
84 void
85 TxopDurationTracer::Trace(Time startTime, Time duration, uint8_t linkId)
86 {
87  if (duration > m_max)
88  {
89  m_max = duration;
90  }
91 }
92 
93 int
94 main(int argc, char* argv[])
95 {
96  uint32_t payloadSize = 1472; // bytes
97  double simulationTime = 10; // seconds
98  double distance = 5; // meters
99  bool enablePcap = 0;
100  bool verifyResults = 0; // used for regression
101  Time txopLimit = MicroSeconds(4096);
102 
103  CommandLine cmd(__FILE__);
104  cmd.AddValue("payloadSize", "Payload size in bytes", payloadSize);
105  cmd.AddValue("simulationTime", "Simulation time in seconds", simulationTime);
106  cmd.AddValue("distance",
107  "Distance in meters between the station and the access point",
108  distance);
109  cmd.AddValue("enablePcap", "Enable/disable pcap file generation", enablePcap);
110  cmd.AddValue("verifyResults",
111  "Enable/disable results verification at the end of the simulation",
112  verifyResults);
113  cmd.Parse(argc, argv);
114 
116  wifiStaNodes.Create(4);
117  NodeContainer wifiApNodes;
118  wifiApNodes.Create(4);
119 
122  phy.SetPcapDataLinkType(WifiPhyHelper::DLT_IEEE802_11_RADIO);
123  phy.SetChannel(channel.Create());
124 
126  wifi.SetStandard(WIFI_STANDARD_80211a);
127  wifi.SetRemoteStationManager("ns3::IdealWifiManager");
129 
130  NetDeviceContainer staDeviceA;
131  NetDeviceContainer staDeviceB;
132  NetDeviceContainer staDeviceC;
133  NetDeviceContainer staDeviceD;
134  NetDeviceContainer apDeviceA;
135  NetDeviceContainer apDeviceB;
136  NetDeviceContainer apDeviceC;
137  NetDeviceContainer apDeviceD;
138  Ssid ssid;
139 
140  // Network A
141  ssid = Ssid("network-A");
142  phy.Set("ChannelSettings", StringValue("{36, 20, BAND_5GHZ, 0}"));
143  mac.SetType("ns3::StaWifiMac", "QosSupported", BooleanValue(true), "Ssid", SsidValue(ssid));
144  staDeviceA = wifi.Install(phy, mac, wifiStaNodes.Get(0));
145 
146  mac.SetType("ns3::ApWifiMac",
147  "QosSupported",
148  BooleanValue(true),
149  "Ssid",
150  SsidValue(ssid),
151  "EnableBeaconJitter",
152  BooleanValue(false));
153  apDeviceA = wifi.Install(phy, mac, wifiApNodes.Get(0));
154 
155  // Network B
156  ssid = Ssid("network-B");
157  phy.Set("ChannelSettings", StringValue("{40, 20, BAND_5GHZ, 0}"));
158  mac.SetType("ns3::StaWifiMac", "QosSupported", BooleanValue(true), "Ssid", SsidValue(ssid));
159 
160  staDeviceB = wifi.Install(phy, mac, wifiStaNodes.Get(1));
161 
162  mac.SetType("ns3::ApWifiMac",
163  "QosSupported",
164  BooleanValue(true),
165  "Ssid",
166  SsidValue(ssid),
167  "EnableBeaconJitter",
168  BooleanValue(false));
169  apDeviceB = wifi.Install(phy, mac, wifiApNodes.Get(1));
170 
171  // Modify EDCA configuration (TXOP limit) for AC_BE
172  Ptr<NetDevice> dev = wifiApNodes.Get(1)->GetDevice(0);
173  Ptr<WifiNetDevice> wifi_dev = DynamicCast<WifiNetDevice>(dev);
174  Ptr<WifiMac> wifi_mac = wifi_dev->GetMac();
175  PointerValue ptr;
176  Ptr<QosTxop> edca;
177  wifi_mac->GetAttribute("BE_Txop", ptr);
178  edca = ptr.Get<QosTxop>();
179  edca->SetTxopLimit(txopLimit);
180 
181  // Trace TXOP duration for BE on STA1
182  dev = wifiStaNodes.Get(1)->GetDevice(0);
183  wifi_dev = DynamicCast<WifiNetDevice>(dev);
184  wifi_mac = wifi_dev->GetMac();
185  wifi_mac->GetAttribute("BE_Txop", ptr);
186  edca = ptr.Get<QosTxop>();
187  TxopDurationTracer beTxopTracer;
188  edca->TraceConnectWithoutContext("TxopTrace",
189  MakeCallback(&TxopDurationTracer::Trace, &beTxopTracer));
190 
191  // Network C
192  ssid = Ssid("network-C");
193  phy.Set("ChannelSettings", StringValue("{44, 20, BAND_5GHZ, 0}"));
194  mac.SetType("ns3::StaWifiMac", "QosSupported", BooleanValue(true), "Ssid", SsidValue(ssid));
195 
196  staDeviceC = wifi.Install(phy, mac, wifiStaNodes.Get(2));
197 
198  mac.SetType("ns3::ApWifiMac",
199  "QosSupported",
200  BooleanValue(true),
201  "Ssid",
202  SsidValue(ssid),
203  "EnableBeaconJitter",
204  BooleanValue(false));
205  apDeviceC = wifi.Install(phy, mac, wifiApNodes.Get(2));
206 
207  // Trace TXOP duration for VI on STA2
208  dev = wifiStaNodes.Get(2)->GetDevice(0);
209  wifi_dev = DynamicCast<WifiNetDevice>(dev);
210  wifi_mac = wifi_dev->GetMac();
211  wifi_mac->GetAttribute("VI_Txop", ptr);
212  edca = ptr.Get<QosTxop>();
213  TxopDurationTracer viTxopTracer;
214  edca->TraceConnectWithoutContext("TxopTrace",
215  MakeCallback(&TxopDurationTracer::Trace, &viTxopTracer));
216 
217  // Network D
218  ssid = Ssid("network-D");
219  phy.Set("ChannelSettings", StringValue("{48, 20, BAND_5GHZ, 0}"));
220  mac.SetType("ns3::StaWifiMac", "QosSupported", BooleanValue(true), "Ssid", SsidValue(ssid));
221 
222  staDeviceD = wifi.Install(phy, mac, wifiStaNodes.Get(3));
223 
224  mac.SetType("ns3::ApWifiMac",
225  "QosSupported",
226  BooleanValue(true),
227  "Ssid",
228  SsidValue(ssid),
229  "EnableBeaconJitter",
230  BooleanValue(false));
231  apDeviceD = wifi.Install(phy, mac, wifiApNodes.Get(3));
232 
233  // Modify EDCA configuration (TXOP limit) for AC_VO
234  dev = wifiApNodes.Get(3)->GetDevice(0);
235  wifi_dev = DynamicCast<WifiNetDevice>(dev);
236  wifi_mac = wifi_dev->GetMac();
237  wifi_mac->GetAttribute("VI_Txop", ptr);
238  edca = ptr.Get<QosTxop>();
239  edca->SetTxopLimit(MicroSeconds(0));
240 
241  /* Setting mobility model */
243  Ptr<ListPositionAllocator> positionAlloc = CreateObject<ListPositionAllocator>();
244  mobility.SetMobilityModel("ns3::ConstantPositionMobilityModel");
245 
246  // Set position for APs
247  positionAlloc->Add(Vector(0.0, 0.0, 0.0));
248  positionAlloc->Add(Vector(10.0, 0.0, 0.0));
249  positionAlloc->Add(Vector(20.0, 0.0, 0.0));
250  positionAlloc->Add(Vector(30.0, 0.0, 0.0));
251  // Set position for STAs
252  positionAlloc->Add(Vector(distance, 0.0, 0.0));
253  positionAlloc->Add(Vector(10 + distance, 0.0, 0.0));
254  positionAlloc->Add(Vector(20 + distance, 0.0, 0.0));
255  positionAlloc->Add(Vector(30 + distance, 0.0, 0.0));
256  // Remark: while we set these positions 10 meters apart, the networks do not interact
257  // and the only variable that affects transmission performance is the distance.
258 
259  mobility.SetPositionAllocator(positionAlloc);
260  mobility.Install(wifiApNodes);
261  mobility.Install(wifiStaNodes);
262 
263  /* Internet stack */
265  stack.Install(wifiApNodes);
266  stack.Install(wifiStaNodes);
267 
269  address.SetBase("192.168.1.0", "255.255.255.0");
270  Ipv4InterfaceContainer StaInterfaceA;
271  StaInterfaceA = address.Assign(staDeviceA);
272  Ipv4InterfaceContainer ApInterfaceA;
273  ApInterfaceA = address.Assign(apDeviceA);
274 
275  address.SetBase("192.168.2.0", "255.255.255.0");
276  Ipv4InterfaceContainer StaInterfaceB;
277  StaInterfaceB = address.Assign(staDeviceB);
278  Ipv4InterfaceContainer ApInterfaceB;
279  ApInterfaceB = address.Assign(apDeviceB);
280 
281  address.SetBase("192.168.3.0", "255.255.255.0");
282  Ipv4InterfaceContainer StaInterfaceC;
283  StaInterfaceC = address.Assign(staDeviceC);
284  Ipv4InterfaceContainer ApInterfaceC;
285  ApInterfaceC = address.Assign(apDeviceC);
286 
287  address.SetBase("192.168.4.0", "255.255.255.0");
288  Ipv4InterfaceContainer StaInterfaceD;
289  StaInterfaceD = address.Assign(staDeviceD);
290  Ipv4InterfaceContainer ApInterfaceD;
291  ApInterfaceD = address.Assign(apDeviceD);
292 
293  /* Setting applications */
294  uint16_t port = 5001;
295  UdpServerHelper serverA(port);
296  ApplicationContainer serverAppA = serverA.Install(wifiApNodes.Get(0));
297  serverAppA.Start(Seconds(0.0));
298  serverAppA.Stop(Seconds(simulationTime + 1));
299 
300  InetSocketAddress destA(ApInterfaceA.GetAddress(0), port);
301  destA.SetTos(0x70); // AC_BE
302 
303  OnOffHelper clientA("ns3::UdpSocketFactory", destA);
304  clientA.SetAttribute("OnTime", StringValue("ns3::ConstantRandomVariable[Constant=1]"));
305  clientA.SetAttribute("OffTime", StringValue("ns3::ConstantRandomVariable[Constant=0]"));
306  clientA.SetAttribute("DataRate", StringValue("100000kb/s"));
307  clientA.SetAttribute("PacketSize", UintegerValue(payloadSize));
308 
309  ApplicationContainer clientAppA = clientA.Install(wifiStaNodes.Get(0));
310  clientAppA.Start(Seconds(1.0));
311  clientAppA.Stop(Seconds(simulationTime + 1));
312 
313  UdpServerHelper serverB(port);
314  ApplicationContainer serverAppB = serverB.Install(wifiApNodes.Get(1));
315  serverAppB.Start(Seconds(0.0));
316  serverAppB.Stop(Seconds(simulationTime + 1));
317 
318  InetSocketAddress destB(ApInterfaceB.GetAddress(0), port);
319  destB.SetTos(0x70); // AC_BE
320 
321  OnOffHelper clientB("ns3::UdpSocketFactory", destB);
322  clientB.SetAttribute("OnTime", StringValue("ns3::ConstantRandomVariable[Constant=1]"));
323  clientB.SetAttribute("OffTime", StringValue("ns3::ConstantRandomVariable[Constant=0]"));
324  clientB.SetAttribute("DataRate", StringValue("100000kb/s"));
325  clientB.SetAttribute("PacketSize", UintegerValue(payloadSize));
326 
327  ApplicationContainer clientAppB = clientB.Install(wifiStaNodes.Get(1));
328  clientAppB.Start(Seconds(1.0));
329  clientAppB.Stop(Seconds(simulationTime + 1));
330 
331  UdpServerHelper serverC(port);
332  ApplicationContainer serverAppC = serverC.Install(wifiApNodes.Get(2));
333  serverAppC.Start(Seconds(0.0));
334  serverAppC.Stop(Seconds(simulationTime + 1));
335 
336  InetSocketAddress destC(ApInterfaceC.GetAddress(0), port);
337  destC.SetTos(0xb8); // AC_VI
338 
339  OnOffHelper clientC("ns3::UdpSocketFactory", destC);
340  clientC.SetAttribute("OnTime", StringValue("ns3::ConstantRandomVariable[Constant=1]"));
341  clientC.SetAttribute("OffTime", StringValue("ns3::ConstantRandomVariable[Constant=0]"));
342  clientC.SetAttribute("DataRate", StringValue("100000kb/s"));
343  clientC.SetAttribute("PacketSize", UintegerValue(payloadSize));
344 
345  ApplicationContainer clientAppC = clientC.Install(wifiStaNodes.Get(2));
346  clientAppC.Start(Seconds(1.0));
347  clientAppC.Stop(Seconds(simulationTime + 1));
348 
349  UdpServerHelper serverD(port);
350  ApplicationContainer serverAppD = serverD.Install(wifiApNodes.Get(3));
351  serverAppD.Start(Seconds(0.0));
352  serverAppD.Stop(Seconds(simulationTime + 1));
353 
354  InetSocketAddress destD(ApInterfaceD.GetAddress(0), port);
355  destD.SetTos(0xb8); // AC_VI
356 
357  OnOffHelper clientD("ns3::UdpSocketFactory", destD);
358  clientD.SetAttribute("OnTime", StringValue("ns3::ConstantRandomVariable[Constant=1]"));
359  clientD.SetAttribute("OffTime", StringValue("ns3::ConstantRandomVariable[Constant=0]"));
360  clientD.SetAttribute("DataRate", StringValue("100000kb/s"));
361  clientD.SetAttribute("PacketSize", UintegerValue(payloadSize));
362 
363  ApplicationContainer clientAppD = clientD.Install(wifiStaNodes.Get(3));
364  clientAppD.Start(Seconds(1.0));
365  clientAppD.Stop(Seconds(simulationTime + 1));
366 
367  if (enablePcap)
368  {
369  phy.EnablePcap("AP_A", apDeviceA.Get(0));
370  phy.EnablePcap("STA_A", staDeviceA.Get(0));
371  phy.EnablePcap("AP_B", apDeviceB.Get(0));
372  phy.EnablePcap("STA_B", staDeviceB.Get(0));
373  phy.EnablePcap("AP_C", apDeviceC.Get(0));
374  phy.EnablePcap("STA_C", staDeviceC.Get(0));
375  phy.EnablePcap("AP_D", apDeviceD.Get(0));
376  phy.EnablePcap("STA_D", staDeviceD.Get(0));
377  }
378 
379  Simulator::Stop(Seconds(simulationTime + 1));
380  Simulator::Run();
381 
382  /* Show results */
383  uint64_t totalPacketsThroughA = DynamicCast<UdpServer>(serverAppA.Get(0))->GetReceived();
384  uint64_t totalPacketsThroughB = DynamicCast<UdpServer>(serverAppB.Get(0))->GetReceived();
385  uint64_t totalPacketsThroughC = DynamicCast<UdpServer>(serverAppC.Get(0))->GetReceived();
386  uint64_t totalPacketsThroughD = DynamicCast<UdpServer>(serverAppD.Get(0))->GetReceived();
387 
389 
390  double throughput = totalPacketsThroughA * payloadSize * 8 / (simulationTime * 1000000.0);
391  std::cout << "AC_BE with default TXOP limit (0ms): " << '\n'
392  << " Throughput = " << throughput << " Mbit/s" << '\n';
393  if (verifyResults && (throughput < 28 || throughput > 29))
394  {
395  NS_LOG_ERROR("Obtained throughput " << throughput << " is not in the expected boundaries!");
396  exit(1);
397  }
398 
399  throughput = totalPacketsThroughB * payloadSize * 8 / (simulationTime * 1000000.0);
400  std::cout << "AC_BE with non-default TXOP limit (4.096ms): " << '\n'
401  << " Throughput = " << throughput << " Mbit/s" << '\n';
402  if (verifyResults && (throughput < 36.5 || throughput > 37))
403  {
404  NS_LOG_ERROR("Obtained throughput " << throughput << " is not in the expected boundaries!");
405  exit(1);
406  }
407  std::cout << " Maximum TXOP duration = " << beTxopTracer.m_max.GetMicroSeconds() << " us"
408  << '\n';
409  if (verifyResults &&
410  (beTxopTracer.m_max < MicroSeconds(3008) || beTxopTracer.m_max > txopLimit))
411  {
412  NS_LOG_ERROR("Maximum TXOP duration " << beTxopTracer.m_max
413  << " is not in the expected boundaries!");
414  exit(1);
415  }
416 
417  throughput = totalPacketsThroughC * payloadSize * 8 / (simulationTime * 1000000.0);
418  std::cout << "AC_VI with default TXOP limit (4.096ms): " << '\n'
419  << " Throughput = " << throughput << " Mbit/s" << '\n';
420  if (verifyResults && (throughput < 36.5 || throughput > 37.5))
421  {
422  NS_LOG_ERROR("Obtained throughput " << throughput << " is not in the expected boundaries!");
423  exit(1);
424  }
425  std::cout << " Maximum TXOP duration = " << viTxopTracer.m_max.GetMicroSeconds() << " us"
426  << '\n';
427  if (verifyResults &&
428  (viTxopTracer.m_max < MicroSeconds(3008) || viTxopTracer.m_max > txopLimit))
429  {
430  NS_LOG_ERROR("Maximum TXOP duration " << viTxopTracer.m_max
431  << " is not in the expected boundaries!");
432  exit(1);
433  }
434 
435  throughput = totalPacketsThroughD * payloadSize * 8 / (simulationTime * 1000000.0);
436  std::cout << "AC_VI with non-default TXOP limit (0ms): " << '\n'
437  << " Throughput = " << throughput << " Mbit/s" << '\n';
438  if (verifyResults && (throughput < 31.5 || throughput > 32.5))
439  {
440  NS_LOG_ERROR("Obtained throughput " << throughput << " is not in the expected boundaries!");
441  exit(1);
442  }
443 
444  return 0;
445 }
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.
Ptr< Application > Get(uint32_t i) const
Get the Ptr<Application> stored in this container at a given index.
void Stop(Time stop) const
Arrange for all of the Applications in this container to Stop() at the Time given as a parameter.
AttributeValue implementation for Boolean.
Definition: boolean.h:37
Parse command-line arguments.
Definition: command-line.h:232
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.
holds a vector of std::pair of Ptr<Ipv4> and interface index.
Ipv4Address GetAddress(uint32_t i, uint32_t j=0) const
Helper class used to assign positions and mobility models to nodes.
holds a vector of ns3::NetDevice pointers
Ptr< NetDevice > Get(uint32_t i) const
Get the Ptr<NetDevice> stored in this container at a given index.
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.
Ptr< NetDevice > GetDevice(uint32_t index) const
Retrieve the index-th NetDevice associated to this node.
Definition: node.cc:152
bool TraceConnectWithoutContext(std::string name, const CallbackBase &cb)
Connect a TraceSource to a Callback without a context.
Definition: object-base.cc:311
void GetAttribute(std::string name, AttributeValue &value) const
Get the value of an attribute, raising fatal errors if unsuccessful.
Definition: object-base.cc:240
A helper to make it easier to instantiate an ns3::OnOffApplication on a set of nodes.
Definition: on-off-helper.h:44
Hold objects of type Ptr<T>.
Definition: pointer.h:37
Ptr< T > Get() const
Definition: pointer.h:206
Smart pointer class similar to boost::intrusive_ptr.
Definition: ptr.h:78
Handle packet fragmentation and retransmissions for QoS data frames as well as MSDU aggregation (A-MS...
Definition: qos-txop.h:73
static void Destroy()
Execute the events scheduled with ScheduleDestroy().
Definition: simulator.cc:140
static void Run()
Run the simulation.
Definition: simulator.cc:176
static void Stop()
Tell the Simulator the calling event should be the last one executed.
Definition: simulator.cc:184
The IEEE 802.11 SSID Information Element.
Definition: ssid.h:36
AttributeValue implementation for Ssid.
Hold variables of type string.
Definition: string.h:56
Simulation virtual time values and global simulation resolution.
Definition: nstime.h:105
void SetTxopLimit(Time txopLimit)
Set the TXOP limit.
Definition: txop.cc:376
Create a server application which waits for input UDP packets and uses the information carried into t...
Hold an unsigned integer type.
Definition: uinteger.h:45
helps to create WifiNetDevice objects
Definition: wifi-helper.h:325
create MAC layers for a ns3::WifiNetDevice.
Ptr< WifiMac > GetMac() const
@ DLT_IEEE802_11_RADIO
Include Radiotap link layer information.
Definition: wifi-helper.h:179
manage and create wifi channel objects for the YANS model.
static YansWifiChannelHelper Default()
Create a channel helper in a default working state.
Make it easy to create and manage PHY objects for the YANS model.
uint16_t port
Definition: dsdv-manet.cc:45
#define NS_LOG_ERROR(msg)
Use NS_LOG to output a message of level LOG_ERROR.
Definition: log.h:254
#define NS_LOG_COMPONENT_DEFINE(name)
Define a Log component with a specific name.
Definition: log.h:202
Time MicroSeconds(uint64_t value)
Construct a Time in the indicated unit.
Definition: nstime.h:1360
Time Seconds(double value)
Construct a Time in the indicated unit.
Definition: nstime.h:1336
@ WIFI_STANDARD_80211a
address
Definition: first.py:40
stack
Definition: first.py:37
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:707
cmd
Definition: second.py:33
ssid
Definition: third.py:86
channel
Definition: third.py:81
mac
Definition: third.py:85
wifi
Definition: third.py:88
mobility
Definition: third.py:96
wifiStaNodes
Definition: third.py:77
phy
Definition: third.py:82
Keeps the maximum duration among all TXOPs.
void Trace(Time startTime, Time duration, uint8_t linkId)
Callback connected to TXOP duration trace source.