58 #include "ns3/gnuplot.h" 59 #include "ns3/command-line.h" 60 #include "ns3/config.h" 61 #include "ns3/uinteger.h" 62 #include "ns3/double.h" 64 #include "ns3/yans-wifi-helper.h" 66 #include "ns3/mobility-helper.h" 67 #include "ns3/internet-stack-helper.h" 68 #include "ns3/ipv4-address-helper.h" 69 #include "ns3/packet-sink-helper.h" 70 #include "ns3/on-off-helper.h" 71 #include "ns3/yans-wifi-channel.h" 72 #include "ns3/wifi-net-device.h" 73 #include "ns3/wifi-mac.h" 74 #include "ns3/wifi-mac-header.h" 75 #include "ns3/flow-monitor-helper.h" 76 #include "ns3/ipv4-flow-classifier.h" 91 void CheckStatistics (
double time);
106 double GetBusyTime ();
109 typedef std::vector<std::pair<Time, DataRate> >
TxTime;
113 std::map<Mac48Address, double> currentPower;
114 std::map<Mac48Address, DataRate> currentRate;
115 uint32_t m_bytesTotal;
144 double power =
phy->GetTxPowerEnd ();
145 for (uint32_t j = 0; j < stas.
GetN (); j++)
150 currentPower[addr] = power;
151 currentRate[addr] = dataRate;
153 currentRate[
Mac48Address (
"ff:ff:ff:ff:ff:ff")] = dataRate;
165 m_output.SetTitle (
"Throughput Mbits/s");
166 m_output_idle.SetTitle (
"Idle Time");
167 m_output_busy.SetTitle (
"Busy Time");
168 m_output_rx.SetTitle (
"RX Time");
169 m_output_tx.SetTitle (
"TX Time");
175 uint32_t nModes =
phy->GetNModes ();
176 for (uint32_t i = 0; i < nModes; i++)
186 timeTable.push_back (std::make_pair (time, dataRate));
193 for (TxTime::const_iterator i = timeTable.begin (); i != timeTable.end (); i++)
195 if (rate == i->second)
213 totalEnergy += pow (10.0, currentPower[dest] / 10.0) * GetCalcTxTime (currentRate[dest]).GetSeconds ();
214 totalTime += GetCalcTxTime (currentRate[dest]).GetSeconds ();
221 currentPower[dest] = newPower;
227 currentRate[dest] = newRate;
258 m_bytesTotal += packet->
GetSize ();
264 double mbs = ((m_bytesTotal * 8.0) / (1000000 * time));
266 double atp = totalEnergy / time;
272 m_output_idle.Add ((
Simulator::Now ()).GetSeconds (), idleTime * 100);
273 m_output_busy.Add ((
Simulator::Now ()).GetSeconds (), busyTime * 100);
274 m_output_tx.Add ((
Simulator::Now ()).GetSeconds (), txTime * 100);
275 m_output_rx.Add ((
Simulator::Now ()).GetSeconds (), rxTime * 100);
293 return m_output_power;
299 return m_output_idle;
305 return m_output_busy;
323 return totalBusyTime + totalRxTime;
328 NS_LOG_INFO ((
Simulator::Now ()).GetSeconds () <<
" " << dest <<
" Old power=" << oldPower <<
" New power=" << newPower);
336 int main (
int argc,
char *argv[])
340 double maxPower = 17;
342 uint32_t powerLevels = 18;
344 uint32_t rtsThreshold = 2346;
345 std::string manager =
"ns3::ParfWifiManager";
346 std::string outputFileName =
"parf";
355 uint32_t simuTime = 100;
358 cmd.AddValue (
"manager",
"PRC Manager", manager);
359 cmd.AddValue (
"rtsThreshold",
"RTS threshold", rtsThreshold);
360 cmd.AddValue (
"outputFileName",
"Output filename", outputFileName);
361 cmd.AddValue (
"simuTime",
"Total simulation time (sec)", simuTime);
362 cmd.AddValue (
"maxPower",
"Maximum available transmission level (dbm).", maxPower);
363 cmd.AddValue (
"minPower",
"Minimum available transmission level (dbm).", minPower);
364 cmd.AddValue (
"powerLevels",
"Number of transmission power levels available between " 365 "TxPowerStart and TxPowerEnd included.", powerLevels);
366 cmd.AddValue (
"AP1_x",
"Position of AP1 in x coordinate", ap1_x);
367 cmd.AddValue (
"AP1_y",
"Position of AP1 in y coordinate", ap1_y);
368 cmd.AddValue (
"STA1_x",
"Position of STA1 in x coordinate", sta1_x);
369 cmd.AddValue (
"STA1_y",
"Position of STA1 in y coordinate", sta1_y);
370 cmd.AddValue (
"AP2_x",
"Position of AP2 in x coordinate", ap2_x);
371 cmd.AddValue (
"AP2_y",
"Position of AP2 in y coordinate", ap2_y);
372 cmd.AddValue (
"STA2_x",
"Position of STA2 in x coordinate", sta2_x);
373 cmd.AddValue (
"STA2_y",
"Position of STA2 in y coordinate", sta2_y);
374 cmd.Parse (argc, argv);
397 wifi.SetRemoteStationManager (
"ns3::AarfWifiManager",
"RtsCtsThreshold",
UintegerValue (rtsThreshold));
402 wifiMac.
SetType (
"ns3::StaWifiMac",
408 wifiMac.
SetType (
"ns3::StaWifiMac",
419 wifiMac.
SetType (
"ns3::ApWifiMac",
421 wifiApDevices.
Add (
wifi.Install (wifiPhy, wifiMac, wifiApNodes.
Get (0)));
424 wifiMac.
SetType (
"ns3::ApWifiMac",
427 wifiApDevices.
Add (
wifi.Install (wifiPhy, wifiMac, wifiApNodes.
Get (1)));
429 wifiDevices.
Add (wifiStaDevices);
430 wifiDevices.
Add (wifiApDevices);
435 positionAlloc->
Add (Vector (ap1_x, ap1_y, 0.0));
436 positionAlloc->
Add (Vector (sta1_x, sta1_y, 0.0));
437 positionAlloc->
Add (Vector (ap2_x, ap2_y, 0.0));
438 positionAlloc->
Add (Vector (sta2_x, sta2_y, 0.0));
439 mobility.SetPositionAllocator (positionAlloc);
440 mobility.SetMobilityModel (
"ns3::ConstantPositionMobilityModel");
449 stack.Install (wifiApNodes);
452 address.SetBase (
"10.1.1.0",
"255.255.255.0");
475 apps_source.
Add (onoff1.Install (wifiApNodes.
Get (1)));
495 Config::Connect (
"/NodeList/0/DeviceList/*/$ns3::WifiNetDevice/RemoteStationManager/$" + manager +
"/PowerChange",
497 Config::Connect (
"/NodeList/0/DeviceList/*/$ns3::WifiNetDevice/RemoteStationManager/$" + manager +
"/RateChange",
499 Config::Connect (
"/NodeList/1/DeviceList/*/$ns3::WifiNetDevice/RemoteStationManager/$" + manager +
"/PowerChange",
501 Config::Connect (
"/NodeList/1/DeviceList/*/$ns3::WifiNetDevice/RemoteStationManager/$" + manager +
"/RateChange",
504 Config::Connect (
"/NodeList/0/DeviceList/*/$ns3::WifiNetDevice/Phy/PhyTxBegin",
506 Config::Connect (
"/NodeList/1/DeviceList/*/$ns3::WifiNetDevice/Phy/PhyTxBegin",
510 Config::Connect (
"/NodeList/0/DeviceList/*/$ns3::WifiNetDevice/Phy/$ns3::YansWifiPhy/State/State",
512 Config::Connect (
"/NodeList/1/DeviceList/*/$ns3::WifiNetDevice/Phy/$ns3::YansWifiPhy/State/State",
519 Config::Connect (
"/NodeList/[0-1]/DeviceList/*/$ns3::WifiNetDevice/RemoteStationManager/$" + manager +
"/PowerChange",
521 Config::Connect (
"/NodeList/[0-1]/DeviceList/*/$ns3::WifiNetDevice/RemoteStationManager/$" + manager +
"/RateChange",
534 std::map<FlowId, FlowMonitor::FlowStats> stats = monitor->
GetFlowStats ();
535 for (std::map<FlowId, FlowMonitor::FlowStats>::const_iterator i = stats.begin (); i != stats.end (); ++i)
541 NS_LOG_INFO (
" Tx Bytes: " << i->second.txBytes <<
"\n");
542 NS_LOG_INFO (
" Rx Bytes: " << i->second.rxBytes <<
"\n");
543 NS_LOG_UNCOND (
" Throughput to 10.1.1.1: " << i->second.rxBytes * 8.0 / (i->second.timeLastRxPacket.GetSeconds () - i->second.timeFirstTxPacket.GetSeconds ()) / 1024 / 1024 <<
" Mbps\n");
544 NS_LOG_INFO (
" Mean delay: " << i->second.delaySum.GetSeconds () / i->second.rxPackets <<
"\n");
545 NS_LOG_INFO (
" Mean jitter: " << i->second.jitterSum.GetSeconds () / (i->second.rxPackets - 1) <<
"\n");
551 NS_LOG_INFO (
" Tx Bytes: " << i->second.txBytes <<
"\n");
552 NS_LOG_INFO (
" Rx Bytes: " << i->second.rxBytes <<
"\n");
553 NS_LOG_UNCOND (
" Throughput to 10.1.1.2: " << i->second.rxBytes * 8.0 / (i->second.timeLastRxPacket.GetSeconds () - i->second.timeFirstTxPacket.GetSeconds ()) / 1024 / 1024 <<
" Mbps\n");
554 NS_LOG_INFO (
" Mean delay: " << i->second.delaySum.GetSeconds () / i->second.rxPackets <<
"\n");
555 NS_LOG_INFO (
" Mean jitter: " << i->second.jitterSum.GetSeconds () / (i->second.rxPackets - 1) <<
"\n");
561 std::ofstream outfileTh0 ((
"throughput-" + outputFileName +
"-0.plt").c_str ());
562 Gnuplot gnuplot =
Gnuplot ((
"throughput-" + outputFileName +
"-0.eps").c_str (),
"Throughput");
564 gnuplot.
SetLegend (
"Time (seconds)",
"Throughput (Mb/s)");
565 gnuplot.
SetTitle (
"Throughput (AP0 to STA) vs time");
569 if (manager.compare (
"ns3::ParfWifiManager") == 0
570 || manager.compare (
"ns3::AparfWifiManager") == 0
571 || manager.compare (
"ns3::RrpaaWifiManager") == 0)
573 std::ofstream outfilePower0 ((
"power-" + outputFileName +
"-0.plt").c_str ());
574 gnuplot =
Gnuplot ((
"power-" + outputFileName +
"-0.eps").c_str (),
"Average Transmit Power");
576 gnuplot.
SetLegend (
"Time (seconds)",
"Power (mW)");
577 gnuplot.
SetTitle (
"Average transmit power (AP0 to STA) vs time");
582 std::ofstream outfileTx0 ((
"tx-" + outputFileName +
"-0.plt").c_str ());
583 gnuplot =
Gnuplot ((
"tx-" + outputFileName +
"-0.eps").c_str (),
"Time in TX State");
585 gnuplot.
SetLegend (
"Time (seconds)",
"Percent");
586 gnuplot.
SetTitle (
"Percentage time AP0 in TX state vs time");
590 std::ofstream outfileRx0 ((
"rx-" + outputFileName +
"-0.plt").c_str ());
591 gnuplot =
Gnuplot ((
"rx-" + outputFileName +
"-0.eps").c_str (),
"Time in RX State");
593 gnuplot.
SetLegend (
"Time (seconds)",
"Percent");
594 gnuplot.
SetTitle (
"Percentage time AP0 in RX state vs time");
598 std::ofstream outfileBusy0 ((
"busy-" + outputFileName +
"-0.plt").c_str ());
599 gnuplot =
Gnuplot ((
"busy-" + outputFileName +
"-0.eps").c_str (),
"Time in Busy State");
601 gnuplot.
SetLegend (
"Time (seconds)",
"Percent");
602 gnuplot.
SetTitle (
"Percentage time AP0 in Busy state vs time");
606 std::ofstream outfileIdle0 ((
"idle-" + outputFileName +
"-0.plt").c_str ());
607 gnuplot =
Gnuplot ((
"idle-" + outputFileName +
"-0.eps").c_str (),
"Time in Idle State");
609 gnuplot.
SetLegend (
"Time (seconds)",
"Percent");
610 gnuplot.
SetTitle (
"Percentage time AP0 in Idle state vs time");
615 std::ofstream outfileTh1 ((
"throughput-" + outputFileName +
"-1.plt").c_str ());
616 gnuplot =
Gnuplot ((
"throughput-" + outputFileName +
"-1.eps").c_str (),
"Throughput");
618 gnuplot.
SetLegend (
"Time (seconds)",
"Throughput (Mb/s)");
619 gnuplot.
SetTitle (
"Throughput (AP1 to STA) vs time");
623 if (manager.compare (
"ns3::ParfWifiManager") == 0
624 || manager.compare (
"ns3::AparfWifiManager") == 0
625 || manager.compare (
"ns3::RrpaaWifiManager") == 0)
627 std::ofstream outfilePower1 ((
"power-" + outputFileName +
"-1.plt").c_str ());
628 gnuplot =
Gnuplot ((
"power-" + outputFileName +
"-1.eps").c_str (),
"Average Transmit Power");
630 gnuplot.
SetLegend (
"Time (seconds)",
"Power (mW)");
631 gnuplot.
SetTitle (
"Average transmit power (AP1 to STA) vs time");
636 std::ofstream outfileTx1 ((
"tx-" + outputFileName +
"-1.plt").c_str ());
637 gnuplot =
Gnuplot ((
"tx-" + outputFileName +
"-1.eps").c_str (),
"Time in TX State");
639 gnuplot.
SetLegend (
"Time (seconds)",
"Percent");
640 gnuplot.
SetTitle (
"Percentage time AP1 in TX state vs time");
644 std::ofstream outfileRx1 ((
"rx-" + outputFileName +
"-1.plt").c_str ());
645 gnuplot =
Gnuplot ((
"rx-" + outputFileName +
"-1.eps").c_str (),
"Time in RX State");
647 gnuplot.
SetLegend (
"Time (seconds)",
"Percent");
648 gnuplot.
SetTitle (
"Percentage time AP1 in RX state vs time");
652 std::ofstream outfileBusy1 ((
"busy-" + outputFileName +
"-1.plt").c_str ());
653 gnuplot =
Gnuplot ((
"busy-" + outputFileName +
"-1.eps").c_str (),
"Time in Busy State");
655 gnuplot.
SetLegend (
"Time (seconds)",
"Percent");
656 gnuplot.
SetTitle (
"Percentage time AP1 in Busy state vs time");
660 std::ofstream outfileIdle1 ((
"idle-" + outputFileName +
"-1.plt").c_str ());
661 gnuplot =
Gnuplot ((
"idle-" + outputFileName +
"-1.eps").c_str (),
"Time in Idle State");
663 gnuplot.
SetLegend (
"Time (seconds)",
"Percent");
664 gnuplot.
SetTitle (
"Percentage time AP1 in Idle state vs time");
Gnuplot2dDataset m_output_idle
void Set(std::string name, const AttributeValue &v)
holds a vector of ns3::Application pointers.
void SetupPhy(Ptr< WifiPhy > phy)
Ptr< NetDevice > Get(uint32_t i) const
Get the Ptr<NetDevice> stored in this container at a given index.
Simulation virtual time values and global simulation resolution.
Gnuplot2dDataset m_output_busy
Gnuplot2dDataset m_output_tx
This class mimics the TXVECTOR which is to be passed to the PHY in order to define the parameters whi...
Class to represent a 2D points plot.
holds a vector of std::pair of Ptr<Ipv4> and interface index.
void SetChannelWidth(uint16_t channelWidth)
Sets the selected channelWidth (in MHz)
uint32_t GetSize(void) const
Returns the the size in bytes of the packet (including the zero-filled initial payload).
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 Add(ApplicationContainer other)
Append the contents of another ApplicationContainer to the end of this container. ...
Ipv4Address destinationAddress
Destination address.
double GetSeconds(void) const
Get an approximation of the time stored in this instance in the indicated unit.
#define NS_ASSERT(condition)
At runtime, in debugging builds, if this condition is not true, the program prints the source file...
static void Run(void)
Run the simulation.
#define NS_LOG_COMPONENT_DEFINE(name)
Define a Log component with a specific name.
const FlowStatsContainer & GetFlowStats() const
Retrieve all collected the flow statistics.
aggregate IP/TCP/UDP functionality to existing Nodes.
void RateCallback(std::string path, DataRate oldRate, DataRate newRate, Mac48Address dest)
void AddDataset(const GnuplotDataset &dataset)
#define NS_LOG_INFO(msg)
Use NS_LOG to output a message of level LOG_INFO.
A helper to make it easier to instantiate an ns3::PacketSinkApplication on a set of nodes...
static YansWifiPhyHelper Default(void)
Create a phy helper in a default working state.
helps to create WifiNetDevice objects
represent a single transmission modeA WifiMode is implemented by a single integer which is used to lo...
A helper to make it easier to instantiate an ns3::OnOffApplication on a set of nodes.
Gnuplot2dDataset GetPowerDatafile()
void RateCallback(std::string path, DataRate oldRate, DataRate newRate, Mac48Address dest)
a polymophic address class
Ptr< YansWifiChannel > Create(void) const
Gnuplot2dDataset GetDatafile()
void RxCallback(std::string path, Ptr< const Packet > packet, const Address &from)
void StateCallback(std::string path, Time init, Time duration, WifiPhyState state)
Class for representing data rates.
void SetChannel(Ptr< YansWifiChannel > channel)
Time GetCalcTxTime(DataRate rate)
void PowerCallback(std::string path, double oldPower, double newPower, Mac48Address dest)
Gnuplot2dDataset GetRxDatafile()
static EventId Schedule(Time const &delay, MEM mem_ptr, OBJ obj)
Schedule an event to expire after delay.
a simple class to generate gnuplot-ready plotting commands from a set of datasets.
AttributeValue implementation for Time.
Ipv4Address GetAddress(uint32_t i, uint32_t j=0) const
void SetTitle(const std::string &title)
void Add(NetDeviceContainer other)
Append the contents of another NetDeviceContainer to the end of this container.
Hold an unsigned integer type.
holds a vector of ns3::NetDevice pointers
static const uint32_t packetSize
The PHY layer has sense the medium busy through the CCA mechanism.
uint32_t PeekHeader(Header &header) const
Deserialize but does not remove the header from the internal buffer.
Callback< R > MakeCallback(R(T::*memPtr)(void), OBJ objPtr)
void GenerateOutput(std::ostream &os)
Writes gnuplot commands and data values to a single output stream.
Ptr< FlowMonitor > InstallAll()
Enable flow monitoring on all nodes.
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.
void Connect(std::string path, const CallbackBase &cb)
void SetLegend(const std::string &xLegend, const std::string &yLegend)
static void Destroy(void)
Execute the events scheduled with ScheduleDestroy().
Ptr< WifiPhy > GetPhy(void) const
Ptr< FlowClassifier > GetClassifier()
Retrieve the FlowClassifier object for IPv4 created by the Install* methods.
OFDM PHY for the 5 GHz band (Clause 17)
Every class exported by the ns3 library is enclosed in the ns3 namespace.
keep track of a set of node pointers.
void SetPreambleType(WifiPreamble preamble)
Sets the preamble type.
WifiPhyState
The state of the PHY layer.
std::vector< std::pair< Time, DataRate > > TxTime
#define NS_LOG_UNCOND(msg)
Output the requested message unconditionally.
Helper to enable IP flow monitoring on a set of Nodes.
manage and create wifi channel objects for the yans model.
void PowerCallback(std::string path, double oldPower, double newPower, Mac48Address dest)
create MAC layers for a ns3::WifiNetDevice.
Structure to classify a packet.
static Time Now(void)
Return the current simulation virtual time.
Gnuplot2dDataset GetIdleDatafile()
The IEEE 802.11 SSID Information Element.
void SetMode(WifiMode mode)
Sets the selected payload transmission mode.
void PhyCallback(std::string path, Ptr< const Packet > packet)
virtual void SetType(std::string type, std::string n0="", const AttributeValue &v0=EmptyAttributeValue(), std::string n1="", const AttributeValue &v1=EmptyAttributeValue(), std::string n2="", const AttributeValue &v2=EmptyAttributeValue(), std::string n3="", const AttributeValue &v3=EmptyAttributeValue(), std::string n4="", const AttributeValue &v4=EmptyAttributeValue(), std::string n5="", const AttributeValue &v5=EmptyAttributeValue(), std::string n6="", const AttributeValue &v6=EmptyAttributeValue(), std::string n7="", const AttributeValue &v7=EmptyAttributeValue(), std::string n8="", const AttributeValue &v8=EmptyAttributeValue(), std::string n9="", const AttributeValue &v9=EmptyAttributeValue(), std::string n10="", const AttributeValue &v10=EmptyAttributeValue())
Gnuplot2dDataset m_output_rx
Helper class used to assign positions and mobility models to nodes.
FiveTuple FindFlow(FlowId flowId) const
Searches for the FiveTuple corresponding to the given flowId.
Ipv4 addresses are stored in host order in this class.
void Stop(Time stop)
Arrange for all of the Applications in this container to Stop() at the Time given as a parameter...
Ptr< WifiMac > GetMac(void) const
The PHY layer is sending a packet.
Gnuplot2dDataset GetBusyDatafile()
static void Stop(void)
Tell the Simulator the calling event should be the last one executed.
#define NS_LOG_DEBUG(msg)
Use NS_LOG to output a message of level LOG_DEBUG.
Time Seconds(double value)
Construct a Time in the indicated unit.
uint32_t GetN(void) const
Get the number of Ptr<NetDevice> stored in this container.
AttributeValue implementation for Ssid.
The PHY layer is receiving a packet.
void Add(Vector v)
Add a position to the list of positions.
NodeStatistics(NetDeviceContainer aps, NetDeviceContainer stas)
Ptr< Node > Get(uint32_t i) const
Get the Ptr<Node> stored in this container at a given index.
void CheckStatistics(double time)
A helper class to make life easier while doing simple IPv4 address assignment in scripts.
Time MicroSeconds(uint64_t value)
Construct a Time in the indicated unit.
void Create(uint32_t n)
Create n nodes and append pointers to them to the end of this NodeContainer.
void SetTerminal(const std::string &terminal)
This class can be used to hold variables of floating point type such as 'double' or 'float'...
Gnuplot2dDataset GetTxDatafile()
Ipv4Address sourceAddress
Source address.
uint64_t GetDataRate(uint16_t channelWidth, uint16_t guardInterval, uint8_t nss) const