A Discrete-Event Network Simulator
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wifi-simple-infra.cc
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1/*
2 * Copyright (c) 2009 The Boeing Company
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 */
18
19// This script configures two nodes on an 802.11b physical layer, with
20// 802.11b NICs in infrastructure mode, and by default, the station sends
21// one packet of 1000 (application) bytes to the access point. Unlike
22// the default physical layer configuration in which the path loss increases
23// (and the received signal strength decreases) as the distance between the
24// nodes increases, this example uses an artificial path loss model that
25// allows the configuration of the received signal strength (RSS) regardless
26// of other transmitter parameters (such as transmit power) or distance.
27// Therefore, changing position of the nodes has no effect.
28//
29// There are a number of command-line options available to control
30// the default behavior. The list of available command-line options
31// can be listed with the following command:
32// ./ns3 run "wifi-simple-infra --help"
33// Additional command-line options are available via the generic attribute
34// configuration system.
35//
36// For instance, for the default configuration, the physical layer will
37// stop successfully receiving packets when rss drops to -82 dBm or below.
38// To see this effect, try running:
39//
40// ./ns3 run "wifi-simple-infra --rss=-80 --numPackets=20"
41// ./ns3 run "wifi-simple-infra --rss=-81 --numPackets=20"
42// ./ns3 run "wifi-simple-infra --rss=-82 --numPackets=20"
43//
44// The last command (and any RSS value lower than this) results in no
45// packets received. This is due to the preamble detection model that
46// dominates the reception performance. By default, the
47// ThresholdPreambleDetectionModel is added to all WifiPhy objects, and this
48// model prevents reception unless the incoming signal has a RSS above its
49// 'MinimumRssi' value (default of -82 dBm) and has a SNR above the
50// 'Threshold' value (default of 4).
51//
52// If we relax these values, we can instead observe that signal reception
53// due to the 802.11b error model alone is much lower. For instance,
54// setting the MinimumRssi to -101 (around the thermal noise floor).
55// and the SNR Threshold to -10 dB, shows that the DsssErrorRateModel can
56// successfully decode at RSS values of -97 or -98 dBm.
57//
58// ./ns3 run "wifi-simple-infra --rss=-97 --numPackets=20
59// --ns3::ThresholdPreambleDetectionModel::Threshold=-10
60// --ns3::ThresholdPreambleDetectionModel::MinimumRssi=-101"
61// ./ns3 run "wifi-simple-infra --rss=-98 --numPackets=20
62// --ns3::ThresholdPreambleDetectionModel::Threshold=-10
63// --ns3::ThresholdPreambleDetectionModel::MinimumRssi=-101"
64// ./ns3 run "wifi-simple-infra --rss=-99 --numPackets=20
65// --ns3::ThresholdPreambleDetectionModel::Threshold=-10
66// --ns3::ThresholdPreambleDetectionModel::MinimumRssi=-101"
67
68//
69// Note that all ns-3 attributes (not just the ones exposed in the below
70// script) can be changed at command line; see the documentation.
71//
72// This script can also be helpful to put the Wifi layer into verbose
73// logging mode; this command will turn on all wifi logging:
74//
75// ./ns3 run "wifi-simple-infra --verbose=1"
76//
77// When you are done, you will notice two pcap trace files in your directory.
78// If you have tcpdump installed, you can try this:
79//
80// tcpdump -r wifi-simple-infra-0-0.pcap -nn -tt
81//
82
83#include "ns3/command-line.h"
84#include "ns3/config.h"
85#include "ns3/double.h"
86#include "ns3/internet-stack-helper.h"
87#include "ns3/ipv4-address-helper.h"
88#include "ns3/log.h"
89#include "ns3/mobility-helper.h"
90#include "ns3/mobility-model.h"
91#include "ns3/ssid.h"
92#include "ns3/string.h"
93#include "ns3/yans-wifi-channel.h"
94#include "ns3/yans-wifi-helper.h"
95
96using namespace ns3;
97
98NS_LOG_COMPONENT_DEFINE("WifiSimpleInfra");
99
100/**
101 * Function called when a packet is received.
102 *
103 * \param socket The receiving socket.
104 */
105void
107{
108 while (socket->Recv())
109 {
110 std::cout << "Received one packet!" << std::endl;
111 }
112}
113
114/**
115 * Generate traffic.
116 *
117 * \param socket The sending socket.
118 * \param pktSize The packet size.
119 * \param pktCount The packet count.
120 * \param pktInterval The interval between two packets.
121 */
122static void
124{
125 if (pktCount > 0)
126 {
127 NS_LOG_INFO("Generating one packet of size " << pktSize);
128 socket->Send(Create<Packet>(pktSize));
129 Simulator::Schedule(pktInterval,
131 socket,
132 pktSize,
133 pktCount - 1,
134 pktInterval);
135 }
136 else
137 {
138 socket->Close();
139 }
140}
141
142int
143main(int argc, char* argv[])
144{
145 std::string phyMode("DsssRate1Mbps");
146 double rss = -80; // -dBm
147 uint32_t packetSize = 1000; // bytes
148 uint32_t numPackets = 1;
149 Time interval = Seconds(1.0);
150 bool verbose = false;
151
152 CommandLine cmd(__FILE__);
153 cmd.AddValue("phyMode", "Wifi Phy mode", phyMode);
154 cmd.AddValue("rss", "received signal strength", rss);
155 cmd.AddValue("packetSize", "size of application packet sent", packetSize);
156 cmd.AddValue("numPackets", "number of packets generated", numPackets);
157 cmd.AddValue("interval", "interval between packets", interval);
158 cmd.AddValue("verbose", "turn on all WifiNetDevice log components", verbose);
159 cmd.Parse(argc, argv);
160
161 // Fix non-unicast data rate to be the same as that of unicast
162 Config::SetDefault("ns3::WifiRemoteStationManager::NonUnicastMode", StringValue(phyMode));
163
165 c.Create(2);
166
167 // The below set of helpers will help us to put together the wifi NICs we want
169 if (verbose)
170 {
171 WifiHelper::EnableLogComponents(); // Turn on all Wifi logging
172 }
173 wifi.SetStandard(WIFI_STANDARD_80211b);
174
175 YansWifiPhyHelper wifiPhy;
176 // This is one parameter that matters when using FixedRssLossModel
177 // set it to zero; otherwise, gain will be added
178 wifiPhy.Set("RxGain", DoubleValue(0));
179 // ns-3 supports RadioTap and Prism tracing extensions for 802.11b
181
182 YansWifiChannelHelper wifiChannel;
183 wifiChannel.SetPropagationDelay("ns3::ConstantSpeedPropagationDelayModel");
184 // The below FixedRssLossModel will cause the rss to be fixed regardless
185 // of the distance between the two stations, and the transmit power
186 wifiChannel.AddPropagationLoss("ns3::FixedRssLossModel", "Rss", DoubleValue(rss));
187 wifiPhy.SetChannel(wifiChannel.Create());
188
189 // Add a mac and disable rate control
190 WifiMacHelper wifiMac;
191 wifi.SetRemoteStationManager("ns3::ConstantRateWifiManager",
192 "DataMode",
193 StringValue(phyMode),
194 "ControlMode",
195 StringValue(phyMode));
196
197 // Setup the rest of the MAC
198 Ssid ssid = Ssid("wifi-default");
199 // setup STA
200 wifiMac.SetType("ns3::StaWifiMac", "Ssid", SsidValue(ssid));
201 NetDeviceContainer staDevice = wifi.Install(wifiPhy, wifiMac, c.Get(0));
202 NetDeviceContainer devices = staDevice;
203 // setup AP
204 wifiMac.SetType("ns3::ApWifiMac", "Ssid", SsidValue(ssid));
205 NetDeviceContainer apDevice = wifi.Install(wifiPhy, wifiMac, c.Get(1));
206 devices.Add(apDevice);
207
208 // Note that with FixedRssLossModel, the positions below are not
209 // used for received signal strength.
211 Ptr<ListPositionAllocator> positionAlloc = CreateObject<ListPositionAllocator>();
212 positionAlloc->Add(Vector(0.0, 0.0, 0.0));
213 positionAlloc->Add(Vector(5.0, 0.0, 0.0));
214 mobility.SetPositionAllocator(positionAlloc);
215 mobility.SetMobilityModel("ns3::ConstantPositionMobilityModel");
216 mobility.Install(c);
217
219 internet.Install(c);
220
222 ipv4.SetBase("10.1.1.0", "255.255.255.0");
223 Ipv4InterfaceContainer i = ipv4.Assign(devices);
224
225 TypeId tid = TypeId::LookupByName("ns3::UdpSocketFactory");
226 Ptr<Socket> recvSink = Socket::CreateSocket(c.Get(0), tid);
228 recvSink->Bind(local);
229 recvSink->SetRecvCallback(MakeCallback(&ReceivePacket));
230
231 Ptr<Socket> source = Socket::CreateSocket(c.Get(1), tid);
232 InetSocketAddress remote = InetSocketAddress(Ipv4Address("255.255.255.255"), 80);
233 source->SetAllowBroadcast(true);
234 source->Connect(remote);
235
236 // Tracing
237 wifiPhy.EnablePcap("wifi-simple-infra", devices);
238
239 // Output what we are doing
240 std::cout << "Testing " << numPackets << " packets sent with receiver rss " << rss << std::endl;
241
242 Simulator::ScheduleWithContext(source->GetNode()->GetId(),
243 Seconds(1.0),
245 source,
247 numPackets,
248 interval);
249
253
254 return 0;
255}
Parse command-line arguments.
Definition: command-line.h:232
This class can be used to hold variables of floating point type such as 'double' or 'float'.
Definition: double.h:42
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.
Ipv4 addresses are stored in host order in this class.
Definition: ipv4-address.h:42
static Ipv4Address GetAny()
holds a vector of std::pair of Ptr<Ipv4> and interface index.
Helper class used to assign positions and mobility models to nodes.
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.
void EnablePcap(std::string prefix, Ptr< NetDevice > nd, bool promiscuous=false, bool explicitFilename=false)
Enable pcap output the indicated net device.
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 void ScheduleWithContext(uint32_t context, const Time &delay, FUNC f, Ts &&... args)
Schedule an event with the given context.
Definition: simulator.h:588
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
static Ptr< Socket > CreateSocket(Ptr< Node > node, TypeId tid)
This method wraps the creation of sockets that is performed on a given node by a SocketFactory specif...
Definition: socket.cc:72
The IEEE 802.11 SSID Information Element.
Definition: ssid.h:36
AttributeValue implementation for Ssid.
Definition: ssid.h:96
Hold variables of type string.
Definition: string.h:56
Simulation virtual time values and global simulation resolution.
Definition: nstime.h:105
a unique identifier for an interface.
Definition: type-id.h:59
static TypeId LookupByName(std::string name)
Get a TypeId by name.
Definition: type-id.cc:836
helps to create WifiNetDevice objects
Definition: wifi-helper.h:324
static void EnableLogComponents(LogLevel logLevel=LOG_LEVEL_ALL)
Helper to enable all WifiNetDevice log components with one statement.
Definition: wifi-helper.cc:880
create MAC layers for a ns3::WifiNetDevice.
void SetType(std::string type, Args &&... args)
void SetPcapDataLinkType(SupportedPcapDataLinkTypes dlt)
Set the data link type of PCAP traces to be used.
Definition: wifi-helper.cc:543
void Set(std::string name, const AttributeValue &v)
Definition: wifi-helper.cc:163
@ DLT_IEEE802_11_RADIO
Include Radiotap link layer information.
Definition: wifi-helper.h:178
manage and create wifi channel objects for the YANS model.
void SetPropagationDelay(std::string name, Ts &&... args)
void AddPropagationLoss(std::string name, Ts &&... args)
Ptr< YansWifiChannel > Create() const
Make it easy to create and manage PHY objects for the YANS model.
void SetChannel(Ptr< YansWifiChannel > channel)
void SetDefault(std::string name, const AttributeValue &value)
Definition: config.cc:894
#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 Seconds(double value)
Construct a Time in the indicated unit.
Definition: nstime.h:1319
@ WIFI_STANDARD_80211b
ns devices
Definition: first.py:42
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:706
ns cmd
Definition: second.py:40
ns wifi
Definition: third.py:95
ns ssid
Definition: third.py:93
ns mobility
Definition: third.py:105
bool verbose
uint32_t pktSize
packet size used for the simulation (in bytes)
static const uint32_t packetSize
Packet size generated at the AP.
void ReceivePacket(Ptr< Socket > socket)
Function called when a packet is received.
static void GenerateTraffic(Ptr< Socket > socket, uint32_t pktSize, uint32_t pktCount, Time pktInterval)
Generate traffic.