239 lines
9.2 KiB
C++
239 lines
9.2 KiB
C++
/* -*- Mode: C++; c-file-style: "gnu"; indent-tabs-mode:nil; -*- */
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/*
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* Copyright (c) 2009 The Boeing Company
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* 2014 Universita' degli Studi di Napoli "Federico II"
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*
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* This program is free software; you can redistribute it and/or modify
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* it under the terms of the GNU General Public License version 2 as
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* published by the Free Software Foundation;
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*
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* This program is distributed in the hope that it will be useful,
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* but WITHOUT ANY WARRANTY; without even the implied warranty of
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* MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
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* GNU General Public License for more details.
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*
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* You should have received a copy of the GNU General Public License
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* along with this program; if not, write to the Free Software
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* Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
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*
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*/
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// This script configures two nodes on an 802.11b physical layer, with
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// 802.11b NICs in adhoc mode. One of the nodes generates on-off traffic
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// destined to the other node.
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//
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// The purpose is to test the energy depletion on the nodes and the
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// activation of the callback that puts a node in the sleep state when
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// its energy is depleted. Furthermore, this script can be used to test
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// the available policies for updating the transmit current based on
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// the nominal tx power used to transmit each frame.
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//
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// There are a number of command-line options available to control
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// the default behavior. The list of available command-line options
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// can be listed with the following command:
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// ./waf --run "wifi-sleep --help"
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//
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// Note that all ns-3 attributes (not just the ones exposed in the below
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// script) can be changed at command line; see the documentation.
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//
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// This script can also be helpful to put the Wifi layer into verbose
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// logging mode; this command will turn on all wifi logging:
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//
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// ./waf --run "wifi-sleep --verbose=1"
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//
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// When you are done, you will notice four trace files in your directory:
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// two for the remaining energy on each node and two for the state transitions
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// of each node.
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#include "ns3/command-line.h"
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#include "ns3/config.h"
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#include "ns3/string.h"
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#include "ns3/log.h"
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#include "ns3/yans-wifi-helper.h"
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#include "ns3/mobility-helper.h"
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#include "ns3/ipv4-address-helper.h"
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#include "ns3/yans-wifi-channel.h"
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#include "ns3/mobility-model.h"
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#include "ns3/internet-stack-helper.h"
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#include "ns3/on-off-helper.h"
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#include "ns3/packet-sink-helper.h"
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#include "ns3/basic-energy-source-helper.h"
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#include "ns3/wifi-radio-energy-model-helper.h"
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#include "ns3/wifi-utils.h"
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#include "ns3/wifi-net-device.h"
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using namespace ns3;
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NS_LOG_COMPONENT_DEFINE ("WifiSleep");
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template <int node>
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void RemainingEnergyTrace (double oldValue, double newValue)
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{
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std::stringstream ss;
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ss << "energy_" << node << ".log";
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static std::fstream f (ss.str ().c_str (), std::ios::out);
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f << Simulator::Now ().GetSeconds () << " remaining energy=" << newValue << std::endl;
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}
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template <int node>
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void PhyStateTrace (std::string context, Time start, Time duration, WifiPhyState state)
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{
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std::stringstream ss;
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ss << "state_" << node << ".log";
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static std::fstream f (ss.str ().c_str (), std::ios::out);
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f << Simulator::Now ().GetSeconds () << " state=" << state << " start=" << start << " duration=" << duration << std::endl;
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}
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int main (int argc, char *argv[])
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{
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std::string dataRate = "1Mbps";
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uint32_t packetSize = 1000; // bytes
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double duration = 10.0; // seconds
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double initialEnergy = 7.5; // joule
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double voltage = 3.0; // volts
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double txPowerStart = 0.0; // dbm
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double txPowerEnd = 15.0; // dbm
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uint32_t nTxPowerLevels = 16;
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uint32_t txPowerLevel = 0;
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double idleCurrent = 0.273; // Ampere
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double txCurrent = 0.380; // Ampere
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bool verbose = false;
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CommandLine cmd (__FILE__);
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cmd.AddValue ("dataRate", "Data rate", dataRate);
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cmd.AddValue ("packetSize", "size of application packet sent", packetSize);
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cmd.AddValue ("duration", "duration (seconds) of the experiment", duration);
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cmd.AddValue ("initialEnergy", "Initial Energy (Joule) of each node", initialEnergy);
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cmd.AddValue ("voltage", "Supply voltage (Joule)", voltage);
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cmd.AddValue ("txPowerStart", "Minimum available transmission level (dbm)", txPowerStart);
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cmd.AddValue ("txPowerEnd", "Maximum available transmission level (dbm)", txPowerEnd);
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cmd.AddValue ("nTxPowerLevels", "Number of transmission power levels available between txPowerStart and txPowerEnd included", nTxPowerLevels);
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cmd.AddValue ("txPowerLevel", "Transmission power level", txPowerLevel);
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cmd.AddValue ("idleCurrent", "The radio Idle current in Ampere", idleCurrent);
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cmd.AddValue ("txCurrent", "The radio Tx current in Ampere", txCurrent);
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cmd.AddValue ("verbose", "turn on all WifiNetDevice log components", verbose);
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cmd.Parse (argc, argv);
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NodeContainer c;
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c.Create (2);
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// The below set of helpers will help us to put together the wifi NICs we want
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WifiHelper wifi;
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if (verbose)
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{
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wifi.EnableLogComponents (); // Turn on all Wifi logging
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}
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wifi.SetStandard (WIFI_PHY_STANDARD_80211b);
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YansWifiPhyHelper wifiPhy = YansWifiPhyHelper::Default ();
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// ns-3 supports RadioTap and Prism tracing extensions for 802.11b
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wifiPhy.SetPcapDataLinkType (WifiPhyHelper::DLT_IEEE802_11_RADIO);
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wifiPhy.Set ("TxPowerStart", DoubleValue (txPowerStart));
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wifiPhy.Set ("TxPowerEnd", DoubleValue (txPowerEnd));
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wifiPhy.Set ("TxPowerLevels", UintegerValue (nTxPowerLevels));
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YansWifiChannelHelper wifiChannel = YansWifiChannelHelper::Default ();
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wifiPhy.SetChannel (wifiChannel.Create ());
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// Add a mac and set the selected tx power level
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WifiMacHelper wifiMac;
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wifi.SetRemoteStationManager ("ns3::ArfWifiManager", "DefaultTxPowerLevel", UintegerValue (txPowerLevel));
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// Set it to adhoc mode
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wifiMac.SetType ("ns3::AdhocWifiMac");
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NetDeviceContainer devices = wifi.Install (wifiPhy, wifiMac, c);
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MobilityHelper mobility;
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Ptr<ListPositionAllocator> positionAlloc = CreateObject<ListPositionAllocator> ();
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positionAlloc->Add (Vector (0.0, 0.0, 0.0));
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positionAlloc->Add (Vector (10.0, 0.0, 0.0));
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mobility.SetPositionAllocator (positionAlloc);
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mobility.SetMobilityModel ("ns3::ConstantPositionMobilityModel");
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mobility.Install (c);
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InternetStackHelper internet;
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internet.Install (c);
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Ipv4AddressHelper ipv4;
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NS_LOG_INFO ("Assign IP Addresses.");
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ipv4.SetBase ("10.1.1.0", "255.255.255.0");
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Ipv4InterfaceContainer i = ipv4.Assign (devices);
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ApplicationContainer apps;
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std::string transportProto = std::string ("ns3::UdpSocketFactory");
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OnOffHelper onOff (transportProto, InetSocketAddress (Ipv4Address ("10.1.1.2"), 9000));
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onOff.SetAttribute ("DataRate", DataRateValue (DataRate (dataRate)));
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onOff.SetAttribute ("PacketSize", UintegerValue (packetSize));
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onOff.SetAttribute ("OffTime", StringValue ("ns3::ConstantRandomVariable[Constant=0.001]"));
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apps = onOff.Install (c.Get (0));
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apps.Start (Seconds (0.01));
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apps.Stop (Seconds (duration));
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// Create a packet sink to receive these packets
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PacketSinkHelper sink (transportProto, InetSocketAddress (Ipv4Address::GetAny (), 9001));
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apps = sink.Install (c.Get (1));
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apps.Start (Seconds (0.01));
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apps.Stop (Seconds (duration));
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// Energy sources
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EnergySourceContainer eSources;
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BasicEnergySourceHelper basicSourceHelper;
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WifiRadioEnergyModelHelper radioEnergyHelper;
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basicSourceHelper.Set ("BasicEnergySourceInitialEnergyJ", DoubleValue (initialEnergy));
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basicSourceHelper.Set ("BasicEnergySupplyVoltageV", DoubleValue (voltage));
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radioEnergyHelper.Set ("IdleCurrentA", DoubleValue (idleCurrent));
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radioEnergyHelper.Set ("TxCurrentA", DoubleValue (txCurrent));
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// compute the efficiency of the power amplifier (eta) assuming that the provided value for tx current
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// corresponds to the minimum tx power level
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double eta = DbmToW (txPowerStart) / ((txCurrent - idleCurrent) * voltage);
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radioEnergyHelper.SetTxCurrentModel ("ns3::LinearWifiTxCurrentModel",
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"Voltage", DoubleValue (voltage),
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"IdleCurrent", DoubleValue (idleCurrent),
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"Eta", DoubleValue (eta));
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// install an energy source on each node
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for (NodeContainer::Iterator n = c.Begin (); n != c.End (); n++)
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{
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eSources.Add (basicSourceHelper.Install (*n));
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Ptr<WifiNetDevice> wnd;
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for (uint32_t i = 0; i < (*n)->GetNDevices (); ++i)
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{
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wnd = (*n)->GetDevice (i)->GetObject<WifiNetDevice> ();
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// if it is a WifiNetDevice
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if (wnd != 0)
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{
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// this device draws power from the last created energy source
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radioEnergyHelper.Install (wnd, eSources.Get (eSources.GetN () - 1));
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}
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}
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}
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// Tracing
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eSources.Get (0)->TraceConnectWithoutContext ("RemainingEnergy", MakeCallback (&RemainingEnergyTrace<0>));
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eSources.Get (1)->TraceConnectWithoutContext ("RemainingEnergy", MakeCallback (&RemainingEnergyTrace<1>));
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Config::Connect ("/NodeList/0/DeviceList/*/Phy/State/State", MakeCallback (&PhyStateTrace<0>));
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Config::Connect ("/NodeList/1/DeviceList/*/Phy/State/State", MakeCallback (&PhyStateTrace<1>));
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Simulator::Stop (Seconds (duration + 1));
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Simulator::Run ();
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Simulator::Destroy ();
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return 0;
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}
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