2016-02-05 21:48:25 +01:00
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/*
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* Copyright (c) 2016 Sébastien Deronne
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*
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2024-06-17 16:17:10 +02:00
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* SPDX-License-Identifier: GPL-2.0-only
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2016-02-05 21:48:25 +01:00
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*
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* Author: Sébastien Deronne <sebastien.deronne@gmail.com>
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*/
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2022-10-07 20:08:35 +00:00
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#include "ns3/boolean.h"
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2018-04-13 23:08:35 +02:00
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#include "ns3/command-line.h"
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#include "ns3/config.h"
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#include "ns3/internet-stack-helper.h"
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#include "ns3/ipv4-address-helper.h"
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2022-10-07 20:08:35 +00:00
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#include "ns3/log.h"
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#include "ns3/mobility-helper.h"
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2018-04-13 23:08:35 +02:00
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#include "ns3/packet-sink-helper.h"
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2022-10-07 20:08:35 +00:00
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#include "ns3/ssid.h"
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#include "ns3/string.h"
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#include "ns3/udp-client-server-helper.h"
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2024-01-29 15:16:19 +00:00
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#include "ns3/udp-server.h"
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2022-10-07 20:08:35 +00:00
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#include "ns3/uinteger.h"
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2019-01-16 00:17:30 +01:00
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#include "ns3/wifi-mac.h"
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2022-10-07 20:08:35 +00:00
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#include "ns3/wifi-net-device.h"
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#include "ns3/yans-wifi-channel.h"
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#include "ns3/yans-wifi-helper.h"
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2016-02-05 21:48:25 +01:00
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// This is an example that illustrates how 802.11n aggregation is configured.
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2018-06-27 10:50:27 +03:00
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// It defines 4 independent Wi-Fi networks (working on different channels).
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2016-02-05 21:48:25 +01:00
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// Each network contains one access point and one station. Each station
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2018-06-27 10:50:27 +03:00
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// continuously transmits data packets to its respective AP.
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2016-02-05 21:48:25 +01:00
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//
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// Network topology (numbers in parentheses are channel numbers):
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//
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// Network A (36) Network B (40) Network C (44) Network D (48)
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// * * * * * * * *
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// | | | | | | | |
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// AP A STA A AP B STA B AP C STA C AP D STA D
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//
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// The aggregation parameters are configured differently on the 4 stations:
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2022-10-07 20:08:35 +00:00
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// - station A uses default aggregation parameter values (A-MSDU disabled, A-MPDU enabled with
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// maximum size of 65 kB);
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2016-02-05 21:48:25 +01:00
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// - station B doesn't use aggregation (both A-MPDU and A-MSDU are disabled);
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// - station C enables A-MSDU (with maximum size of 8 kB) but disables A-MPDU;
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2022-10-07 20:08:35 +00:00
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// - station D uses two-level aggregation (A-MPDU with maximum size of 32 kB and A-MSDU with maximum
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// size of 4 kB).
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2016-02-05 21:48:25 +01:00
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//
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2022-10-07 20:08:35 +00:00
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// Packets in this simulation belong to BestEffort Access Class (AC_BE).
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2016-02-05 21:48:25 +01:00
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//
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2022-10-07 20:08:35 +00:00
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// The user can select the distance between the stations and the APs and can enable/disable the
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// RTS/CTS mechanism. Example: ./ns3 run "wifi-aggregation --distance=10 --enableRts=0
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2024-02-27 22:39:01 +01:00
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// --simulationTime=20s"
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2016-02-05 21:48:25 +01:00
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//
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2022-10-07 20:08:35 +00:00
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// The output prints the throughput measured for the 4 cases/networks described above. When default
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// aggregation parameters are enabled, the maximum A-MPDU size is 65 kB and the throughput is
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// maximal. When aggregation is disabled, the throughput is about the half of the physical bitrate.
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// When only A-MSDU is enabled, the throughput is increased but is not maximal, since the maximum
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// A-MSDU size is limited to 7935 bytes (whereas the maximum A-MPDU size is limited to 65535 bytes).
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// When A-MSDU and A-MPDU are both enabled (= two-level aggregation), the throughput is slightly
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// smaller than the first scenario since we set a smaller maximum A-MPDU size.
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2016-02-05 21:48:25 +01:00
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//
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2022-10-07 20:08:35 +00:00
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// When the distance is increased, the frame error rate gets higher, and the output shows how it
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// affects the throughput for the 4 networks. Even through A-MSDU has less overheads than A-MPDU,
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// A-MSDU is less robust against transmission errors than A-MPDU. When the distance is augmented,
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// the throughput for the third scenario is more affected than the throughput obtained in other
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// networks.
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2016-02-05 21:48:25 +01:00
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using namespace ns3;
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2022-10-07 20:08:35 +00:00
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NS_LOG_COMPONENT_DEFINE("SimpleMpduAggregation");
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2016-02-05 21:48:25 +01:00
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2022-10-07 20:08:35 +00:00
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int
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main(int argc, char* argv[])
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2016-02-05 21:48:25 +01:00
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{
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2024-02-27 22:39:01 +01:00
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uint32_t payloadSize{1472}; // bytes
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Time simulationTime{"10s"};
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2024-06-13 20:40:24 +02:00
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meter_u distance{5};
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2024-02-27 22:39:01 +01:00
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bool enableRts{false};
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bool enablePcap{false};
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bool verifyResults{false}; // used for regression
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2022-10-07 20:08:35 +00:00
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CommandLine cmd(__FILE__);
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cmd.AddValue("payloadSize", "Payload size in bytes", payloadSize);
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cmd.AddValue("enableRts", "Enable or disable RTS/CTS", enableRts);
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2024-02-27 22:39:01 +01:00
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cmd.AddValue("simulationTime", "Simulation time", simulationTime);
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2022-10-07 20:08:35 +00:00
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cmd.AddValue("distance",
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"Distance in meters between the station and the access point",
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distance);
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cmd.AddValue("enablePcap", "Enable/disable pcap file generation", enablePcap);
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cmd.AddValue("verifyResults",
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"Enable/disable results verification at the end of the simulation",
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verifyResults);
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cmd.Parse(argc, argv);
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Config::SetDefault("ns3::WifiRemoteStationManager::RtsCtsThreshold",
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enableRts ? StringValue("0") : StringValue("999999"));
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NodeContainer wifiStaNodes;
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wifiStaNodes.Create(4);
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NodeContainer wifiApNodes;
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wifiApNodes.Create(4);
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YansWifiChannelHelper channel = YansWifiChannelHelper::Default();
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YansWifiPhyHelper phy;
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phy.SetPcapDataLinkType(WifiPhyHelper::DLT_IEEE802_11_RADIO);
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phy.SetChannel(channel.Create());
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WifiHelper wifi;
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wifi.SetStandard(WIFI_STANDARD_80211n);
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wifi.SetRemoteStationManager("ns3::ConstantRateWifiManager",
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"DataMode",
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StringValue("HtMcs7"),
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"ControlMode",
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StringValue("HtMcs0"));
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WifiMacHelper mac;
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NetDeviceContainer staDeviceA;
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NetDeviceContainer staDeviceB;
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NetDeviceContainer staDeviceC;
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NetDeviceContainer staDeviceD;
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NetDeviceContainer apDeviceA;
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NetDeviceContainer apDeviceB;
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NetDeviceContainer apDeviceC;
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NetDeviceContainer apDeviceD;
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Ssid ssid;
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// Network A
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ssid = Ssid("network-A");
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phy.Set("ChannelSettings", StringValue("{36, 0, BAND_5GHZ, 0}"));
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mac.SetType("ns3::StaWifiMac", "Ssid", SsidValue(ssid));
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staDeviceA = wifi.Install(phy, mac, wifiStaNodes.Get(0));
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mac.SetType("ns3::ApWifiMac",
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"Ssid",
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SsidValue(ssid),
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"EnableBeaconJitter",
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BooleanValue(false));
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apDeviceA = wifi.Install(phy, mac, wifiApNodes.Get(0));
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// Network B
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ssid = Ssid("network-B");
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phy.Set("ChannelSettings", StringValue("{40, 0, BAND_5GHZ, 0}"));
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mac.SetType("ns3::StaWifiMac", "Ssid", SsidValue(ssid));
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staDeviceB = wifi.Install(phy, mac, wifiStaNodes.Get(1));
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// Disable A-MPDU
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Ptr<NetDevice> dev = wifiStaNodes.Get(1)->GetDevice(0);
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Ptr<WifiNetDevice> wifi_dev = DynamicCast<WifiNetDevice>(dev);
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wifi_dev->GetMac()->SetAttribute("BE_MaxAmpduSize", UintegerValue(0));
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mac.SetType("ns3::ApWifiMac",
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"Ssid",
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SsidValue(ssid),
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"EnableBeaconJitter",
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BooleanValue(false));
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apDeviceB = wifi.Install(phy, mac, wifiApNodes.Get(1));
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// Disable A-MPDU
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dev = wifiApNodes.Get(1)->GetDevice(0);
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wifi_dev = DynamicCast<WifiNetDevice>(dev);
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wifi_dev->GetMac()->SetAttribute("BE_MaxAmpduSize", UintegerValue(0));
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// Network C
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ssid = Ssid("network-C");
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phy.Set("ChannelSettings", StringValue("{44, 0, BAND_5GHZ, 0}"));
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mac.SetType("ns3::StaWifiMac", "Ssid", SsidValue(ssid));
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staDeviceC = wifi.Install(phy, mac, wifiStaNodes.Get(2));
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// Disable A-MPDU and enable A-MSDU with the highest maximum size allowed by the standard (7935
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// bytes)
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dev = wifiStaNodes.Get(2)->GetDevice(0);
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wifi_dev = DynamicCast<WifiNetDevice>(dev);
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wifi_dev->GetMac()->SetAttribute("BE_MaxAmpduSize", UintegerValue(0));
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wifi_dev->GetMac()->SetAttribute("BE_MaxAmsduSize", UintegerValue(7935));
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mac.SetType("ns3::ApWifiMac",
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"Ssid",
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SsidValue(ssid),
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"EnableBeaconJitter",
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BooleanValue(false));
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apDeviceC = wifi.Install(phy, mac, wifiApNodes.Get(2));
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// Disable A-MPDU and enable A-MSDU with the highest maximum size allowed by the standard (7935
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// bytes)
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dev = wifiApNodes.Get(2)->GetDevice(0);
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wifi_dev = DynamicCast<WifiNetDevice>(dev);
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wifi_dev->GetMac()->SetAttribute("BE_MaxAmpduSize", UintegerValue(0));
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wifi_dev->GetMac()->SetAttribute("BE_MaxAmsduSize", UintegerValue(7935));
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// Network D
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ssid = Ssid("network-D");
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phy.Set("ChannelSettings", StringValue("{48, 0, BAND_5GHZ, 0}"));
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mac.SetType("ns3::StaWifiMac", "Ssid", SsidValue(ssid));
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staDeviceD = wifi.Install(phy, mac, wifiStaNodes.Get(3));
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// Enable A-MPDU with a smaller size than the default one and
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// enable A-MSDU with the smallest maximum size allowed by the standard (3839 bytes)
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dev = wifiStaNodes.Get(3)->GetDevice(0);
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wifi_dev = DynamicCast<WifiNetDevice>(dev);
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wifi_dev->GetMac()->SetAttribute("BE_MaxAmpduSize", UintegerValue(32768));
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wifi_dev->GetMac()->SetAttribute("BE_MaxAmsduSize", UintegerValue(3839));
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mac.SetType("ns3::ApWifiMac",
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"Ssid",
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SsidValue(ssid),
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"EnableBeaconJitter",
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BooleanValue(false));
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apDeviceD = wifi.Install(phy, mac, wifiApNodes.Get(3));
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// Enable A-MPDU with a smaller size than the default one and
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// enable A-MSDU with the smallest maximum size allowed by the standard (3839 bytes)
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dev = wifiApNodes.Get(3)->GetDevice(0);
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wifi_dev = DynamicCast<WifiNetDevice>(dev);
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wifi_dev->GetMac()->SetAttribute("BE_MaxAmpduSize", UintegerValue(32768));
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wifi_dev->GetMac()->SetAttribute("BE_MaxAmsduSize", UintegerValue(3839));
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// Setting mobility model
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MobilityHelper mobility;
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Ptr<ListPositionAllocator> positionAlloc = CreateObject<ListPositionAllocator>();
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mobility.SetMobilityModel("ns3::ConstantPositionMobilityModel");
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// Set position for APs
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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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positionAlloc->Add(Vector(20.0, 0.0, 0.0));
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positionAlloc->Add(Vector(30.0, 0.0, 0.0));
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// Set position for STAs
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positionAlloc->Add(Vector(distance, 0.0, 0.0));
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positionAlloc->Add(Vector(10 + distance, 0.0, 0.0));
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positionAlloc->Add(Vector(20 + distance, 0.0, 0.0));
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positionAlloc->Add(Vector(30 + distance, 0.0, 0.0));
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mobility.SetPositionAllocator(positionAlloc);
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mobility.Install(wifiApNodes);
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mobility.Install(wifiStaNodes);
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// Internet stack
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InternetStackHelper stack;
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stack.Install(wifiApNodes);
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stack.Install(wifiStaNodes);
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Ipv4AddressHelper address;
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address.SetBase("192.168.1.0", "255.255.255.0");
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Ipv4InterfaceContainer StaInterfaceA;
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StaInterfaceA = address.Assign(staDeviceA);
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Ipv4InterfaceContainer ApInterfaceA;
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ApInterfaceA = address.Assign(apDeviceA);
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address.SetBase("192.168.2.0", "255.255.255.0");
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Ipv4InterfaceContainer StaInterfaceB;
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StaInterfaceB = address.Assign(staDeviceB);
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Ipv4InterfaceContainer ApInterfaceB;
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ApInterfaceB = address.Assign(apDeviceB);
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address.SetBase("192.168.3.0", "255.255.255.0");
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Ipv4InterfaceContainer StaInterfaceC;
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StaInterfaceC = address.Assign(staDeviceC);
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Ipv4InterfaceContainer ApInterfaceC;
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ApInterfaceC = address.Assign(apDeviceC);
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address.SetBase("192.168.4.0", "255.255.255.0");
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Ipv4InterfaceContainer StaInterfaceD;
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StaInterfaceD = address.Assign(staDeviceD);
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Ipv4InterfaceContainer ApInterfaceD;
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ApInterfaceD = address.Assign(apDeviceD);
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// Setting applications
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uint16_t port = 9;
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UdpServerHelper serverA(port);
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ApplicationContainer serverAppA = serverA.Install(wifiStaNodes.Get(0));
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2024-11-08 18:01:13 +00:00
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serverAppA.Start(Seconds(0));
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serverAppA.Stop(simulationTime + Seconds(1));
|
2022-10-07 20:08:35 +00:00
|
|
|
|
|
|
|
|
UdpClientHelper clientA(StaInterfaceA.GetAddress(0), port);
|
|
|
|
|
clientA.SetAttribute("MaxPackets", UintegerValue(4294967295U));
|
|
|
|
|
clientA.SetAttribute("Interval", TimeValue(Time("0.0001"))); // packets/s
|
|
|
|
|
clientA.SetAttribute("PacketSize", UintegerValue(payloadSize));
|
|
|
|
|
|
|
|
|
|
ApplicationContainer clientAppA = clientA.Install(wifiApNodes.Get(0));
|
2024-11-08 18:01:13 +00:00
|
|
|
clientAppA.Start(Seconds(1));
|
|
|
|
|
clientAppA.Stop(simulationTime + Seconds(1));
|
2022-10-07 20:08:35 +00:00
|
|
|
|
|
|
|
|
UdpServerHelper serverB(port);
|
|
|
|
|
ApplicationContainer serverAppB = serverB.Install(wifiStaNodes.Get(1));
|
2024-11-08 18:01:13 +00:00
|
|
|
serverAppB.Start(Seconds(0));
|
|
|
|
|
serverAppB.Stop(simulationTime + Seconds(1));
|
2022-10-07 20:08:35 +00:00
|
|
|
|
|
|
|
|
UdpClientHelper clientB(StaInterfaceB.GetAddress(0), port);
|
|
|
|
|
clientB.SetAttribute("MaxPackets", UintegerValue(4294967295U));
|
|
|
|
|
clientB.SetAttribute("Interval", TimeValue(Time("0.0001"))); // packets/s
|
|
|
|
|
clientB.SetAttribute("PacketSize", UintegerValue(payloadSize));
|
|
|
|
|
|
|
|
|
|
ApplicationContainer clientAppB = clientB.Install(wifiApNodes.Get(1));
|
2024-11-08 18:01:13 +00:00
|
|
|
clientAppB.Start(Seconds(1));
|
|
|
|
|
clientAppB.Stop(simulationTime + Seconds(1));
|
2022-10-07 20:08:35 +00:00
|
|
|
|
|
|
|
|
UdpServerHelper serverC(port);
|
|
|
|
|
ApplicationContainer serverAppC = serverC.Install(wifiStaNodes.Get(2));
|
2024-11-08 18:01:13 +00:00
|
|
|
serverAppC.Start(Seconds(0));
|
|
|
|
|
serverAppC.Stop(simulationTime + Seconds(1));
|
2022-10-07 20:08:35 +00:00
|
|
|
|
|
|
|
|
UdpClientHelper clientC(StaInterfaceC.GetAddress(0), port);
|
|
|
|
|
clientC.SetAttribute("MaxPackets", UintegerValue(4294967295U));
|
|
|
|
|
clientC.SetAttribute("Interval", TimeValue(Time("0.0001"))); // packets/s
|
|
|
|
|
clientC.SetAttribute("PacketSize", UintegerValue(payloadSize));
|
|
|
|
|
|
|
|
|
|
ApplicationContainer clientAppC = clientC.Install(wifiApNodes.Get(2));
|
2024-11-08 18:01:13 +00:00
|
|
|
clientAppC.Start(Seconds(1));
|
|
|
|
|
clientAppC.Stop(simulationTime + Seconds(1));
|
2022-10-07 20:08:35 +00:00
|
|
|
|
|
|
|
|
UdpServerHelper serverD(port);
|
|
|
|
|
ApplicationContainer serverAppD = serverD.Install(wifiStaNodes.Get(3));
|
2024-11-08 18:01:13 +00:00
|
|
|
serverAppD.Start(Seconds(0));
|
|
|
|
|
serverAppD.Stop(simulationTime + Seconds(1));
|
2022-10-07 20:08:35 +00:00
|
|
|
|
|
|
|
|
UdpClientHelper clientD(StaInterfaceD.GetAddress(0), port);
|
|
|
|
|
clientD.SetAttribute("MaxPackets", UintegerValue(4294967295U));
|
|
|
|
|
clientD.SetAttribute("Interval", TimeValue(Time("0.0001"))); // packets/s
|
|
|
|
|
clientD.SetAttribute("PacketSize", UintegerValue(payloadSize));
|
|
|
|
|
|
|
|
|
|
ApplicationContainer clientAppD = clientD.Install(wifiApNodes.Get(3));
|
2024-11-08 18:01:13 +00:00
|
|
|
clientAppD.Start(Seconds(1));
|
|
|
|
|
clientAppD.Stop(simulationTime + Seconds(1));
|
2022-10-07 20:08:35 +00:00
|
|
|
|
|
|
|
|
if (enablePcap)
|
2016-02-05 21:48:25 +01:00
|
|
|
{
|
2022-10-07 20:08:35 +00:00
|
|
|
phy.EnablePcap("AP_A", apDeviceA.Get(0));
|
|
|
|
|
phy.EnablePcap("STA_A", staDeviceA.Get(0));
|
|
|
|
|
phy.EnablePcap("AP_B", apDeviceB.Get(0));
|
|
|
|
|
phy.EnablePcap("STA_B", staDeviceB.Get(0));
|
|
|
|
|
phy.EnablePcap("AP_C", apDeviceC.Get(0));
|
|
|
|
|
phy.EnablePcap("STA_C", staDeviceC.Get(0));
|
|
|
|
|
phy.EnablePcap("AP_D", apDeviceD.Get(0));
|
|
|
|
|
phy.EnablePcap("STA_D", staDeviceD.Get(0));
|
2016-02-05 21:48:25 +01:00
|
|
|
}
|
|
|
|
|
|
2024-11-08 18:01:13 +00:00
|
|
|
Simulator::Stop(simulationTime + Seconds(1));
|
2022-10-07 20:08:35 +00:00
|
|
|
Simulator::Run();
|
2016-02-05 21:48:25 +01:00
|
|
|
|
2022-10-07 20:08:35 +00:00
|
|
|
// Show results
|
2024-02-27 22:39:01 +01:00
|
|
|
double totalPacketsThroughA = DynamicCast<UdpServer>(serverAppA.Get(0))->GetReceived();
|
|
|
|
|
double totalPacketsThroughB = DynamicCast<UdpServer>(serverAppB.Get(0))->GetReceived();
|
|
|
|
|
double totalPacketsThroughC = DynamicCast<UdpServer>(serverAppC.Get(0))->GetReceived();
|
|
|
|
|
double totalPacketsThroughD = DynamicCast<UdpServer>(serverAppD.Get(0))->GetReceived();
|
2018-06-20 23:26:43 +02:00
|
|
|
|
2022-10-07 20:08:35 +00:00
|
|
|
Simulator::Destroy();
|
2018-06-20 23:26:43 +02:00
|
|
|
|
2024-02-27 22:39:01 +01:00
|
|
|
auto throughput = totalPacketsThroughA * payloadSize * 8 / simulationTime.GetMicroSeconds();
|
2022-10-07 20:08:35 +00:00
|
|
|
std::cout << "Throughput with default configuration (A-MPDU aggregation enabled, 65kB): "
|
|
|
|
|
<< throughput << " Mbit/s" << '\n';
|
|
|
|
|
if (verifyResults && (throughput < 59.0 || throughput > 60.0))
|
2016-12-27 09:31:14 +01:00
|
|
|
{
|
2022-10-07 20:08:35 +00:00
|
|
|
NS_LOG_ERROR("Obtained throughput " << throughput << " is not in the expected boundaries!");
|
|
|
|
|
exit(1);
|
2016-12-27 09:31:14 +01:00
|
|
|
}
|
2017-02-06 20:31:02 +01:00
|
|
|
|
2024-02-27 22:39:01 +01:00
|
|
|
throughput = totalPacketsThroughB * payloadSize * 8 / simulationTime.GetMicroSeconds();
|
2022-10-07 20:08:35 +00:00
|
|
|
std::cout << "Throughput with aggregation disabled: " << throughput << " Mbit/s" << '\n';
|
|
|
|
|
if (verifyResults && (throughput < 30 || throughput > 31))
|
2016-12-27 09:31:14 +01:00
|
|
|
{
|
2022-10-07 20:08:35 +00:00
|
|
|
NS_LOG_ERROR("Obtained throughput " << throughput << " is not in the expected boundaries!");
|
|
|
|
|
exit(1);
|
2016-12-27 09:31:14 +01:00
|
|
|
}
|
|
|
|
|
|
2024-02-27 22:39:01 +01:00
|
|
|
throughput = totalPacketsThroughC * payloadSize * 8 / simulationTime.GetMicroSeconds();
|
2022-10-07 20:08:35 +00:00
|
|
|
std::cout << "Throughput with A-MPDU disabled and A-MSDU enabled (8kB): " << throughput
|
|
|
|
|
<< " Mbit/s" << '\n';
|
|
|
|
|
if (verifyResults && (throughput < 51 || throughput > 52))
|
2016-12-27 09:31:14 +01:00
|
|
|
{
|
2022-10-07 20:08:35 +00:00
|
|
|
NS_LOG_ERROR("Obtained throughput " << throughput << " is not in the expected boundaries!");
|
|
|
|
|
exit(1);
|
2016-12-27 09:31:14 +01:00
|
|
|
}
|
|
|
|
|
|
2024-02-27 22:39:01 +01:00
|
|
|
throughput = totalPacketsThroughD * payloadSize * 8 / simulationTime.GetMicroSeconds();
|
2022-10-07 20:08:35 +00:00
|
|
|
std::cout << "Throughput with A-MPDU enabled (32kB) and A-MSDU enabled (4kB): " << throughput
|
|
|
|
|
<< " Mbit/s" << '\n';
|
|
|
|
|
if (verifyResults && (throughput < 58 || throughput > 59))
|
2016-12-27 09:31:14 +01:00
|
|
|
{
|
2022-10-07 20:08:35 +00:00
|
|
|
NS_LOG_ERROR("Obtained throughput " << throughput << " is not in the expected boundaries!");
|
|
|
|
|
exit(1);
|
2016-12-27 09:31:14 +01:00
|
|
|
}
|
2016-02-05 21:48:25 +01:00
|
|
|
|
2022-10-07 20:08:35 +00:00
|
|
|
return 0;
|
2016-02-05 21:48:25 +01:00
|
|
|
}
|