Removed underscores for public Node methods. Minor cleanup & comments.
This commit is contained in:
+7
-7
@@ -4,12 +4,12 @@
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Mininet Cleanup
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author: Bob Lantz (rlantz@cs.stanford.edu)
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Unfortunately, Mininet and OpenFlow don't always clean up
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properly after themselves. Until they do (or until cleanup
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functionality is integrated into the python code), this
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script may be used to get rid of unwanted garbage. It may
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also get rid of 'false positives', but hopefully nothing
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irreplaceable!
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Unfortunately, Mininet and OpenFlow (and the Linux kernel)
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don't always clean up properly after themselves. Until they do
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(or until cleanup functionality is integrated into the Python
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code), this script may be used to get rid of unwanted garbage.
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It may also get rid of 'false positives', but hopefully
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nothing irreplaceable!
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"""
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from subprocess import Popen, PIPE
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@@ -28,7 +28,7 @@ def cleanup():
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zombies = 'controller ofprotocol ofdatapath ping nox_core lt-nox_core '
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zombies += 'udpbwtest'
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# Note: real zombie processes can't actually be killed, since they
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# are already ( un )dead. Then again,
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# are already (un)dead. Then again,
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# you can't connect to them either, so they're mostly harmless.
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sh( 'killall -9 ' + zombies + ' 2> /dev/null' )
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+23
-24
@@ -1,7 +1,7 @@
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#!/usr/bin/python
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"""
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Test bandwidth (using iperf) on linear networks of varying size,
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Test bandwidth (using iperf) on linear networks of varying size,
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using both kernel and user datapaths.
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We construct a network of N hosts and N-1 switches, connected as follows:
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@@ -9,7 +9,7 @@ We construct a network of N hosts and N-1 switches, connected as follows:
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h1 <-> sN+1 <-> sN+2 .. sN+N-1
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| | |
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h2 h3 hN
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Note: by default, the reference controller only supports 16
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switches, so this test WILL NOT WORK unless you have recompiled
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your controller to support 100 switches (or more.)
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@@ -25,9 +25,9 @@ of switches, this example demonstrates:
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import sys
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flush = sys.stdout.flush
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from mininet.net import init, Mininet
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from mininet.node import Host, KernelSwitch, UserSwitch
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from mininet.node import KernelSwitch, UserSwitch
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from mininet.topo import Topo, Node
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from mininet.log import lg
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@@ -35,26 +35,26 @@ class LinearTestTopo( Topo ):
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"Topology for a string of N hosts and N-1 switches."
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def __init__( self, N ):
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# Add default members to class.
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super( LinearTestTopo, self ).__init__()
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# Create switch and host nodes
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hosts = range( 1, N+1 )
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switches = range( N+1, N+N )
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for id in hosts:
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self._add_node( id, Node( is_switch=False ) )
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for id in switches:
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self._add_node( id, Node( is_switch=True ) )
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hosts = range( 1, N + 1 )
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switches = range( N + 1 , N + N )
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for h in hosts:
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self.add_node( h, Node( is_switch=False ) )
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for s in switches:
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self.add_node( s, Node( is_switch=True ) )
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# Wire up switches
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for s in switches[ :-1 ]:
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self._add_edge( s, s + 1 )
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self.add_edge( s, s + 1 )
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# Wire up hosts
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self._add_edge( hosts[ 0 ], switches[ 0 ] )
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self.add_edge( hosts[ 0 ], switches[ 0 ] )
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for h in hosts[ 1: ]:
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self._add_edge( h, h+N-1 )
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self.add_edge( h, h + N - 1 )
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# Consider all switches and hosts 'on'
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self.enable_all()
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@@ -81,26 +81,25 @@ def linearBandwidthTest( lengths ):
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src, dst = net.hosts[ 0 ], net.hosts[ n ]
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print "testing", src.name, "<->", dst.name
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bandwidth = net.iperf( [ src, dst ] )
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print bandwidth ; flush()
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print bandwidth
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flush()
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results[ datapath ] += [ ( n, bandwidth ) ]
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net.stop()
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for datapath in datapaths:
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print
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print "*** Linear network results for", datapath, "datapath:"
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print
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result = results[ datapath ]
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result = results[ datapath ]
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print "SwitchCount\tiperf Results"
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for switchCount, bandwidth in result:
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print switchCount, '\t\t',
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print switchCount, '\t\t',
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print bandwidth[ 0 ], 'server, ', bandwidth[ 1 ], 'client'
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print
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print
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if __name__ == '__main__':
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lg.setLogLevel( 'info' )
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init()
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print "*** Running linearBandwidthTest"
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linearBandwidthTest( [ 1, 10, 20 ] )
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+10
-11
@@ -6,21 +6,20 @@ This is more complicated than using the higher-level classes,
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but it exposes the configuration details and allows customization.
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"""
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import logging
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from mininet.net import init
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from mininet.node import Node
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from mininet.util import createLink
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from mininet.log import lg, info
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def scratchNet( cname='controller', cargs='ptcp:'):
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def scratchNet( cname='controller', cargs='ptcp:' ):
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"Create network from scratch using kernel switch."
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info( "*** Creating nodes\n" )
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controller = Node( 'c0', inNamespace=False )
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switch = Node( 's0', inNamespace=False )
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h0 = Node( 'h0' )
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h1 = Node( 'h1' )
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info( "*** Creating links\n" )
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createLink( node1=h0, port1=0, node2=switch, port2=0 )
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createLink( node1=h1, port1=0, node2=switch, port2=1 )
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@@ -30,25 +29,25 @@ def scratchNet( cname='controller', cargs='ptcp:'):
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h1.setIP( h1.intfs[ 0 ], '192.168.123.2', 24 )
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info( str( h0 ) + '\n' )
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info( str( h1 ) + '\n' )
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info( "*** Starting network using kernel datapath\n" )
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controller.cmd( cname + ' ' + cargs + '&' )
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switch.cmd( 'dpctl deldp nl:0' )
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switch.cmd( 'dpctl adddp nl:0' )
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for intf in switch.intfs.values():
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switch.cmd( 'dpctl addif nl:0 ' + intf )
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switch.cmd( 'ofprotocol nl:0 tcp:localhost &')
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switch.cmd( 'dpctl addif nl:0 ' + intf )
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switch.cmd( 'ofprotocol nl:0 tcp:localhost &' )
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info( "*** Running test\n" )
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h0.cmdPrint( 'ping -c1 ' + h1.IP() )
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info( "*** Stopping network\n" )
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controller.cmd( 'kill %' + cname)
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controller.cmd( 'kill %' + cname )
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switch.cmd( 'dpctl deldp nl:0' )
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switch.cmd( 'kill %ofprotocol' )
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switch.deleteIntfs()
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info( '\n' )
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if __name__ == '__main__':
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lg.setLogLevel( 'info' )
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info( '*** Scratch network demo (kernel datapath)\n' )
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@@ -5,7 +5,7 @@ Build a simple network from scratch, using mininet primitives.
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This is more complicated than using the higher-level classes,
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but it exposes the configuration details and allows customization.
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This version uses the user datapath.
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This version uses the user datapath and an explicit control network.
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"""
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from mininet.net import init
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@@ -14,7 +14,8 @@ from mininet.util import createLink
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from mininet.log import lg, info
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def scratchNetUser( cname='controller', cargs='ptcp:' ):
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# Create Network
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"Create network from scratch using user switch."
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# It's not strictly necessary for the controller and switches
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# to be in separate namespaces. For performance, they probably
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# should be in the root namespace. However, it's interesting to
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@@ -32,15 +33,15 @@ def scratchNetUser( cname='controller', cargs='ptcp:' ):
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info( '*** Configuring control network\n' )
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controller.setIP( controller.intfs[ 0 ], '10.0.123.1', 24 )
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switch.setIP( switch.intfs[ 0 ], '10.0.123.2', 24 )
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info( '*** Configuring hosts\n' )
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h0.setIP( h0.intfs[ 0 ], '192.168.123.1', 24 )
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h1.setIP( h1.intfs[ 0 ], '192.168.123.2', 24 )
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info( '*** Network state:\n' )
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for node in controller, switch, h0, h1:
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info( str( node ) + '\n' )
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info( '*** Starting controller and user datapath\n' )
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controller.cmd( cname + ' ' + cargs + '&' )
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switch.cmd( 'ifconfig lo 127.0.0.1' )
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@@ -57,9 +58,9 @@ def scratchNetUser( cname='controller', cargs='ptcp:' ):
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switch.cmd( 'kill %ofprotocol' )
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switch.deleteIntfs()
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info( '\n' )
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if __name__ == '__main__':
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lg.setLogLevel( 'info' )
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info( '*** Scratch network demo (user datapath)\n' )
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init()
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init()
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scratchNetUser()
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+36
-33
@@ -27,45 +27,48 @@ def TreeNet( depth=1, fanout=2, **kwargs ):
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"Convenience function for creating tree networks."
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topo = TreeTopo( depth, fanout )
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return Mininet( topo, **kwargs )
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def connectToRootNS( network, switch, ip, prefixLen, routes ):
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"""Connect hosts to root namespace via switch. Starts network.
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"""Connect hosts to root namespace via switch. Starts network.
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network: Mininet() network object
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switch: switch to connect to root namespace
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ip: IP address for root namespace node
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prefixLen: IP address prefix length (e.g. 8, 16, 24)
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routes: host networks to route to"""
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# Create a node in root namespace and link to switch 0
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root = Node( 'root', inNamespace=False )
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port = max( switch.ports.values() ) + 1
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createLink( root, 0, switch, port )
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root.setIP( root.intfs[ 0 ], ip, prefixLen )
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# Start network that now includes link to root namespace
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network.start()
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intf = root.intfs[ 0 ]
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# Add routes from root ns to hosts
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for net in routes:
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root.cmd( 'route add -net ' + net + ' dev ' + intf )
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# Create a node in root namespace and link to switch 0
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root = Node( 'root', inNamespace=False )
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port = max( switch.ports.values() ) + 1
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createLink( root, 0, switch, port )
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root.setIP( root.intfs[ 0 ], ip, prefixLen )
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# Start network that now includes link to root namespace
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network.start()
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intf = root.intfs[ 0 ]
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# Add routes from root ns to hosts
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for route in routes:
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root.cmd( 'route add -net ' + route + ' dev ' + intf )
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def sshd( network, cmd='/usr/sbin/sshd', opts='-D' ):
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"Start a network, connect it to root ns, and run sshd on all hosts."
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switch = network.switches[ 0 ] # switch to use
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ip = '10.123.123.1' # our IP address on host network
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routes = [ '10.0.0.0/8' ] # host networks to route to
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connectToRootNS( network, switch, ip, 8, routes )
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for host in network.hosts: host.cmd( cmd + ' ' + opts + '&' )
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print
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print "*** Hosts are running sshd at the following addresses:"
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print
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for host in network.hosts: print host.name, host.IP()
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print
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print "*** Type 'exit' or control-D to shut down network"
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CLI( network )
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for host in network.hosts: host.cmd( 'kill %' + cmd )
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network.stop()
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"Start a network, connect it to root ns, and run sshd on all hosts."
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switch = network.switches[ 0 ] # switch to use
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ip = '10.123.123.1' # our IP address on host network
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routes = [ '10.0.0.0/8' ] # host networks to route to
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connectToRootNS( network, switch, ip, 8, routes )
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for host in network.hosts:
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host.cmd( cmd + ' ' + opts + '&' )
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print
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print "*** Hosts are running sshd at the following addresses:"
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print
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for host in network.hosts:
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print host.name, host.IP()
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print
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print "*** Type 'exit' or control-D to shut down network"
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CLI( network )
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for host in network.hosts:
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host.cmd( 'kill %' + cmd )
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network.stop()
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if __name__ == '__main__':
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lg.setLogLevel( 'info')
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init()
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network = TreeNet( depth=1, fanout=4, switch=KernelSwitch )
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sshd( network )
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lg.setLogLevel( 'info')
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init()
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net = TreeNet( depth=1, fanout=4, switch=KernelSwitch )
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sshd( net )
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+97
-75
@@ -20,99 +20,121 @@ import os
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import re
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import select
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import sys
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import time
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from time import time
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flush = sys.stdout.flush
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from mininet.log import lg
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from mininet.log import lg
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from mininet.net import init, Mininet
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from mininet.node import Host, KernelSwitch
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from mininet.node import KernelSwitch
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from mininet.topolib import TreeTopo
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from mininet.util import quietRun
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# Some useful stuff: buffered readline and host monitoring
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def readline( host, buffer ):
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"Read a line from a host, buffering with buffer."
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buffer += host.read( 1024 )
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if '\n' not in buffer: return None, buffer
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pos = buffer.find( '\n' )
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line = buffer[ 0 : pos ]
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rest = buffer[ pos + 1 :]
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return line, rest
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def readline( host, buf ):
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"Read a line from a host, buffering with buffer."
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buf += host.read( 1024 )
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if '\n' not in buffer:
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return None, buffer
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pos = buf.find( '\n' )
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line = buf[ 0 : pos ]
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rest = buf[ pos + 1: ]
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return line, rest
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def monitor( hosts, seconds ):
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"Monitor a set of hosts and yield their output."
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poller = select.poll()
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Node = hosts[ 0 ] # so we can call class method fdToNode
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buffers = {}
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for host in hosts:
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poller.register( host.stdout )
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buffers[ host ] = ''
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quitTime = time.time() + seconds
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while time.time() < quitTime:
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ready = poller.poll()
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for fd, event in ready:
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host = Node.fdToNode( fd )
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line, buffers[ host ] = readline( host, buffers[ host ] )
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if line: yield host, line
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yield None, ''
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"Monitor a set of hosts and yield their output."
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poller = select.poll()
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Node = hosts[ 0 ] # so we can call class method fdToNode
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buffers = {}
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for host in hosts:
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poller.register( host.stdout )
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buffers[ host ] = ''
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quitTime = time() + seconds
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while time() < quitTime:
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ready = poller.poll()
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for fd, event in ready:
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host = Node.fdToNode( fd )
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if event & select.POLLIN:
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line, buffers[ host ] = readline( host, buffers[ host ] )
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if line:
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yield host, line
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yield None, ''
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# bwtest support
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def parsebwtest( line,
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r=re.compile( r'(\d+) s: in ([\d\.]+) Mbps, out ([\d\.]+) Mbps' ) ):
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match = r.match( line )
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return match.group( 1, 2, 3 ) if match else ( None, None, None )
|
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r=re.compile( r'(\d+) s: in ([\d\.]+) Mbps, out ([\d\.]+) Mbps' ) ):
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||||
"Parse udpbwtest.c output, returning seconds, inbw, outbw."
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match = r.match( line )
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if match:
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seconds, inbw, outbw = match.group( 1, 2, 3 )
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return int( seconds ), float( inbw ), float( outbw )
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return None, None, None
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||||
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||||
def printTotalHeader():
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print
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print "time(s)\thosts\ttotal in/out (Mbps)\tavg in/out (Mbps)"
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||||
"Print header for bandwidth stats."
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||||
print
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print "time(s)\thosts\ttotal in/out (Mbps)\tavg in/out (Mbps)"
|
||||
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# Annoyingly, pylint isn't smart enough to notice
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||||
# when an unused variable is an iteration tuple
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||||
# pylint: disable-msg=W0612
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||||
|
||||
def printTotal( seconds=None, result=None ):
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||||
"Compute and print total bandwidth for given results set."
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||||
intotal = outtotal = 0.0
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count = len( result )
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for host, inbw, outbw in result:
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intotal += inbw
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outtotal += outbw
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inavg = intotal / count if count > 0 else 0
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outavg = outtotal / count if count > 0 else 0
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print '%d\t%d\t%.2f/%.2f\t\t%.2f/%.2f' % ( seconds, count,
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intotal, outtotal, inavg, outavg )
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||||
# pylint: enable-msg=W0612
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||||
# Pylint also isn't smart enough to understand iterator.next()
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||||
# pylint: disable-msg=E1101
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||||
|
||||
def printTotal( time=None, result=None ):
|
||||
intotal = outtotal = 0.0
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||||
count = len( result )
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||||
for host, inbw, outbw in result:
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||||
intotal += inbw
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||||
outtotal += outbw
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||||
inavg = intotal / count if count > 0 else 0
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||||
outavg = outtotal / count if count > 0 else 0
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||||
print '%d\t%d\t%.2f/%.2f\t\t%.2f/%.2f' % ( time, count, intotal, outtotal,
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||||
inavg, outavg )
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||||
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||||
def udpbwtest( net, seconds ):
|
||||
"Start up and monitor udpbwtest on each of our hosts."
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||||
hosts, switches = net.hosts, net.switches
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||||
hostCount = len( hosts )
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||||
print "*** Starting udpbwtest on hosts"
|
||||
for host in hosts:
|
||||
ips = [ h.IP() for h in hosts if h != host ]
|
||||
print host.name, ; flush()
|
||||
host.cmd( './udpbwtest ' + ' '.join( ips ) + ' &' )
|
||||
print
|
||||
results = {}
|
||||
print "*** Monitoring hosts"
|
||||
output = monitor( hosts, seconds )
|
||||
while True:
|
||||
host, line = output.next()
|
||||
if host is None: break
|
||||
time, inbw, outbw = parsebwtest( line )
|
||||
if time is not None:
|
||||
time, inbw, outbw = int( time ), float( inbw ), float( outbw )
|
||||
result = results.get( time, [] ) + [ ( host, inbw, outbw ) ]
|
||||
if len( result ) == hostCount: printTotal( time, result )
|
||||
results[ time ] = result
|
||||
print "*** Stopping udpbwtest processes"
|
||||
# We *really* don't want these things hanging around!
|
||||
quietRun( 'killall -9 udpbwtest' )
|
||||
print
|
||||
print "*** Results:"
|
||||
printTotalHeader()
|
||||
times = sorted( results.keys() )
|
||||
for time in times:
|
||||
printTotal( time - times[ 0 ] , results[ time ] )
|
||||
print
|
||||
|
||||
"Start up and monitor udpbwtest on each of our hosts."
|
||||
hosts = net.hosts
|
||||
hostCount = len( hosts )
|
||||
print "*** Starting udpbwtest on hosts"
|
||||
for host in hosts:
|
||||
ips = [ h.IP() for h in hosts if h != host ]
|
||||
print host.name,
|
||||
flush()
|
||||
host.cmd( './udpbwtest ' + ' '.join( ips ) + ' &' )
|
||||
print
|
||||
results = {}
|
||||
print "*** Monitoring hosts"
|
||||
output = monitor( hosts, seconds )
|
||||
while True:
|
||||
host, line = output.next()
|
||||
if host is None:
|
||||
break
|
||||
seconds, inbw, outbw = parsebwtest( line )
|
||||
if seconds is not None:
|
||||
result = results.get( seconds, [] ) + [ ( host, inbw, outbw ) ]
|
||||
if len( result ) == hostCount:
|
||||
printTotal( seconds, result )
|
||||
results[ seconds ] = result
|
||||
print "*** Stopping udpbwtest processes"
|
||||
# We *really* don't want these things hanging around!
|
||||
quietRun( 'killall -9 udpbwtest' )
|
||||
print
|
||||
print "*** Results:"
|
||||
printTotalHeader()
|
||||
times = sorted( results.keys() )
|
||||
for t in times:
|
||||
printTotal( t - t[ 0 ] , results[ t ] )
|
||||
print
|
||||
|
||||
# pylint: enable-msg=E1101
|
||||
|
||||
if __name__ == '__main__':
|
||||
lg.setLogLevel( 'info' )
|
||||
if not os.path.exists( './udpbwtest' ):
|
||||
|
||||
+1
-1
@@ -133,7 +133,7 @@ def makeListCompatible( fn ):
|
||||
newfn( 'a', 1, 'b' )"""
|
||||
|
||||
def newfn( *args ):
|
||||
"Generated function."
|
||||
"Generated function. Closure-ish."
|
||||
if len( args ) == 1:
|
||||
return fn( *args )
|
||||
args = ' '.join( [ str( arg ) for arg in args ] )
|
||||
|
||||
+21
-16
@@ -49,27 +49,34 @@ which interfaces belong to which node.
|
||||
|
||||
The basic naming scheme is as follows:
|
||||
|
||||
Host nodes are named h0-hN
|
||||
Switch nodes are named s0-sN
|
||||
Host nodes are named h1-hN
|
||||
Switch nodes are named s1-sN
|
||||
Controller nodes are named c0-cN
|
||||
Interfaces are named {nodename}-eth0 .. {nodename}-ethN
|
||||
|
||||
Note: If the network topology is created using mininet.topo, then
|
||||
node numbers are unique among hosts and switches (e.g. we have
|
||||
h1..hN and SN..SN+M) and also correspond to their default IP addresses
|
||||
of 10.x.y.z/8 where x.y.z is the base-256 representation of N for
|
||||
hN. This mapping allows easy determination of a node's IP
|
||||
address from its name, e.g. h1 -> 10.0.0.1, h257 -> 10.0.1.1.
|
||||
|
||||
Currently we wrap the entire network in a 'mininet' object, which
|
||||
constructs a simulated network based on a network topology created
|
||||
using a topology object (e.g. LinearTopo) from topo.py and a Controller
|
||||
node which the switches will connect to. Several
|
||||
configuration options are provided for functions such as
|
||||
using a topology object (e.g. LinearTopo) from mininet.topo or
|
||||
mininet.topolib, and a Controller which the switches will connect
|
||||
to. Several configuration options are provided for functions such as
|
||||
automatically setting MAC addresses, populating the ARP table, or
|
||||
even running a set of xterms to allow direct interaction with nodes.
|
||||
|
||||
After the mininet is created, it can be started using start(), and a variety
|
||||
of useful tasks maybe performed, including basic connectivity and
|
||||
bandwidth tests and running the mininet CLI.
|
||||
After the network is created, it can be started using start(), and a
|
||||
variety of useful tasks maybe performed, including basic connectivity
|
||||
and bandwidth tests and running the mininet CLI.
|
||||
|
||||
Once the network is up and running, test code can easily get access
|
||||
to host and switch objects, which can then be used
|
||||
for arbitrary experiments, typically involving running a series of
|
||||
commands on the hosts.
|
||||
to host and switch objects which can then be used for arbitrary
|
||||
experiments, typically involving running a series of commands on the
|
||||
hosts.
|
||||
|
||||
After all desired tests or activities have been completed, the stop()
|
||||
method may be called to shut down the network.
|
||||
@@ -187,10 +194,8 @@ class Mininet( object ):
|
||||
#
|
||||
# Notes:
|
||||
#
|
||||
# 1. If the controller and switches are in the same ( e.g. root )
|
||||
# 1. If the controller and switches are in the same (e.g. root)
|
||||
# namespace, they can just use the loopback connection.
|
||||
# We may wish to do this for the user datapath as well as the
|
||||
# kernel datapath.
|
||||
#
|
||||
# 2. If we can get unix domain sockets to work, we can use them
|
||||
# instead of an explicit control network.
|
||||
@@ -244,7 +249,7 @@ class Mininet( object ):
|
||||
exit( 1 )
|
||||
info( '\n' )
|
||||
|
||||
def _configHosts( self ):
|
||||
def configHosts( self ):
|
||||
"Configure a set of hosts."
|
||||
# params were: hosts, ips
|
||||
for host in self.hosts:
|
||||
@@ -294,7 +299,7 @@ class Mininet( object ):
|
||||
self._configureControlNetwork()
|
||||
|
||||
info( '*** Configuring hosts\n' )
|
||||
self._configHosts()
|
||||
self.configHosts()
|
||||
|
||||
if self.xterms:
|
||||
self.startXterms()
|
||||
|
||||
@@ -33,6 +33,12 @@ RemoteController: a remote controller node, which may use any
|
||||
arbitrary OpenFlow-compatible controller, and which is not
|
||||
created or managed by mininet.
|
||||
|
||||
Future enhancements:
|
||||
|
||||
- Possibly make Node, Switch and Controller more abstract so that
|
||||
they can be used for both local and remote nodes
|
||||
|
||||
- Create proxy objects for remote nodes (Mininet: Cluster Edition)
|
||||
"""
|
||||
|
||||
import os
|
||||
|
||||
+11
-11
@@ -98,7 +98,7 @@ class Topo(object):
|
||||
self.ports = {} # ports[src][dst] is port on src that connects to dst
|
||||
self.id_gen = NodeID # class used to generate dpid
|
||||
|
||||
def _add_node(self, dpid, node):
|
||||
def add_node(self, dpid, node):
|
||||
'''Add Node to graph.
|
||||
|
||||
@param dpid dpid
|
||||
@@ -107,7 +107,7 @@ class Topo(object):
|
||||
self.g.add_node(dpid)
|
||||
self.node_info[dpid] = node
|
||||
|
||||
def _add_edge(self, src, dst, edge = None):
|
||||
def add_edge(self, src, dst, edge = None):
|
||||
'''Add edge (Node, Node) to graph.
|
||||
|
||||
@param src src dpid
|
||||
@@ -119,9 +119,9 @@ class Topo(object):
|
||||
if not edge:
|
||||
edge = Edge()
|
||||
self.edge_info[(src, dst)] = edge
|
||||
self._add_port(src, dst)
|
||||
self.add_port(src, dst)
|
||||
|
||||
def _add_port(self, src, dst):
|
||||
def add_port(self, src, dst):
|
||||
'''Generate port mapping for new edge.
|
||||
|
||||
@param src source switch DPID
|
||||
@@ -329,11 +329,11 @@ class SingleSwitchTopo(Topo):
|
||||
|
||||
self.k = k
|
||||
|
||||
self._add_node(1, Node())
|
||||
self.add_node(1, Node())
|
||||
hosts = range(2, k + 2)
|
||||
for h in hosts:
|
||||
self._add_node(h, Node(is_switch = False))
|
||||
self._add_edge(h, 1, Edge())
|
||||
self.add_node(h, Node(is_switch = False))
|
||||
self.add_edge(h, 1, Edge())
|
||||
|
||||
if enable_all:
|
||||
self.enable_all()
|
||||
@@ -388,12 +388,12 @@ class LinearTopo(Topo):
|
||||
switches = range(1, k + 1)
|
||||
for s in switches:
|
||||
h = s + k
|
||||
self._add_node(s, Node())
|
||||
self._add_node(h, Node(is_switch = False))
|
||||
self._add_edge(s, h, Edge())
|
||||
self.add_node(s, Node())
|
||||
self.add_node(h, Node(is_switch = False))
|
||||
self.add_edge(s, h, Edge())
|
||||
for s in switches:
|
||||
if s != k:
|
||||
self._add_edge(s, s + 1, Edge())
|
||||
self.add_edge(s, s + 1, Edge())
|
||||
|
||||
if enable_all:
|
||||
self.enable_all()
|
||||
|
||||
+2
-2
@@ -20,11 +20,11 @@ class TreeTopo( Topo ):
|
||||
returns: last node added"""
|
||||
me = n
|
||||
isSwitch = depth > 0
|
||||
self._add_node( me, Node( is_switch=isSwitch ) )
|
||||
self.add_node( me, Node( is_switch=isSwitch ) )
|
||||
if isSwitch:
|
||||
for i in range( 0, fanout ):
|
||||
child = n + 1
|
||||
self._add_edge( me, child )
|
||||
self.add_edge( me, child )
|
||||
n = self.addTree( child, depth-1, fanout )
|
||||
return n
|
||||
|
||||
|
||||
+1
-1
@@ -141,7 +141,7 @@ def macColonHex( mac ):
|
||||
return _colonHex( mac, 6 )
|
||||
|
||||
def ipStr( ip ):
|
||||
"""Generate IP address string
|
||||
"""Generate IP address string from an unsigned int
|
||||
ip: unsigned int of form x << 16 | y << 8 | z
|
||||
returns: ip address string 10.x.y.z """
|
||||
hi = ( ip & 0xff0000 ) >> 16
|
||||
|
||||
Reference in New Issue
Block a user