在如下拓扑中:
目前网络已经连通。
如下图:
在R1上做R1上的广播
在路由2上也如上进行配置:
路由2的路由配置完成
到现在位置路由配置完成
为了在通信过程中,降低路由的工作负担,减少路由CPU处理工作,Windows开发的RIPv1支持了路由的局部更新功能。
在路由上配置:
在路由2上进行配置:
测试:
C:\>ping 192.168.6.11
Pinging 192.168.6.11 with 32 bytes of data:
Reply from 192.168.6.11: bytes=32 time=3ms TTL=126
Reply from 192.168.6.11: bytes=32 time=1ms TTL=126
Reply from 192.168.6.11: bytes=32 time=1ms TTL=126
Reply from 192.168.6.11: bytes=32 time=1ms TTL=126
Ping statistics for 192.168.6.11:
Packets: Sent = 4, Received = 4, Lost = 0 (0% loss),
Approximate round trip times in milli-seconds:
Minimum = 1ms, Maximum = 3ms, Average = 1ms
C:\>tracert route 192.168.6.1
Unable to resolve target system name route.
C:\>tracert 192.168.6.1
Tracing route to USER [192.168.6.1]
over a maximum of 30 hops:
1 2 ms <1 ms <1 ms 192.168.2.1
2 2 ms <1 ms <1 ms USER [192.168.6.1]
Trace complete.
C:\>tracert 192.168.6.11
Tracing route to 192.168.6.11 over a maximum of 30 hops
1 1 ms <1 ms <1 ms 192.168.2.1
2 2 ms <1 ms <1 ms USER [192.168.1.11]
3 2 ms <1 ms 1 ms 192.168.6.11
Trace complete.
C:\>
同理:RIPv2的局部更新也上如此:
在如下拓扑中:
目前网络已经连通。
如下图:
在R1上做R版本2的广播
在路由2上也如上进行配置:
路由2的路由配置完成
到现在位置路由配置完成
测试:
C:\>ping 192.168.6.11
Pinging 192.168.6.11 with 32 bytes of data:
Reply from 192.168.6.11: bytes=32 time=3ms TTL=126
Reply from 192.168.6.11: bytes=32 time=1ms TTL=126
Reply from 192.168.6.11: bytes=32 time=1ms TTL=126
Reply from 192.168.6.11: bytes=32 time=1ms TTL=126
Ping statistics for 192.168.6.11:
Packets: Sent = 4, Received = 4, Lost = 0 (0% loss),
Approximate round trip times in milli-seconds:
Minimum = 1ms, Maximum = 3ms, Average = 1ms
C:\>tracert route 192.168.6.1
Unable to resolve target system name route.
C:\>tracert 192.168.6.1
Tracing route to USER [192.168.6.1]
over a maximum of 30 hops:
1 2 ms <1 ms <1 ms 192.168.2.1
2 2 ms <1 ms <1 ms USER [192.168.6.1]
Trace complete.
C:\>tracert 192.168.6.11
Tracing route to 192.168.6.11 over a maximum of 30 hops
1 1 ms <1 ms <1 ms 192.168.2.1
2 2 ms <1 ms <1 ms USER [192.168.1.11]
3 2 ms <1 ms 1 ms 192.168.6.11
Trace complete.
C:\>