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BigIron RX Series Configuration Guide
53-1001810-01
ECMP load sharing for IPv6
43
To establish an IPv6 DNS entry for the device, enter the following command.
BigIron RX(config)# ipv6 dns domain-name companynet.com
Syntax: [no] ipv6 dns domain-name <
domain name
>
To define an IPv6 DNS server address, enter the following command.
BigIron RX(config)# ipv6 dns server-address 200::1
Syntax: [no] ipv6 dns server-address <
ipv6-addr
> [<
ipv6-addr
>] [
<ipv6-addr
>] [<
ipv6-addr
>]
As an example, in a configuration where ftp6.companynet.com is a server with an IPv6 protocol
stack, when a user pings ftp6.companynet.com, the
Brocade
device attempts to resolve the AAAA
DNS record. In addition, if the DNS server does not have an IPv6 address, as long as it is able to
resolve AAAA records, it can still respond to DNS queries.
ECMP load sharing for IPv6
The IPv6 route table selects the best route to a given destination from among the routes in the
tables maintained by the configured routing protocols (BGP4, OSPF, static, and so on). The IPv6
route table can contain more than one path to a given destination. When this occurs, the
Brocade
device selects the path with the lowest cost for insertion into the routing table. If more than one
path with the lowest cost exists, all of these paths are inserted into the routing table, subject to the
configured maximum number of load sharing paths (by default 4). The device uses
Equal-Cost
Multi-Path (ECMP) load sharing
to select a path to a destination.
When the device receives traffic for a destination, and the IPv6 route table contains multiple,
equal-cost paths to that destination, the device checks the
IPv6 forwarding cache
for a forwarding
entry for the destination. The IPv6 forwarding cache provides a fast path for forwarding IPv6 traffic.
The IPv6 forwarding cache contains entries that associate a destination host or network with a
path (next-hop router).
If the IPv6 forwarding cache contains a forwarding entry for the destination, the
Brocade
device
uses the entry to forward the traffic. If the IPv6 forwarding cache does not contain a forwarding
entry for the destination, the software selects a path from among the available equal-cost paths to
the destination, then creates an entry in the in the cache based on the calculation. Subsequent
traffic for the same destination uses the forwarding entry. Entries remain in the IPv6 forwarding
cache for one minute, then are aged out.
If the path selected by the device becomes unavailable, its entry in the IPv6 forwarding cache is
removed, a new path is selected from the remaining equal-cost paths to the destination, and an
entry is created in the IPv6 forwarding cache using the new path.
Brocade
devices support the following ECMP load-sharing methods for IPv6 traffic:
•
Network-based – The
Brocade
device distributes traffic across equal-cost paths based on
destination network address. The software selects a path based on a calculation involving the
maximum number of load-sharing paths allowed and the actual number of paths to the
destination network. This is the default ECMP load-sharing method for IPv6.
•
Host-based – The
Brocade
device uses a simple round-robin mechanism to distribute traffic
across the equal-cost paths based on destination host IP address. The device uses this ECMP
load-sharing method for IPv6 if you explicitly configure it to do so.
Summary of Contents for Brocade DCX
Page 40: ...xl BigIron RX Series Configuration Guide 53 1001810 01 ...
Page 72: ...lxxii BigIron RX Series Configuration Guide 53 1001810 01 ...
Page 88: ...16 BigIron RX Series Configuration Guide 53 1001810 01 Searching and filtering output 1 ...
Page 300: ...228 BigIron RX Series Configuration Guide 53 1001810 01 Displaying IP information 7 ...
Page 318: ...246 BigIron RX Series Configuration Guide 53 1001810 01 Deploying a LAG 8 ...
Page 418: ...346 BigIron RX Series Configuration Guide 53 1001810 01 SuperSpan 12 ...
Page 482: ...410 BigIron RX Series Configuration Guide 53 1001810 01 MRP CLI example 14 ...
Page 506: ...434 BigIron RX Series Configuration Guide 53 1001810 01 Displaying VSRP information 15 ...
Page 582: ...510 BigIron RX Series Configuration Guide 53 1001810 01 Viewing Layer 2 ACLs 20 ...
Page 634: ...562 BigIron RX Series Configuration Guide 53 1001810 01 Troubleshooting ACLs 21 ...
Page 642: ...570 BigIron RX Series Configuration Guide 53 1001810 01 Trunk formation 22 ...
Page 746: ...674 BigIron RX Series Configuration Guide 53 1001810 01 Displaying RIP filters 24 ...
Page 808: ...736 BigIron RX Series Configuration Guide 53 1001810 01 Displaying OSPF information 25 ...
Page 938: ...866 BigIron RX Series Configuration Guide 53 1001810 01 Displaying MBGP information 27 ...
Page 950: ...878 BigIron RX Series Configuration Guide 53 1001810 01 Using secure copy 28 ...
Page 988: ...916 BigIron RX Series Configuration Guide 53 1001810 01 Clearing IS IS information 29 ...
Page 1054: ...982 BigIron RX Series Configuration Guide 53 1001810 01 Sample 802 1x configurations 33 ...
Page 1108: ...1036 BigIron RX Series Configuration Guide 53 1001810 01 sFlow 39 ...
Page 1190: ...1118 BigIron RX Series Configuration Guide 53 1001810 01 Displaying RIPng information 44 ...
Page 1270: ...1198 BigIron RX Series Configuration Guide 53 1001810 01 Displaying ACLs 47 ...
Page 1310: ...1238 BigIron RX Series Configuration Guide 53 1001810 01 Displaying OSPFv3 information 48 ...
Page 1382: ...1310 BigIron RX Series Configuration Guide 53 1001810 01 Commands That Require a Reload D ...
Page 1435: ...BigIron RX Series Configuration Guide 1363 53 1001810 01 VSRP E ...
Page 1436: ...1364 BigIron RX Series Configuration Guide 53 1001810 01 VSRP E ...