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Figure 25-41: A small network using VLSM and discontiguous subnetting Note Although this example can adequately show the pitfalls of autosummarization and the need for manual summarization, it isn't all that similar to many complex networks that require manual summarization For a more realistic and much larger example, please visit my web site at http://wwwalfageekcom/ However, if you disable autosummarization, you now have a problem because the routing tables on all EIGRP routers in the AS will contain well over 30 individual routes Although this is problematic from a network use perspective (because of the bandwidth required for updates, and so on), it is even worse from a memory and CPU use perspective For instance, imagine that Spoke 1, connected to the 16 subnets of the 1721600 network, were to fail Because it is directly connected to 16 subnets that have no other router connections, the Hub router will (most likely) be using it as the successor to all of those subnets Because all 16 subnets will be listed in Hub's topology table, when the hellos from the failed router are not heard, it will remove the router from the table and enter the active state for each of the 16 routes, one at a time Queries and replies will have to propagate across the entire enterprise, causing router CPU use on every router in the company for each of the 16 subnets However, if you manually summarize the routes, as shown in Figure 25-42, you will have the diffusing computation performed for only a single route (reducing the CPU and network use for the computation by 15/16, or 93 percent-instead of 16 computations, only one computation must be performed)

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Figure 25-42: Summarization of the network from Figure 25-41 By preventing diffusing computations from involving large numbers of routers, summarization is very useful for resolving SIA errors In a well-designed and configured network, a route will typically become SIA only because of the sheer number of routers a query must cross (In a poorly designed network, other factors-such as saturated links, abnormally high resource use, and improper bandwidth settings-can also be a problem) If a query involves several hundred routers, for instance, it is very possible that one of the routers may be unable to respond to the query (or may not have received the query at all) In this case, an SIA timer starts, and once it expires (around three minutes later), the route is declared SIA When a route becomes SIA, the neighbor(s) who did not reply are removed from the neighbor table; any paths through that neighbor are removed from the topology table, and, consequently, any routes through that neighbor are removed from the routing table (unless a feasible successor for the affected routes exists) Thus, continual SIAs can cause serious instability and use problems for your network Luckily, summarization can go a long way toward reducing SIA problems Manual summarization is extremely useful, but you need to be careful when manually summarizing to ensure that you do not produce conflicting routing entries For instance, the network shown in Figure 25-43 cannot be easily summarized

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Figure 25-43: Example of a poorly designed IP scheme incompatible with summarization If you summarize this network, as shown in Figure 25-44, you will have some serious problems because the address ranges do not cover the full range of addresses connected to each router

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Figure 25-44: Example of an unsuccessful attempt to summarize the previous network At Boston, I have tried to summarize subnets 1723110/24, 1723120/24, 1723130/24, and 1723140/24 with 1723100/22 The problem is that 1723100/22 actually matches the address range from 1723100 to 172313255, which doesn't include the 1723140/24 subnet at all In addition, on Europe, I have attempted to summarize subnets 1723150/24, 1723160/24, 1723170/24, and 1723180/24 with 1723140/22 Again, this causes problems because 1723140/22 actually matches the address range from 1723140 to 172317255, which does include the 1723140 network (which does not connect to Europe) and does not include the 1723180 subnet (which does connect to Europe) Now, in this example, EIGRP actually sorts the problem out because manual summarization suppresses routes for individual subnets from being advertised only if the routes in question are within the summarized range In other words, on Boston, the 1723140/24 subnet does not fall within the summary range, so it will still be advertised as an individual subnet to Kansas When Kansas hears the summary route for 1723140/22, it enters the route into its routing table, in addition to the 1723140/24 network, and uses the most specific route that matches any given packet to route the packet Keep this problem in mind when attempting to summarize routes manually If you work out the numbering in binary before you attempt to summarize (making sure the proposed summary address matches the address range you need to summarize), you will save yourself considerable headaches

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EIGRP load balances extremely similarly to IGRP, with the addition of DUAL In EIGRP, if a route meets the FC, it will be entered into the topology table Once all routes to a given destination are in the topology table, the route with the best metric becomes the successor, and the FD is based on its metric Any routes that also meet the metric of the successor times the variance are also entered as successors to the destination, and unequal-cost load balancing is performed across all successors All other routes meeting the FC but not within the variance range are marked as feasible successors To bring this concept home, examine the network shown in Figure 25-45

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