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Remembering from the "Operation" section earlier in the chapter, in EIGRP, the hello interval is how often the router sends hello messages (used to establish and maintain adjacencies) to other routers The holdtime interval is how long the router waits to hear a hello from a neighbor before declaring the neighbor dead (causing paths from that neighbor to be removed from the topology table) Although EIGRP does not insist that these intervals be the same on all routers, configuring identical intervals is generally a good idea because misconfigured holdtimes and hello intervals can cause neighbors to be reset at regular intervals (causing routing failures and high CPU use) To set the hello interval on an EIGRP router, use the ip hello-interval eigrp [as number] [interval in seconds] interface config mode command The following example sets a hello interval on the FastEthernet 0/0 interface for AS 10 to be three seconds:

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artwork unless you are willing to polarize all your lights and your camera lens, which can be quite a project and quite an expense for an inexperienced shooter Figure 3-9 shows the copy stand setup for photographing documents

Generating interface and implementation files The last step is to generate the class s interface (.h) and implementation (.m) files and add them to the Project Builder CocoaWGet project. The generated interface file contains the outlets and actions you created, and the implementation file contains the method definitions. In addition, the application s Nib files contain all the application resources, object instances, and connections for the outlets and actions. You generate the CocoaWGet class files as follows:

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Figure 4-6: ATM NNI cell format After the VPI and VCI fields, there is a Payload Type field This field is used to tell the ATM devices whether the cell is a data cell, an Operations and Management (OAM) cell, or an idle cell, and whether congestion is being experienced An OAM cell is used for functions similar to those undertaken by the ILMI In addition, the OAM cell can carry information for loopback and other link-monitoring purposes An idle cell is a cell that is inserted into the stream because no user data is being sent at that time Contrary to its name, ATM actually runs over synchronous links It is called asynchronous because ATM does not require that data be sent in a synchronous fashion ATM has idle cells to deal with times when no data needs to be transmitted However, ATM does require a synchronous physical layer protocol (like SONET) to send data because ATM has no start or stop signals to identify frames ATM needs a clocking source, just like frame relay, to synchronize the transmissions

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Click the Classes tab and select a class (DownloadController, RRController, and so on).

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However, it's how ATM detects the clocking signal that makes idle cells important Because ATM does not require a clocking signal, just a clocking source, it needs a way to determine what the clock is set at It does this by looking for the Header Error Control (HEC) field in the frame Once it finds this field, it knows (based on the delay values between HEC fields) the clocking of the connection Determining the clocking rate based on the HEC field requires that a constant stream of cells be transmitted so that the HEC fields can be checked, whether data needs to be transmitted or not After the Payload Type field, the Cell Loss Priority (CLP) field is listed The CLP field is similar to the DE bit in Frame Relay It tells which cells are eligible for discard Finally, the HEC field (mentioned previously) comes into play This field is a checksum used primarily to detect errors in the ATM cell header If an error is found, the HEC field contains enough parity information to fix any single bit error This field is also used to synchronize ATM to the clock source After using fixed-length frames, the second step in dealing with multiple traffic types involves using a layered approach to cell preparation Because of the differing needs of voice, video, and data traffic, various techniques are used to package each type of traffic ATM accomplishes this (frame repackaging based on traffic type) with an adaptation layer The ATM adaptation layer (AAL) is responsible for packaging the payload of the cells based on the type of traffic that is to be sent The ATM adaptation layer encapsulates the data again before placing it in the payload area of the ATM cell, as shown in Figure 4-7 ATM formally defines five different adaptation layers, AAL 1 through 5, but layers 3 and 4 are combined into AAL 3/4, so there are really only four layers.

FIGURE 3-9

Figure 4-7: AAL encapsulation of a UNI/NNI cell AAL 1 is designed for voice traffic Voice traffic is highly tolerant of errors, so the AAL 1 PDU does not have an FCS or CRC field Voice traffic does have to be in sequential order, however, so sequence number and sequence number protection fields are inserted Figure 4-8 shows an AAL 1 PDU

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