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The different crystal oscillator circuit configurations employed in circuit design are required because of the various impedance levels found at different frequencies of oscillator operation. Since a crystal s internal series resistance can be as low as 20 ohms at 25 MHz, all the way up to 0.25 megohms at 500 Hz, special circuit designs are required to efficiently match and drive the crystal at these resistance values. The Pierce circuits above will be almost ideal for the majority of crystal oscillator needs in most wireless systems. Any oscillator crystal in RF circuits should be calibrated to 5 or 6 decimal places in order to supply an accurate frequency for most LO applications. A crystal with less accuracy, especially at high frequencies, can result in an oscillator that can become unstable as a result of the huge frequency adjustments that must be made. Oscillator start-up time is directly correlated to the Q of the oscillator s resonator, so the higher the Q the longer the start-up time. Crystal oscillators, with their ultrahigh Q, have prolonged start-up times up to, and sometimes surpassing, 100 mS. Start-up time will also be affected by the bias network of the oscillator s active device, since the bias network must reach its steadystate value before reliable oscillations will occur. Thus the RC time constant of the bias network can substantially slow down the onset of oscillations. Obviously all passive and active components must be rated above the oscillator s frequency of operation, as well as the oscillator s voltage, current, or power. The inductors and capacitors must not have any series or parallel resonances that will interfere with oscillations, and the active element must have a gain that is more than sufficient to sustain oscillations at the frequency of operation. Board layout is another critical aspect to proper oscillator operation (see Sec. 10.3, Wireless board design ).
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Protocol testing through the layers of the protocol stack for each service in the network. ATM layer test capability, including traffic analysis, QoS measurement, and signaling test (if used by any of the deployed services). Physical layer support for each interface used in the network, including multiple ports to allow simultaneous measurement across both directions of a link, or between an input and output of a network element. Synchronization of tests and correlation of measurements through all layers of the protocol stack, and between multiple ports. Remote-control operation, allowing the tester to be left in the network, log measurements over time, and be accessed from a central location such as a network operations center. Ease of use, particularly an intuitive graphical user interface (GUI), comprehensive help system, and canned tests (both predefined and created through test
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Not only would the connection drop without notice but also the error rate was high enough to require a complex protocol to recover from errors. The back end of the network, that is, the interoffice trunks, were practically all digital, with more being installed daily. The switching systems were becoming digital just as quickly. It was expected that the only part of the network that would still be analog was the local loop (our infamous last mile). It was a logical step to provide existing digital capability already in the network directly to the customer. This created what is always called the local loop problem. The problem is that much of the local loop plant was installed between 40 and 60 years ago and had been designed for normal voice communications only. The local loop problem therefore is how to run highspeed digital data on the local loop. Several solutions to the local loop problem are discussed in this book, and the ISDN solution is a little different from the solutions that will be presented in 16 , xDSL. Although the digital network exists and the digital switching systems exist, ISDN has not made large in-roads into the customer premises. Once heralded as the solution for Internet access, it has been overtaken by xDSL (although there is an ISDN like DSL service called IDSL) and cable modems. It has found some success in the business community, specifically for telecommuting and teleconferencing. Although greeted with enthusiasm by many equipment makers, ISDN has been treated coolly by several of the major North American carriers. The European monopoly carriers implemented ISDN in the major cities, while their rural telephone systems still use electromechanical switching. The committees that defined ISDN concentrated on the interface.
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Once you enter the enable command, if a Privilege EXEC password has been configured on the Cisco device, you will be prompted for it. Upon successfully authenticating, you will be in Privilege EXEC mode. You can tell that you are in this mode by examining the CLI prompt. In the preceding code example, notice that the > changed to a #. When you are in Privilege EXEC mode, you have access to all of the User EXEC commands as well as many more advanced management and troubleshooting commands. These commands include extended ping and trace abilities, managing configuration files and IOS images, and detailed troubleshooting using debug commands. About the only thing that you can t do from this mode is change the configuration of the Cisco device this can be done only from Configuration mode. If you wish to return to User EXEC mode from Privilege EXEC mode, use the disable command:
Figure 5-2
In previous versions of Web Intelligence, accessing OLAP databases such as Hyperion Essbase or Microsoft Analysis Services was not particularly seamless and required a different user interface. This changes drastically in XI Release 2, with OLAP-aware universes. If your administrator has built a universe against an OLAP database, you may not even realize that an OLAP database is the data source, as these universes look very similar to ones that access relational databases or a data warehouse. The dimensions, measures, and details all appear as classes and objects as they do in a relational data source. Figure 20-7 shows the sample Sales database in Microsoft Analysis Services. There are several differences, however: Each class will have a new dimension object called (All). This is the top level within a hierarchy and represents a grand total such as All Products, All Customers. When filtering on a dimension, the list of values is automatically cascaded. This can be a little confusing, depending on which level in the hierarchy you are filtering on. For example, in Figure 20-7, the filter is on Country. To see the list of available countries, choose the operand Values From List, and then Refresh List. Web Intelligence first prompts What (All), since All Customers is the top of the hierarchy. You have to first click the ellipse ( . . . ) to see the All Customers value and then click the list of individual countries. If you place a filter on a lower-level dimension object such as City, the list of values is cascaded for each level: All, Country, and State. Lists of values on attribute or detail objects (indicated with a green pyramid) can be very slow to update, depending upon how the OLAP database has been structured, and distinct values are not displayed. So for example, Customer Gender, which is only M for Male or F for Female, will generate a very long list of values repeating M and F for every individual customer. Notice in Figure 20-7, in the object help text pane, the phrase for LOV_PROPERTIES. When this is not populated, the list of values generation is slow. Much of this has to do with the way the OLAP database has been designed. With Microsoft Analysis Services, the cube designer may make some of the member properties virtual dimensions that will give you better query performance in Web Intelligence.
As you can see, the contents of vector v2 are inserted into the middle of vector v. As you learn more about the STL, you will find that interators are the glue that holds it together. They offer a convenient means of working with two or more STL objects at the same time. They are especially useful to the algorithms described later in this chapter.
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