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Here, Derived2 does not override Who( ). Thus, when Who( ) is called on a Derived2 object, the Who( ) in Base is executed. In the case of a multilevel hierarchy, if a derived class does not override a virtual method, then, while moving up the hierarchy, the first override of the method that is encountered is the one executed. For example:
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Timers. Figure. 6.14g shows timers set in an ATS. The START T_TEST is the T_Test start-timer, and TIMEOUT T_TEST is an if timer showing where the T_Test expires. Timers also can be canceled, and read using the READTIMER function. Labels and GOTO statements. Figure 6.14h shows a label and GOTO statement in an ATC. They provide a simple mechanism to force a loop. Assignments and boolean expressions. Figure. 6.14i shows examples of TTCN assignments and boolean expressions. Assignments are enclosed within parentheses and include the symbol := used in languages such as Pascal and Ada. Boolean expressions are enclosed in brackets. Two alternative expressions provide a simple mechanism to implement an if-then-else statement, as in this example:
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Figure 16-12. Enabling Group Policy loopback processing
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Next, look closely at this line of code from inside Main( ):
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The IComparable and IComparable<T> Interfaces
3 dB within a 6 MHz carrier separation, or 10 dB on any other channel. This measurement is performed on the visual carrier of each cable channel. Many systems use three technicians working eight-hour shifts to accomplish this test, while another test crew will visit the six or more test points making the signal-quality tests. Proper documentation of tests can simply be written on preprinted forms or stored on a laptop computer oppy disk. Some computer-oriented systems use a software program to compile and/or print the data. Signal-quality tests concern the signal spacing of the video and audio carrier. To do this, usually the visual carrier frequency is measured and then the audio carrier; the difference should be 4.5 MHz 5 KHz. This measurement can be made using a TEK-2714/15 or HP 8590 spectrum analyzer. Before these newer spectrum analyzers were available, a tunable down converter was used with a digital frequency output indicating the visual/ audio frequency offset (4.5 MHz). Another manufacturer had a tunable signal stripping analyzer that could read the visual carrier frequency and the audio carrier offset. Such equipment provided the proper accuracy but was more dif cult to use and a bit more time-consuming. The television signals must be tested for noise and low-frequency disturbances (hum). The carrier-to-noise ratio is a particularly important speci cation. Usually, this appears worse at the longer cascades because this noise builds up with the number of ampli ers in cascade. This subject is covered in detail in Appendix E. Since the speci cation is stated as greater than 36 dB, most cable operators try to keep the carrier-to-noise (C/N) ratio at the subscriber s terminal at the longest ampli er cascade to 46 to 47 dB. Subscribers with large-screen TV sets nd the 36-dB speci cation allows for the noise to be objectionable. The cable industry should strive to increase the speci cation to 48 to 49 dB C/N. With this speci cation, systems can be more competitive with the direct digital broadcast services (DBS) satellite-delivered services. This test can be made with some of the present-day signal-level meters most cable operators use. Also, such level meters can make the hum and low-frequency disturbance tests. This measurement can also be performed using a high-quality spectrum analyzer. When using any spectrum analyzer, a pre-selector lter is needed to protect the input of the analyzer from other signals that can be large enough to overdrive the analyzer s mixer. Strong signals entering the mixer can cause the analyzer to produce spurious signals, rendering the measurement inaccurate. Pre-selector lters are available from Acterna and Trilithic, to name a couple. Proof-of-performance test gear usually has pre-selector (TV channel band pass) lters in a cabinet,
How we will manage the network elements is a major consideration in vendor selection. Often, for example, element management considerations might force us to choose a single vendor for all network elements rather than mix and match MGCs, SGs, and so on. Although we might be tempted to pick the best in class for each type of network element, such an approach might lead to difficulty, as each type of network might need to be managed separately. Imagine, for example, that we need to provision a new trunk group on the network. We need to provision data on an MG, an MGC, and potentially
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Running the System Configuration Dialog
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