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cout << "Error, cast should work!\n"; return 0; }
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Symmetrical vs. Logarithmic A symmetrical spiral object appears with its spiral revolutions evenly spaced from the center origin to the outer dimensions of the object. To increase or decrease the rate at which the curves in your spiral become smaller or larger as they reach the object s center, you may want to use the Logarithmic method. The term logarithmic refers to the acceleration (or deceleration) of the spiral revolutions. To choose this option, click the Logarithmic Spiral button in the Property Bar before drawing your shape. Logarithmic Expansion option While the Logarithmic Spiral mode is selected, the Logarithmic Expansion slider becomes available, enabling you to set this rate based on a percentage of the object s dimensions. Logarithmic Expansion may be set from 1 to 100 percent. A Logarithmic Expansion setting of 1 results in a symmetrical spiral setting, while a setting of 100 causes dramatic expansion, as shown in Figure 9-9. If you need a shape that is reminiscent of a nautilus, increase the Logarithmic Expansion to 50 or so.
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Table 11-1 A Sampling of the Methods Defined by Stream
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of the usual optical operating wavelengths. The measured loss includes the complete amount of cable installed including the lengths stored in the service loops (estimated at 0.1 km / loop). When the transmitter is ready for installation its power output can be measured using the portable power meter. This value should be compared against the manufacturer s speci cation for accuracy and can be used as the input power to the optical ber when connected. At the receiving end, an optical power meter can now measure the power level that will be connected to the receiver. The value of this power level should be within the dynamic range of the receiver as speci ed by the manufacturer. Example 4-2 provides further discussion. If an optical transmitter with an output power of 5 dBm connected to the ber-optic cable system with a measured loss of 19 dB, the receiver should have an input power level of 24 dBm. If the receiver has a dynamic range of 12 to 30 dBm, then 24 dBm power level is within this range with room to spare. 4.423 Once the proper optical levels have been established and compared to the predicted design parameters, the RF system has to be adjusted. These measurements can be made using a signal-level meter. For this method, measurements are made on a channel-by-channel basis. Some signal-level meters have a wideband-tuning feature that presents all the carrier levels on a wide LCD similar to a spectrum analyzer. The method of choice would be to use a high-quality spectrum analyzer, preferably one with digital storage. Measurements can be made and recorded on a printer either on location or later at the of ce. These printouts are useful
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indicates that the list of values for Customer City is cascaded or must first be further filtered by country. You can expand or collapse the list of cities for each country by clicking the + or .
// One interface can inherit another. using System; public interface IA { void Meth1(); void Meth2(); }
A class that contains one or more abstract methods must also be declared as abstract by preceding its class declaration with the abstract specifier. Since an abstract class does not define a complete implementation, there can be no objects of an abstract class. Thus, attempting to create an object of an abstract class by using new will result in a compile-time error. When a derived class inherits an abstract class, it must implement all of the abstract methods in the base class. If it doesn t, then the derived class must also be specified as abstract. Thus, the abstract attribute is inherited until such time as a complete implementation is achieved. Using an abstract class, you can improve the TwoDShape class. Since there is no meaningful concept of area for an undefined two-dimensional figure, the following version of the preceding program declares Area( ) as abstract inside TwoDShape and TwoDShape as abstract. This, of course, means that all classes derived from TwoDShape must override Area( ).
Business continuity planning (BCP) and disaster recovery planning (DRP) are activities undertaken to reduce risks related to the onset of disasters and other disruptive events. BCP and DRP activities identify risks and mitigate those risks through changes or enhancements in technology or business processes, so that the impact of disasters is reduced and the time to recovery is lessened. The primary objective of BCP and DRP is to improve the chances that the organization will survive a disaster without incurring costly or even fatal damage to its most critical activities. The activities of business continuity and disaster recovery plan development scale for any size organization. BCP and DRP have the unfortunate reputation of existing only in the stratospheric, thin air of the largest and wealthiest organizations. This misunderstanding hurts the majority of organizations that are too timid to begin any kind of BCP and DRP efforts at all because they feel that these activities are too costly and disruptive. The fact is, any size organization, from a one-person home office to a multinational conglomerate, can successfully undertake BCP and DRP projects that will bring about immediate benefits as well as take some of the sting out of disruptive events that do occur. Organizations can benefit from BCP and DRP projects, even if a disaster never occurs. The steps in the BCP and DRP development process usually bring immediate benefit in the form of process and technology improvements that increase the resilience, integrity, and efficiency of those processes and systems.
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Is (t) = 50 cos 200t
2. In the next page, shown in Figure 12-6, choose Object Types, Fills, Outlines, or any
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