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itself just does not do the job), one cable manufacturer used polystyrene disks placed a few inches apart, sealing in cells of air as well as supporting the center conductor in a concentric condition. Such cable did provide superior loss-versus-frequency characteristics, but it was dif cult to manufacture because fusing the disks in place was a critical process. Some of this cable is most likely still in service and an improved version is available today. Coaxial cable used today uses the polyfoam technique, where the plastic foam forms bubbles of air that control the dielectric constant. This cable has proven to be very rugged and maintains its characteristics over most climatic conditions. 1.223 The attenuation of cable as a function of frequency is a wellknown characteristic to the cable television industry. Essentially, the loss, or attenuation, versus frequency is a logarithmic function, as shown in Figure 1-4. Most manufacturers publish a chart of attenuation versus frequency so system designers can calculate the cable span loss between ampli ers. The usual design technique is to calculate the span loss at the highest operating frequency that exhibits the greatest attenuation. This assures that each ampli er has the proper input and output signal levels at the upper frequency limit. The lower-frequency end will have to use some equalization so the ampli ers are not overdriven. As far as cable performance, there have not been any large breakthroughs in cable loss characteristics, but several manufacturers have improved their manufacturing techniques, which have produced cable that is more rugged, has a lower return loss characteristic, and demonstrates improved environmental performance. Essentially, the loop resistance of coaxial cable depends on the conductivity of the center and outer conductors. Since the solid aluminum sheath cable has high conductivity for the shield, most of the loop resistance is attributed to the center conductor. Making the center conductor out of aluminum and cladding it with copper produces a lower resistance at the RF operating frequencies due to the well-known skin effect. However, the resistance at 60 Hz is appreciable enough to limit cable powering of the repeater ampli ers. By using a solid-copper center conductor, the loop resistance of the cable span is decreased, resulting in possibly fewer 60-Hz power supplies. This fact has to be taken into account when working out the cost per mile gures. Also, the larger the cable size, the larger diameter center conductor, which results in lower loop resistance values. Again, lower loop resistance caused by either choice, solid-copper center conductor or larger Examining the Palettes, Cruising the Menus
Many organizations today have a disaster recovery (DR) plan in place although very few have thought it out thoroughly, and even fewer have it documented or tested on a consistent basis. Most DR plans for smaller organizations consist of a tape backup. These organizations maintain the assumption that anything further will cost more than the statistical chance of downtime. The challenge is that although a tape backup does provide potential data recovery, it does not provide business continuity (BC). A business continuity plan is an all-encompassing, documented plan of how an organization will return to productive activity within a predefined period of time. This not only includes IT services, but also telecommunications, manufacturing, office equipment, and so on. It is important to understand that recovering from a disaster is a subset of business continuity. Although DR is the most important part of business continuity, just having the ability to recover mission-critical data (or never losing it in the first place) is not sufficient to return most organizations to even a minimum level of productivity. Additional concepts such as end-user access and offsite storage locations are critical for a full return to productivity. In the same light, though, without recovery of the data, access is a moot point. Most organizations today could not re-create such electronic information as accounting and e-mail data in the event that computer records are lost or corrupted, or recovery from tape backup fails (a significant statistical probability). Business continuity planning should be broken into two phases: Minor disasters that do not involve a major facility problem (database corruption, temporary power loss, server failures, virus outbreaks, and so on) Major disasters that may require relocation (natural or geopolitical disasters, for example) Understand Digital Photography
only Port F (the root port) is in a forwarding state: Port E will remain in a blocking state. In this example, two ports are left in a blocking state: Switch-2 s E port and Switch-4 s G port. STP guarantees only a layer 2 loop-free topology it does not guarantee an optimal topology! For example, in the network shown in Figure 14-10, networking devices on LAN Segment-A would have to go through Switches 3, 1, and 5 in order to reach LAN Segment-D, since Switch-4 s G port is in a blocked state. // Call methods through the delegate. Call a method through a delegate. str = strOp("This is a test."); Console.WriteLine("Resulting string: " + str); Console.WriteLine(); strOp = RemoveSpaces; str = strOp("This is a test."); Console.WriteLine("Resulting string: " + str); Console.WriteLine(); strOp = Reverse; str = strOp("This is a test."); Console.WriteLine("Resulting string: " + str); } } Capturing synchronous data. This type of signal measurement involves purely passive testing from the analyzer, which must be able to examine the signal correctly with reference to the framing bytes, and report/display the results. The analyzers generally perform static examination of the signal in two ways: 26:
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