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proper operating expertise. Fusion splicers, as they are known, are made to splice a single ber at a time. The new at or ribbon ber cable can be spliced several at a time. Again, the procedure requires the bers to be cut the prescribed length, have any plastic covering removed right down to the glass, and be cleaved using a diamond-wheeled cleaver. The ends are placed on the work stage of the splicer and are clamped in place by spring-loaded clamps. The bers are essentially laid in V -type grooves on the work stage. An optical microscope allows the operator to move the ends to an end-to-end connection. An electric arc is turned on to raise the junction temperature to the melting point and then the arc is turned off. The junction of the two bers becomes fused. Present-day splicers place a sharp beam of light into one end of the splice joint while a photodetector at the other side detects light passing through the splice. This test allows the operator to measure the light loss through the splice. If the splice loss measured is too much, the operator can then redo the splice. Fiber-optic splices for single-mode bers are placed in protective tubing that contains a metal strength member. This protective tubing is the heat-shrink variety, and many fusion-splices have a heated drawer so this tubing can be shrunk down immediately after being spliced and tested. Spliced bers in their respective tubing are clamped in splice trays containing extra, loose ber placed in a gure-eight channel. Testing of the splice loss is completed right after the fusion has cooled. A stress test during which a slight tension is placed on the splice is performed so the operator knows that fusion actually took place and the bers weren t just placed together. Following this test, the protective sleeve is slid over the fused junction and is heat-shrunk down. The optical viewing method has been improved, so most splicing equipment has a miniature television camera attached to the microscope and the image projected on an LCD screen. Some splicing gear even has a video output that allows the operator the capability to connect a largescreen monitor to the equipment. The monitor can be used in training other prospective splicers in the proper techniques. A rudimentary sketch of a fusion splicer is shown in Figure 4-13. Also, Figure 4-14 shows some examples of typical splicing termination equipment. The trays containing the splices have input and output ports for the ber-optic cable to enter and exit the splice enclosure. The enclosures are usually the PVC plasticsealed aerial kind or the plastic-sealed cabinet type for surface-mounted pedestals.
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Jitter summary. Jitter is the relative phase difference of the received pulse to a reference pulse, and can accumulate throughout the network. This can cause bit, BPV, or frame errors. Properly designed, quality network equipment can help to minimize network jitter.
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The output is shown here:
generate comfort noise that simulates the background noise at the transmission end. The G.729B SID frame is a mere 15 bits long, significantly shorter than the 80-bit speech frame. Assuming that the silence continues for some time, the encoder keeps watch on the background noise. If no significant change occurs, then nothing is sent and the decoder continues to generate the same comfort noise. If, however, the encoder notices a significant change in the background noise
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Here, the keyword struct is not needed. In C++, once a structure has been declared, you can declare variables of its type using only the tag, without preceding it with the keyword struct. The reason for this difference is that in C, a structure s name does not define a complete type name. This is why C refers to this name as a tag. However, in C++, a structure s name is a complete type name and can be used by itself to define variables. Keep in mind, however, that it is still okay to use the C-style declaration in a C++ program. The preceding discussion also holds true for the use of union and enum.
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POSITIVE COMPARATIVE SUPERLATIVE
CLASS II REPEATER The second type of Fast Ethernet repeater is a class II device. The class II repeater has a lower budget for timing delay; hence it is faster than a class I register. The delay of a class II repeater is 92 bit times. Up to two class I repeaters can be used in a segment, with up to one 5-m interrepeater cable length permitted. Because a class II repeater immediately repeats an incoming signal, it can be used only to interconnect segments that use the same signaling method, such as 100BASE-TX and 100BASE-FX. SPAN DISTANCE
Here is the output. Notice that after the call to Sort( ), the inventory is sorted by name.
The IANA is responsible for the administration of unique numbers and parameters used in Internet standards. Whenever a new standard proposes to utilize parameters that have specific values and specific meanings associated with those values, then those parameters must be registered with the IANA.
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