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Designer can help you detect and resolve loops by using contexts. To enable this, you will first add a table PRODUCT_PROMOTION_FACTS to create a loop and then resolve the loop with a context. 1. From the pull-down menu, select Insert | Table or right-click in the structure pane and select Insert Table from the pop-up menu. 2. From the table browser, select the PRODUCT_PROMOTION_FACTS table and click Insert. 3. If your Database Options are set to extract joins with tables (check the Options dialog box reached by choosing Tools | Options, Database tab) and if your universe parameters are set to propose joins based on matching column names (in File | Parameters, Strategies tab see 7), Designer will automatically add the join between PRODUCT_PROMOTION_FACTS and related dimension tables. If these are not set, then create the joins manually by drawing a join line between CALENDAR_ YEAR_LOOKUP.WEEK_ID and PRODUCT_PROMOTION_FACTS.WEEK_ID and another between ARTICLE_LOOKUP.ARTICLE_ID and PRODUCT_PROMOTION_ FACTS.ARTICLE_ID. This last join is what creates the loop and closes the circle as shown here:
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There are no clinical or dermoscopic features to suggest this could be a melanoma. This is a classic clinical and dermoscopic example of penile melanosis (lentigines). Extensive genital melanosis can have a single or multiple dermoscopic patterns. In this case there is the globular and parallel pattern. The globular pattern is made up of aggregated round structures that have a linear and nonlinear distribution. There are only a few foci of parallel lines, which can be similar to the parallel patterns seen on the palms and soles. More extensive parallel lines can resemble the fingerprint pattern seen in lentigines on sun-exposed areas.
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Description The Trend Analysis Chart is a report that shows the history for a KPI. It has the additional (and very powerful) option to use one of the SQL Server data mining algorithms to generate a forecast for that data so that predictions can be made about future values. This template creates a reference to an existing web page. It does not create a new web page on its own.
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A 70-year-old woman was concerned about this changing lesion on her left shin. 1. Historically and clinically, more so than dermoscopically, this is suspicious for a melanoma. 2. There are no dramatic high risk dermoscopic criteria. 3. The asymmetry of color and structure and a focus of an irregular pigment network are not high risk criteria. 4. Asymmetry of color and structure, irregular pigment network, and multifocal hypopigmentation are diagnostic of this dysplastic nevus. 5. Different shades of brown color are a red flag for concern.
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Employ the guidelines below to design a pi network capable of matching two different pure resistances (Fig. 3.33). With the following design methodology, consider the pi network as two L networks attached back to back, with a virtual resistor in the center; which is used only as an aid in designing these networks, and will not be in the final design: 1. Find R , the virtual resistance, as shown in Fig. 3.34. (Note: In this example, the Q of the pi network is chosen to be 10):
The fundamental benefits of PON technology include flexibility, reliability, and simplicity. Their deployment eliminates active network components, such as amplifiers, switches, or regenerators from in-field locations, thus adding to the robustness, simplicity, and reliability of the structure. In EPON architecture, all active network components are placed at the ends of the fiber line and all in-field devices are completely passive, data rate transparent, and typically environmentally hardened, featuring mainly passive splitter combiners (PSCs). These splitters fit into standard splice enclosures and can be conveniently installed with the cable, providing little maintenance, if any. Environmentally controlled vaults (CEVs), required in DSL and other copper technology deployments are thus eliminated, thus no air conditioning systems, large pedestals, commercial powering, backup power systems as well as time-consuming technician dispatches are required. EPON networks also employ bidirectional communications over a single fiber cable, thus reducing the amount of required fiber deployment by approximately 50 percent and providing a more cost-effective fiber structure for the network operator. In case of service providers with exhausted fiber capacity, EPON systems enable the reclamation of capacity through better fiber utilization, allowing for service provision for greater numbers of subscribers. A single fiber strand can, therefore, provide connectivity to as many as 16/32 customers at a distance of up to 20 km, in accordance with the IEEE 802.3ah standard. The smaller the network diameter, the greater the number of customers, thus typical upgrades from P2P Ethernet links to EPON systems result in a fiber structure capable of supporting more than 32 customers at a time. The only shortcomings of the presented EPON system stem inherently from its advantages i.e., relaxed PHY requirements. Lower grade lasers and receiver modules as well as the application of 8B/10B channel encoding result in increased transmission overhead when compared with competitive ITU G.984 GPON systems. This fact has been recognized by the EPON proponents though it has been argued that the increased channel efficiency of GPONs comes with a much higher price tag, leading to less costeffective solution. It is therefore difficult to identify whether the said relaxed PHY specifications are indeed disadvantageous for EPONs or whether they were originally the enabling factor for the wide adoption of the said system and its robustness.
was adequate. As system requirements called for greater distances and higher data transfer rates, modal dispersion became a limiting factor. The industry responded with an improved multimode optical ber known as a graded-index ber. A plot of the magnitude of refractive index of the glass versus the ber diameter is shown in Figure 4-5 for both step-index and graded-index multimode bers. Notice in the gure that the refractive index of the glass for the gradedindex optical ber decreases gradually from the core center to the outside cladding. Fiber manufactured in this manner allows the rays of light entering the ber to propagate through the ber, as shown in Figure 4-6. Light rays travel faster in the cladding area where the refractive index
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ifferent types of graphs may be drawn to illustrate the data measured during an experiment. The most common type of graph used in science is the line graph. A line graph shows the relationship between two sets of values. These value pairs are often collected in a lab activity and organized in a data table. The results of an experiment are often shown on a graph that displays the data that has been collected. Graphs can make known facts easier to understand and analyze. With a line graph, it is possible to estimate values for points that fall between those actually measured. This process is called interpolation. Graphs can also be used to estimate data points beyond the measured points through a process called extrapolation.
RTP carries the actual digitally encoded voice by taking one or more digitally encoded voice samples and attaching an RTP header so that we have
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