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NEW QUESTION: 1
DRAG DROP
You need to create a query that identifies the trending topics.
How should you complete the query? To answer, drag the appropriate values to the correct targets. Each value may be used once, more than once, or not at all. You may need to drag the split bar between panes or scroll to view content.
NOTE: Each correct selection is worth one point.

Answer:
Explanation:

Explanation:

From scenario: Topics are considered to be trending if they generate many mentions in a specific country during a 15-minute time frame.
Box 1: TimeStamp
Azure Stream Analytics (ASA) is a cloud service that enables real-time processing over streams of data flowing in from devices, sensors, websites and other live systems. The stream-processing logic in ASA is expressed in a SQL-like query language with some added extensions such as windowing for performing temporal calculations.
ASA is a temporal system, so every event that flows through it has a timestamp. A timestamp is assigned automatically based on the event's arrival time to the input source but you can also access a timestamp in your event payload explicitly using TIMESTAMP BY:
SELECT * FROM SensorReadings TIMESTAMP BY time
Box 2: GROUP BY
Example: Generate an output event if the temperature is above 75 for a total of 5 seconds SELECT sensorId, MIN(temp) as temp FROM SensorReadings TIMESTAMP BY time GROUP BY sensorId, SlidingWindow(second, 5) HAVING MIN(temp) > 75 Box 3: SlidingWindow Windowing is a core requirement for stream processing applications to perform set-based operations like counts or aggregations over events that arrive within a specified period of time. ASA supports three types of windows: Tumbling, Hopping, and Sliding.
With a Sliding Window, the system is asked to logically consider all possible windows of a given length and output events for cases when the content of the window actually changes - that is, when an event entered or existed the window.
============================================
Topic 1, RelecloudGeneral Overview
Relecloud is a social media company that processes hundreds of millions of social media posts per day and sells advertisements to several hundred companies.
Relecloud has a Microsoft SQL Server database named DB1 that stores information about the advertisers. DB1 is hosted on a Microsoft Azure virtual machine.
Physical locations
Relecloud has two main offices. The offices we located in San Francisco and New York City.
The offices connected to each other by using a site-to-site VPN. Each office connects directly to the Internet.
Business model
Relecloud modifies the pricing of its advertisements based on trending topics. Topics are considered to be trending if they generate many mentions in a specific country during a 15- minute time frame. The highest trending topics generate the highest advertising revenue.
CTO statement
Relecloud wants to deliver reports lo the advertisers by using Microsoft Power BI. The reports will provide real-time data on trending topics, current advertising rates, and advertising costs for a given month.
Relecloud will analyze the trending topics data, and then store the data in a new data warehouse for ad-hoc analysis. The data warehouse is expected to grow at a rate of 1 GB per hour or 8.7 terabytes (TB) per year. The data will be retained for five years for the purpose of long term trending.
Requirements
Business goals
Management at Relecloud must be able to view which topics are trending to adjust advertising rates in near real-time.
Planned changes
Relecloud plans to implement a new streaming analytics platform that will report on trending topics. Relecloud plans to implement a data warehouse named DB2.
General technical requirements
Relecloud identifies the following technical requirements:
*
Social media data must be analyzed to identify trending topics in real time.
*
The use of Infrastructure as a Service (IaaS) platforms must minimized, whenever possible.
*
The real-time solution used to analyze the social media data must support selling up and down without service interruption.
Technical requirements for advertisers
Relecloud identifies the following technical requirements for the advertisers
*
The advertisers must be able to see only their own data in the Power BI reports.
*
The advertisers must authenticate to Power BI by using Azure Active Directory (Azure AD) credentials.
*
The advertisers must be able to leverage existing Transact-SQL language knowledge when developing the real-time streaming solution.
*
Members of the internal advertising sales team at Relecloud must be able to see only the sales data of the advertisers to which they are assigned.
*
The Internal Relecloud advertising sales team must be prevented from inserting, updating, and deleting rows for the advertisers to which they are not assigned.
*
The internal Relecloud advertising sales team must be able to use a text file to update the list of advertisers, and then to upload the file to Azure Blob storage.
DB1 requirements
Relecloud identifies the following requirements for DB1:
*
Data generated by the streaming analytics platform must be stored in DB1.
*
The user names of the advertisers must be mapped to CustomerID in a table named Table2.
*
The advertisers in DB1 must be stored in a table named Table1 and must be refreshed nightly.
*
The user names of the employees at Relecloud must be mapped to EmployeeID in a table named Table3.
DB2 requirements
Relecloud identifies the following requirements for DB2:
*
DB2 must have minimal storage costs.
*
DB2 must run load processes in parallel.
*
DB2 must support massive parallel processing.
*
DB2 must be able to store more than 40 TB of data.
*
DB2 must support scaling up and down, as required.
*
Data from DB1 must be archived in DB2 for long-term storage.
*
All of the reports that are executed from DB2 must use aggregation.
*
Users must be able to pause DB2 when the data warehouse is not in use.
*
Users must be able to view previous versions of the data in DB2 by using aggregates.
ETL requirements
Relecloud identifies the following requirements for extract, transformation, and load (ETL):
*
Data movement between DB1 and DB2 must occur each hour.
*
An email alert must be generated when a failure of any type occurs during ETL processing.
rls_table1
You execute the following code for a table named rls_table1.

dbo.table1
You use the following code to create Table1.

Streaming data
The following is a sample of the Streaming data.
User Country Topic Time
user1USATopic12017-01-01T00:00:01.0000000Z
user1USA Topic32017-01-01T00:02:01.0000000Z
user2 CanadaTopic22017-01-01T00:01:11.0000000Z
user3IndiaTopic12017-01-01T00:03:14.0000000Z

NEW QUESTION: 2
CRCエラーをチェックする切り替え方法は?
A. フラグメントフリー
B. カットスルー
C. レイヤー3
D. ストアアンドフォワード
Answer: D
Explanation:
カットスルースイッチングでは、スイッチはフレームの宛先MACアドレス(フレームの最初の6バイト)のみをメモリにコピーします。これらの最初の6バイトを処理した後、スイッチには転送の決定を行い、フレームを適切なスイッチポートに移動するのに十分な情報がありました。この切り替え方法は、ストアアンドフォワード切り替え方法よりも高速です。
ストアアンドフォワードスイッチングでは、スイッチはイーサネットフレーム全体をスイッチメモリにコピーし、エラーの巡回冗長検査(CRC)を計算します。 CRCエラーが見つかった場合、イーサネットフレームはドロップされます。 CRCエラーが見つからない場合、そのフレームは転送されます。

NEW QUESTION: 3
You are a network engineer for a company, study the exhibit carefully. The company's network is running EIGRP and you want to change the path R5 uses to reach 172.30.1.0/24 to R4. How could you achieve this goal?

A. Change the bandwidth on the link between R4 and R5 to 110.
B. Do nothing, the best path to 172.30.1.0/24 from R5 is already through R4.
C. Change the bandwidth on the link between R2 and R5 to 70, and change the bandwidth on the link between R3 and R5 to 70.
D. Change the bandwidth on the link between R3 and R5 to 70.
Answer: C
Explanation:
Here is an example from Cisco on how and why to change the EIGRP bandwidth along
with the verification steps
Change the Bandwidth at R2
Using the bandwidth to influence EIGRP paths is discouraged for two reasons:
Changing the bandwidth can have impact beyond affecting the EIGRP metrics. For
example, quality of service
(QoS) also looks at the bandwidth on an interface.
EIGRP throttles to use 50 percent of the configured bandwidth. Lowering the bandwidth
can cause problems like staving EIGRP neighbors from getting hello packets because of
the throttling back.
Changing the delay does not impact other protocols nor does it cause EIGRP to throttle
back.
Check the EIGRP topology table for R1 before you make any changes.
R1# show ip eigrp topology 10.1.3.0 255.255.255.0 IP-EIGRP (AS 1): topology entry for 10.1.3.0/24 State is Passive, Query origin flag is 1, 1 Successor(s), FD is 2221056 Routing Descriptor Blocks:
10.1.1.2 (Serial0.201), from 10.1.1.2, Send flag is 0x0 Composite metric is (2221056/307200), Route is Internal Vector metric: Minimum bandwidth is 1544 Kbit Total delay is 22000 microseconds Reliability is 255/255 Load is 1/255 Minimum MTU is 1500 Hop count is 2 Check the starting values for the ethernet0 interface on R2. R2# show interface ethernet0 Ethernet0 is up, line protocol is up Hardware is Lance, address is 0010.7b3c.6786 (bia 0010.7b3c.6786) Internet address is 10.1.2.2/24 MTU 1500 bytes, BW 10000 Kbit, DLY 1000 usec, rely 255/255, load 1/255 Encapsulation ARPA, loopback not set, keepalive set (10 sec) ARP type: ARPA, ARP Timeout 04:00:00 Last input 00:00:01, output 00:00:02, output hang never Last clearing of "show interface" counters never Input queue: 0/75/0/0 (size/max/drops/flushes); Total output drops: 0 Queueing strategy: fifo Output queue: 0/40 (size/max) 5 minute input rate 0 bits/sec, 0 packets/sec 5 minute output rate 0 bits/sec, 0 packets/sec 1938 packets input, 165094 bytes, 0 no buffer Received 1919 broadcasts, 0 runts, 0 giants, 0 throttles 0 input errors, 0 CRC, 0 frame, 0 overrun, 0 ignored, 0 abort 0 input packets with dribble condition detected 1482 packets output, 124222 bytes, 0 underruns 0 output errors, 0 collisions, 18 interface resets 0 babbles, 0 late collision, 0 deferred 0 lost carrier, 0 no carrier 0 output buffer failures, 0 output buffers swapped out Decrease the bandwidth to see the impact on R1. R2# configure terminal Enter configuration commands, one per line. End with CNTL/Z.
R2(config)# interface ethernet0 R2(config-if)# bandwidth 5000 R2(config-if)# end R2# Confirm the change. R2# show interface ethernet0 Ethernet0 is up, line protocol is up Hardware is Lance, address is 0010.7b3c.6786 (bia 0010.7b3c.6786) Internet address is 10.1.2.2/24 MTU 1500 bytes, BW 5000 Kbit, DLY 1000 usec, rely 255/255, load 1/255 Encapsulation ARPA, loopback not set, keepalive set (10 sec) ARP type: ARPA, ARP Timeout 04:00:00 Last input 00:00:02, output 00:00:01, output hang never Last clearing of "show interface" counters never Input queue: 0/75/0/0 (size/max/drops/flushes); Total output drops: 0 Queueing strategy: fifo Output queue: 0/40 (size/max) 5 minute input rate 0 bits/sec, 0 packets/sec 5 minute output rate 0 bits/sec, 0 packets/sec 1995 packets input, 169919 bytes, 0 no buffer Received 1969 broadcasts, 0 runts, 0 giants, 0 throttles 0 input errors, 0 CRC, 0 frame, 0 overrun, 0 ignored, 0 abort 0 input packets with dribble condition detected 1525 packets output, 127831 bytes, 0 underruns 0 output errors, 0 collisions, 18 interface resets 0 babbles, 0 late collision, 0 deferred 0 lost carrier, 0 no carrier 0 output buffer failures, 0 output buffers swapped out Confirm that it also changed in the EIGRP topology table. R2# show ip eigrp topology 10.1.3.0 255.255.255.0 IP-EIGRP (AS 1): topology entry for 10.1.3.0/24 State is Passive, Query origin flag is 1, 2 Successor(s), FD is 563200 Routing Descriptor Blocks:
10.1.2.4 (Ethernet0), from 10.1.2.4, Send flag is 0x0 Composite metric is (563200/281600), Route is Internal Vector metric: Minimum bandwidth is 5000 Kbit Total delay is 2000 microseconds Reliability is 255/255 Load is 1/255 Minimum MTU is 1500 Hop count is 1
10.1.2.3 (Ethernet0), from 10.1.2.3, Send flag is 0x0 Composite metric is (563200/281600), Route is Internal Vector metric: Minimum bandwidth is 5000 Kbit Total delay is 2000 microseconds Reliability is 255/255 Load is 1/255 Minimum MTU is 1500 Hop count is 1 Check the impact on the EIGRP topology table for R1. R1# show ip eigrp topology 10.1.3.0 255.255.255.0 IP-EIGRP (AS 1): topology entry for 10.1.3.0/24 State is Passive, Query origin flag is 1, 1 Successor(s), FD is 2221056 Routing Descriptor Blocks:
10.1.1.2 (Serial0.201), from 10.1.1.2, Send flag is 0x0 Composite metric is (2221056/563200), Route is Internal Vector metric: Minimum bandwidth is 1544 Kbit Total delay is 22000 microseconds Reliability is 255/255 Load is 1/255 Minimum MTU is 1500 Hop count is 2
There is no change, as the Frame Relay connection between R1 and R2 is still the lowest speed link. You see a change only if you decrease that bandwidth on the ethernet0 interface for R2 to a value less than 1544.
Decrease the bandwidth on the ethernet0 interface for R2 to 1000. R2# configure terminal Enter configuration commands, one per line. End with CNTL/Z. R2(config)# interface ethernet 0 R2(config-if)# bandwidth 1000 R2(config-if)# end R2# Check the impact on the EIGRP topology table for R1. R1# show ip eigrp topology 10.1.3.0 255.255.255.0 IP-EIGRP (AS 1): Topology entry for 10.1.3.0/24
State is Passive, Query origin flag is 1, 1 Successor(s), FD is 312320 Routing Descriptor Blocks:
10.1.1.2 (Serial0.201), from 10.1.1.2, Send flag is 0x0 Composite metric is (3123200/2611200), Route is Internal Vector metric: Minimum bandwidth is 1000 Kbit Total delay is 22000 microseconds Reliability is 255/255 Load is 1/255 Minimum MTU is 1500 Hop count is 2
Reference http://www.cisco.com/en/US/tech/tk365/technologies_tech_note09186a00800c2d96.shtml# changebandwidthR2

NEW QUESTION: 4
Which SAP GUI transaction is used to activate ICF services?
Please choose the correct answer. Response:
A. Maintain Services (SICF)
B. Role Maintenance (PFCG)
C. Plan Service Connection (STFO)
D. Object Navigator (SE80)
Answer: A


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