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NEW QUESTION: 1
When routing a conference, Cisco TMS allocates a random number in the assigned ranges to the conference so that back to back meetings are not allocated with the same number or alias unless no other number is available.
The random number prevents participants from dialing into the previous conference. Which two ways are valid Cisco TMS accomplish this process? (Choose two)
A. Cisco TMS checks for 4-hour window around the conference depending on the Extend Conference Mode settings.
B. Cisco TMS tries to find an unused number or alias on a bridge 6 hours before the start time and 6 hours after the end time for a new and an edited conference.
C. If no unused numbers or aliases are available during that time frame, Cisco TMS tries a 2hour window then 1 hour, 45 minutes, 30 minutes, 15 minutes and finally settles on alias that is unique for the exact duration of the conference.
D. Cisco TMS tries to find an unused number or alias on a bridge within a 4 hour window around the conference for a new and an edited conference.
E. If no unused numbers or aliases are available during that time frame. Cisco TMS tries a 3 hour window, then 2 hour, 1 hour, 15 minutes and finally settles on a number or alias that is unique for the exact duration of the conference.
Answer: C,D
Explanation:
Explanation
https://www.cisco.com/c/dam/en/us/td/docs/telepresence/infrastructure/tms/admin_guide/Cisco-TMS-Admin-Gu Number Allocation When routing a conference, Cisco TMS allocates a random number in the assigned ranges to the conference in the following manner: 1. Cisco TMS tries to find an unused number or alias on a bridge within a 4 hour window around the conference (4 hours before the start time and 4 hours after the end time) for both new and an edited conference. 2. Cisco TMS checks for 4 hour window around the conference irrespective of the Extend Conference Mode settings. 3. If there are no unused numbers or aliases during that time frame, Cisco TMS tries a 2 hour window, then 1 hour, 45 minutes, 30 minutes, 15 minutes, and finally settles on a number or alias that is unique for the exact duration of the conference. This is so that back-to-back meetings are not allocated with the same number or alias unless no other number is available, so participants are not at risk of dialing into the previous conference. For recurrent bookings, Cisco TMS uses the same number or alias for all occurrences. When a single instance of a recurrent meeting is edited, this single exception occurrence can get a different dial-in number. This also applies to bridges behind TelePresence Conductor if variable alias patterns are used.

NEW QUESTION: 2
Which scheduling class distributes CPU resources among its processes based on assigned importance?
A. Timesharing (TS)
B. Fair Share Scheduler (FSS)
C. Fixed-priority (FX)
D. Real-Time (RT)
Answer: C
Explanation:
The FX scheduler provides a scheduling policy for processes that require user or application control of scheduling priorities. The priorities of processes that run under FX are fixed.
The FX class provides a fixed-priority preemptive scheduling policy. This policy is used by processes that require user or application control of scheduling priorities but are not dynamically adjusted by the system. By default, the FX class has the same priority range as the TS, IA, and FSS classes. The FX class allows user or application control of scheduling priorities through user priority values assigned to processes within the class. These user priority values determine the scheduling priority of a fixed-priority process relative to other processes within its class.
Incorrect: Not A: The fair share scheduling class enables you to allocate CPU time based on shares instead of the priority scheme of the timesharing (TS) scheduling class. Not D: The goal of the time-sharing policy is to provide good response time to interactive processes and good throughput to CPU-bound processes. The scheduler switches CPU allocation often enough to provide good response time, but not so often that the system spends too much time on switching. Time slices are typically a few hundred milliseconds.
The time-sharing policy changes priorities dynamically and assigns time slices of different lengths.

NEW QUESTION: 3
A company is planning to use physical Raw Device Mappings (RDMs) in their ESX environment. Which LUN type should they use on the NetApp storage system if they want to prevent LUN I/O alignment issues?
A. They should use the LUN type matching the guest operating system.
B. They should use the VMware LUN type.
C. ESX will automatically align I/O on WAFL boundaries if NetApp host utilities is installed.
D. Any UNIX LUN type will work since it is an RDM.
Answer: A

NEW QUESTION: 4
A company operates a group of imaging satellites. The satellites stream data to one of the company's ground stations where processing creates about 5 GB of images per minute. This data is added to network-attached storage, where 2 PB of data are already stored.
The company runs a website that allows its customers to access and purchase the images over the Internet. This website is also running in the ground station. Usage analysis shows that customers are most likely to access images that have been captured in the last 24 hours.
The company would like to migrate the image storage and distribution system to AWS to reduce costs and increase the number of customers that can be served.
Which AWS architecture and migration strategy will meet these requirements?
A. Use multiple Snowball appliances to migrate the existing images to Amazon S3. Upload new data by regularly using Snowball appliances to upload data from the network-attached storage. Migrate the data distribution website to EC2 instances. By using Amazon S3 as an origin, have this website serve the data through CloudFront by creating signed URLs.
B. Create a 1-Gb Direct Connect connection from the ground station to AWS. Use the AWS Command Line Interface to copy the existing data and upload new data to Amazon S3 over the Direct Connect connection. Migrate the data distribution website to EC2 instances. By using Amazon S3 as an origin, have this website serve the data through CloudFront by creating signed URLs.
C. Use multiple Snowball appliances to migrate the existing images to an Amazon EFS file system.
Create a 1-Gb Direct Connect connection from the ground station to AWS, and upload new data by mounting the EFS file system over the Direct Connect connection. Migrate the data distribution website to EC2 instances. By using webservers in EC2 that mount the EFS file system as the origin, have this website serve the data through CloudFront by creating signed URLs.
D. Use multiple AWS Snowball appliances to migrate the existing imagery to Amazon S3. Create a
1-Gb AWS Direct Connect connection from the ground station to AWS, and upload new data to Amazon S3 through the Direct Connect connection. Migrate the data distribution website to Amazon EC2 instances. By using Amazon S3 as an origin, have this website serve the data through Amazon CloudFront by creating signed URLs.
Answer: D
Explanation:
B: This will take too long.
C: The users will not be able to access the data in the last 24 hours this way.
D: Although EFS would work and it has higher performance, it's almost 10x more expensive then S3 and hence does not meet the criteria of reducing cost.