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NEW QUESTION: 1
In AsyncOS 7.0 for web the choice of Authentication Surrogate is?
A. Defined separately for each Access Policy
B. Defined separately for each Identity
C. A global setting
D. Defined separately for each malware engine
Answer: B
NEW QUESTION: 2
A Cisco Unified Comunicator Manager Administrator is working on devices that are roaming within the company using device mobility. Which two configuration settings have priority over the device setting when using the roaming device pool? (choose two)
A. Calling Party Transformation CSS
B. Physical Location
C. Device Mobility Calling Search Space
D. Region
E. Media Resource Group List
F. Adjunct CSS
Answer: D,E
NEW QUESTION: 3
A. Option C
B. Option A
C. Option B
D. Option D
Answer: D
Explanation:
Explanation
Transactions running at the READ UNCOMMITTED level do not issue shared locks to prevent other transactions from modifying data read by the current transaction. This is the least restrictive of the isolation levels.
References: https://technet.microsoft.com/en-us/library/ms173763(v=sql.105).aspx
NEW QUESTION: 4
An analysis of the 258 kbps wan link for a network shows that the link is not usually congested.
However, delay-sensitive applications are often hampered when large packets block access.
What is this problem called and what are two possible solutions? (Choose three)
A. Use different subinterfaces for each application type.
B. Compressed real-time protocol.
C. Link layer fragmentation and interleaving.
D. Serialization delay.
E. Use different VLANs for each application type.
F. Packetization delay.
Answer: B,C,D
Explanation:
The problem described in this question is the serialization delay with large packets being transmitted over slow, congested links. This is especially As shown in Table 1, the amount of serialization delay (the time it takes to actually place the bits onto an interface) introduced on low-speed WAN links can be significant, considering that the target end-to-end one-way delay should not exceed 150ms. (ITU-T G.114 recommendation specifies 150 ms maximum one-way end-to-end.) Table 1. Serialization Delay for Various Frame Sizes on Low-Speed Links Serialization Delay = frame size (bits)/link bandwidth (bps)
1 Byte 64 Bytes 128 256 512 1024 1500
Bytes Bytes Bytes Bytes Bytes
143 us 9 ms 18 ms 36 ms 72 ms 144 ms 214 ms
56 kbps
125 us 8 ms 16 ms 32 ms 64 ms 126 ms 187 ms
64 kbps
62.5 us 4 ms 8 ms 16 ms 32 ms 64 ms 93 ms
128
kbps
31 us 2 ms 4 ms 8 ms 16 ms 32 ms 46 ms
256
kbps
15.5 us 1 ms 2 ms 4 ms 8 ms 16 ms 32 ms
512
kbps
10 us 640 us 1.28 ms 2.56 ms 5.12 ms 10.24 ms 15 ms
768
kbps
5 us 320 us 640 us 1.28 ms 2.56 ms 5.12 ms 7.5 ms
1536
kbps
Note:For voice applications, recommended serialization delay (per hop basis) is 10 ms and should not exceed 20 ms.
As a solution to the serialization delay problem, Link Fragmentation and Interleaving as well as the Compressed Real Time Protocol, described below:
Link Fragmentation and Interleaving (LFI): Multilink PPP
While 1500 bytes is a common size for data packets, a typical VoIP packet (carrying
G.729 voice frames) can be around 66 bytes (20 bytes voice payload, 6 bytes layer-2 header, 20 bytes RTP & UDP header, and 20 Bytes IP header).
Now, imagine a 56Kbps leased line link where voice and data traffic coexist. If a voice packet is ready to be serialized just when a data packet starts being transmitted over the link, then there is a problem. The delay-sensitive voice packet has to wait 214 msec before being transmitted (it takes 214 msec to serialize a 1500 bytes packet over a
56Kbps link).
As you can see, large data packets can adversely delay delivery of small voice packets, reducing speech quality. Fragmenting these large data packets into smaller ones and interleaving voice packets among the fragments reduces jitter and delay. The Cisco IOS Link Fragmentation and Interleaving (LFI) feature helps satisfy the real-time delivery requirements of VoIP. This image illustrates the operation of LFI:
Compressed Real-time Protocol (cRTP)
Note:cRTP is not required to ensure good voice quality. It is a feature that reduces bandwidth consumption. Configure cRTP after all other conditions are met and the voice quality is good.
This procedure can save troubleshooting time by isolating potential cRTP issues.
Based on RFC 2508, the RTP header compression feature compresses the IP/UDP/RTP header from 40 Bytes to 2 or 4 bytes, reducing unnecessary bandwidth consumption. It is a hop-by-hop compression scheme; therefore, cRTP must be configured on both ends of the link (unless the passive option is configured).
Reference: http://www.cisco.com/warp/public/788/voice-qos/voip-mlppp.html