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NEW QUESTION: 1
All of the following are the causes of change in investor's circumstances, EXCEPT:
A. Authority circumstance changes
B. Liquidity requirement changes
C. Investment horizon changes
D. tax circumstances changes
Answer: A
NEW QUESTION: 2
このインターフェイス構成に基づいて、OSPF隣接の予想される状態はどうですか?
A. not established
B. FULL/BDR on R1 and FULL/BDR on R2
C. Full on both routers
D. 2WAY/DROTHER on both routers
Answer: A
Explanation:
Explanation
On Ethernet interfaces the OSPF hello intervl is 10 second by default so in this case there would be a Hello interval mismatch -> the OSPF adjacency would not be established.
NEW QUESTION: 3
View the Exhibit.
Which of the following designs is represented by the diagram shown above?
A. Layer 3 access design
B. loop-free inverted U access design
C. looped triangle access design
D. loop-free U access design
E. looped square access design
Answer: E
Explanation:
Explanation/Reference:
Section: Enterprise Network Design Explanation
Explanation:
The topology diagram in this scenario represents the looped square access design. The looped square access design and the looped triangle access design are Layer 2, looped access designs. Both of these designs use Layer 2 trunk links between aggregation layer switches and rely on Spanning Tree Protocol (STP) to resolve physical loops in the network. In the looped square access design, each access layer switch has a single uplink to the aggregation layer. Additionally, access layer switches also share a Layer
2 link between them that remains in a blocking state until an uplink to the aggregation layer fails. In the event of an uplink failure, the shared link provides a redundant path for access layer traffic to the aggregation layer. The Layer 2 topology of a looped square access design resembles a square, as shown by the black, dotted lines in the diagram below:
By contrast, the access layer switches in the looped triangle access design do not share a Layer 2 trunk link. Additionally, each access layer switch in this design has two uplinks to the aggregation layer. These uplinks form a Layer 2 looped triangle, as shown by the black, dotted lines in the diagram below:
Because the uplinks in a looped triangle access design form a Layer 2 loop, one of the uplinks must remain in a blocking state until the active uplink fails. The blocking uplink provides a redundant path for access layer traffic in the event of a failure of the active uplink. The looped triangle access design is the most commonly implemented design in data centers today.
The topology diagram in this scenario does not represent the loop-free U access design. A loop-free design is a design that contains no Layer 2 loops between the access layer and the aggregation layer.
Because there are no Layer 2 loops in a loop-free design, STP blocking is not in effect for any of the uplinks between access layer and aggregation layer switches. In the loop-free U access design, the Layer
2 topology resembles the letter U, as indicated by the dotted, black lines in the diagram below:
Each access layer switch in this design provides a single Layer 2 uplink to the aggregation layer and shares a Layer 2 link to an adjacent access layer switch. The shared link is typically an 802.1Q trunk link and enables each access layer switch to share virtual LAN (VLAN) information. Additionally, the trunk link provides a redundant path for access layer traffic if an uplink to the aggregation layer fails. The link between the aggregation layer switches in this design is a Layer 3 link. Because this link is not a Layer 2 link, services that rely on Layer 2 adjacency for state awareness, such as Hot Standby Router Protocol (HSRP), are not supported.
The topology diagram in this scenario does not represent the loop-free inverted U access design. Like the loop-free U access design, the loop-free inverted U access design contains no Layer 2 loops between the access layer and the aggregation layer. However, unlike the loop-free U access design, the loop-free inverted U access design does not contain Layer 2 trunk links between access layer switches. Instead, the aggregation layer switches are interconnected by Layer 2 trunk links. These Layer 2 trunk links enable access layer VLANs to span the aggregation layer and also to serve as redundant paths for access layer traffic in the event of an access layer uplink failure. However, because the access layer switches are not interconnected by Layer 2 trunk links, single-attached devices at the access layer can be cut off from the network if their access layer switch suffers an uplink failure. The Layer 2 topology of a loop-free inverted U access design resembles an inverted U, as indicated by the dotted, black lines in the diagram below:
The topology diagram in this scenario does not represent the Layer 3 access design. In the Layer 3 access design, the uplinks between the access layer and aggregation layer switches are Layer 3 connections.
Because the Layer 2 topology in this design is effectively reduced to the trunk link between the access layer switches, Layer 2 loops are eliminated and all uplinks are in a forwarding state. STP is no longer necessary in this design; however, Cisco recommends configuring STP on ports that connect to access layer devices to prevent user side loops from entering the network. The Layer 3 uplinks in this design enable the access layer switches to use routing information to implement load balancing across all available uplinks. It is important to consider the performance limitations and capabilities of the access layer and aggregation layer switches when implementing a routing solution in the Layer 3 access design. If performance is an issue, static routes and stub routing can reduce processing load for the access layer and aggregation layer switches while route summarization can reduce processing load for core switches.
The Layer 3 access design is represented by the diagram below:
Reference:
CCDA 200-310 Official Cert Guide, Chapter 3, Access Layer Best Practices, pp. 94-97 Cisco: Data Center Multi-Tier Model Design: Data Center Access Layer
NEW QUESTION: 4
Refer to the exhibit.
A customer has an existing CX4-480 that is more than three years old. You have been asked to review the array health and design a new VNX to replace the old array.
You notice that write cache is full at times on Storage Processor A.
What is the likely cause of the problem that will need to be addressed in the new design?
A. Flash drives for FAST Cache are causing overload of Bus 0 and Bus 1
B. Drive workload peaks are overloading two private RAID Groups
C. Write Cache is frequently full for both Storage Processors
D. User has configured too many pools resulting in uneven extent distribution
Answer: B
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