CCNA – Subnetting - Quiz, Trivia & Questions

1.

Refer to the exhibit. Which subnet mask will place all hosts on Network B in the same subnet with the least amount of wasted addresses?

A.

255.255.255.0
B.

255.255.254.0
C.

255.255.252.0
D.

255.255.248.0

Correct Answer
B. 255.255.254.0

Explanation
310 hosts < 512 = 29 -> We need a subnet mask of 9 bits 0 -> 1111 1111.1111 1111.1111 1110.0000 0000 -> 255.255.254.0

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2.

Refer to the exhibit. All of the routers in the network are configured with the ip subnet-zero command. Which network addresses should be used for Link A and Network A? (Choose two)

A.

Network A – 172.16.3.48/26
B.

Network A – 172.16.3.128/25
C.

Network A – 172.16.3.192/26
D.

Link A – 172.16.3.0/30
E.

Link A – 172.16.3.40/30
F.

Link A – 172.16.3.112/30

Correct Answer(s)
B. Network A – 172.16.3.128/25
D. Link A – 172.16.3.0/30

Explanation
Network A needs 120 hosts < 128 = 27 -> Need a subnet mask of 7 bit 0s -> “/25″.

Because the ip subnet-zero command is used, network 172.16.3.0/30 can be used.

Answer E “Link A – 172.16.3.40/30″ is not correct because this subnet belongs to MARKETING subnet (172.16.3.32/27).
Answer F “Link A – 172.16.3.112/30″ is not correct because this subnet belongs to ADMIN subnet (172.16.3.96/27).

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3.

You have been asked to come up with a subnet mask that will allow all three web servers to be on the same network while providing the maximum number of subnets. Which network address and subnet mask meet this requirement?

A.

192.168.252.0 255.255.255.252
B.

192.168.252.8 255.255.255.248
C.

192.168.252.8 255.255.255.252
D.

192.168.252.16 255.255.255.240
E.

192.168.252.16 255.255.255.252

Correct Answer
B. 192.168.252.8 255.255.255.248

4.

Which subnet mask would be appropriate for a network address range to be subnetted for up to eight LANs, with each LAN containing 5 to 26 hosts?

A.

0.0.0.240
B.

255.255.255.252
C.

255.255.255.0
D.

255.255.255.224
E.

255.255.255.240

Correct Answer
D. 255.255.255.224

Explanation
A is not correct because it is a wildcard mask (not subnet mask).

This question is a bit unclear but we can suppose we have to begin with default subnet mask and “subnet” it. And the default subnet mask here should be class C: 255.255.255.0

For answer B: 252 = 1111 1100 -> with this subnet mask we can subnet up to 26 = 64 subnets but only 22 – 2 = 2 hosts per subnet -> B is not correct.

C is not correct because it is the default subnet mask of class C and that means we don’t “subnet” it.

For answer E: 240 = 1111 0000 -> There are 24 = 16 subnets but only 24 – 2 = 14 hosts per subnet < 26 hosts -> E does not satisfy the second requirement (of 26 hosts per subnet).

For answer D: 224 = 1110 0000 -> There are 23 = 8 subnets and 25 – 2 = 30 hosts > 26 hosts -> This is the correct answer.

Note: The number “5″ in ” with each LAN containing 5 to 26 hosts” is just used to trick you and it does not have any effect on our answer.

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5.

An administrator must assign static IP addresses to the servers in a network. For network 192.168.20.24/29, the router is assigned the first usable host address while the sales server is given the last usable host address. Which of the following should be entered into the IP properties box for the sales server?

A.

IP address: 192.168.20.14 Subnet Mask: 255.255.255.248 Default Gateway: 192.168.20.9
B.

IP address: 192.168.20.254 Subnet Mask: 255.255.255.0 Default Gateway: 192.168.20.1
C.

IP address: 192.168.20.30 Subnet Mask: 255.255.255.248 Default Gateway: 192.168.20.25
D.

IP address: 192.168.20.30 Subnet Mask: 255.255.255.240 Default Gateway: 192.168.20.17
E.

IP address: 192.168.20.30 Subnet Mask: 255.255.255.240 Default Gateway: 192.168.20.25

Correct Answer
C. IP address: 192.168.20.30 Subnet Mask: 255.255.255.248 Default Gateway: 192.168.20.25

6.

Refer to the exhibit. In this VLSM addressing scheme, what summary address would be sent from router A?

A.

172.16.0.0/16
B.

172.16.0.0/20
C.

172.16.0.0/24
D.

172.32.0.0/16
E.

172.32.0.0/17
F.

172.64.0.0/16

Correct Answer
A. 172.16.0.0/16

Explanation
Router A receives 3 subnets: 172.16.64.0/18, 172.16.32.0/24 and 172.16.128.0/18.

All these 3 subnets have the same form of 172.16.x.x so our summarized subnet must be also in that form -> Only A, B or C is correct.

The smallest subnet mask of these 3 subnets is /18 so our summarized subnet must also have its subnet mask equal or smaller than /18.

-> Only answer A has these 2 conditions -> A is correct.

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7.

You are working in a data center environment and are assigned the address range 10.188.31.0/23. You are asked to develop an IP addressing plan to allow the maximum number of subnets with as many as 30 hosts each.Which IP address range meets these requirements?

A.

10.188.31.0/27
B.

10.188.31.0/26
C.

10.188.31.0/29
D.

10.188.31.0/28
E.

10.188.31.0/25

Correct Answer
A. 10.188.31.0/27

Explanation
Each subnet has 30 hosts < 32 = 25 so we need a subnet mask which has at least 5 bit 0s -> /27. Also the question requires the maximum number of subnets (which minimum the number of hosts-per-subnet) so /27 is the best choice -> A is correct.

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8.

Which two benefits are provided by using a hierarchical addressing network addressing scheme? (Choose two)

A.

Reduces routing table entries
B.

Auto-negotiation of media rates
C.

Efficient utilization of MAC addresses
D.

Dedicated communications between devices
E.

Ease of management and troubleshooting

Correct Answer(s)
A. Reduces routing table entries
E. Ease of management and troubleshooting

9.

The network administrator is asked to configure 113 point-to-point links. Which IP addressing scheme best defines the address range and subnet mask that meet the requirement and waste the fewest subnet and host addresses?

A.

10.10.0.0/18 subnetted with mask 255.255.255.252
B.

10.10.0.0/25 subnetted with mask 255.255.255.252
C.

10.10.0.0/24 subnetted with mask 255.255.255.252
D.

10.10.0.0/23 subnetted with mask 255.255.255.252
E.

10.10.0.0/16 subnetted with mask 255.255.255.252

Correct Answer
D. 10.10.0.0/23 subnetted with mask 255.255.255.252

Explanation
We need 113 point-to-point links which equal to 113 sub-networks < 128 so we need to borrow 7 bits (because 2^7 = 128).

The network used for point-to-point connection should be /30.
So our initial network should be 30 – 7 = 23.

So 10.10.0.0/23 is the correct answer.

You can understand it more clearly when writing it in binary form:

/23 = 1111 1111.1111 1110.0000 0000
/30 = 1111 1111.1111 1111.1111 1100 (borrow 7 bits)

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10.

Given an IP address 172.16.28.252 with a subnet mask of 255.255.240.0, what is the correct network address?

A.

172.16.16.0
B.

172.16.24.0
C.

172.16.0.0
D.

172.16.28.0

Correct Answer
A. 172.16.16.0

Explanation
Increment: 16 (of the third octet)
Network address: 172.16.16.0

-> A is correct.

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