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New CCNA – Subnetting

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  • New CCNA – Subnetting

    Question 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

    Answer: B

    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


    Question 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


    Answer: B D

    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).

    Question 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


    Answer: B


    Question 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

    Answer: D


    Question 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

    Answer: C


    Question 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


    Answer: A

    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.

    Question 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

    Answer: A

    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.

    Question 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

    Answer: A E


    Question 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

    Answer: D

    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)

    Question 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

    Answer: A

    Explanation

    Increment: 16 (of the third octet)
    Network address: 172.16.16.0
    -> A is correct.


    Question 11

    Refer to the exhibit. A new subnet with 60 hosts has been added to the network. Which subnet address should this network use to provide enough usable addresses while wasting the fewest addresses?

    A. 192.168.1.56/27
    B. 192.168.1.64/26
    C. 192.168.1.64/27
    D. 192.168.1.56/26


    Answer: B

    Explanation

    60 hosts < 64 = 26 -> we need a subnet mask of at least 6 bit 0s -> “/26″. The question requires “wasting the fewest addresses” which means we have to allow only 62 hosts-per-subnet -> B is correct.

    Question 12

    Refer to the exhibit. The Lakeside Company has the internetwork in the exhibit. The Administrator would like to reduce the size of the routing table to the Central Router. Which partial routing table entry in the Central router represents a route summary that represents the LANs in Phoenix but no additional subnets?

    A. 10.0.0.0 /22 is subnetted, 1 subnet
    D 10.0.0.0 [90/20514560] via 10.2.0.2 6w0d, serial 0/1
    B. 10.0.0.0 /28 is subnetted, 1 subnet
    D 10.2.0.0 [90/20514560] via 10.2.0.2 6w0d, serial 0/1
    C. 10.0.0.0 /30 is subnetted, 1 subnet
    D 10.2.2.0 [90/20514560] via 10.2.0.2 6w0d, serial 0/1
    D. 10.0.0.0 /22 is subnetted, 1 subnet
    D 10.4.0.0 [90/20514560] via 10.2.0.2 6w0d, serial 0/1
    E. 10.0.0.0 /28 is subnetted, 1 subnet
    D 10.4.4.0 [90/20514560] via 10.2.0.2 6w0d, serial 0/1
    F. 10.0.0.0 /30 is subnetted, 1 subnet
    D 10.4.4.4 [90/20514560] via 10.2.0.2 6w0d, serial 0/1

    Answer: D

    Explanation

    All the above networks can be summarized to 10.0.0.0 network but the question requires to “represent the LANs in Phoenix but no additional subnets” so we must summarized to 10.4.0.0 network. The Phoenix router has 4 subnets so we need to “move left” 2 bits of “/24″-> /22 is the best choice -> D is correct.


    Question 13

    Refer to the exhibit. What is the most appropriate summarization for these routes?

    A. 10.0.0.0/21
    B. 10.0.0.0/22
    C. 10.0.0.0/23
    D. 10.0.0.0/24

    Answer: B

    Explanation

    We need to summarize 4 subnets so we have to move left 2 bits (22 = 4). In this question we can guess the initial subnet mask is /24 because 10.0.0.0, 10.0.1.0, 10.0.2.0, 10.0.3.0 belong to different networks. So “/24″ moves left 2 bits -> /22.


    Question 14

    A national retail chain needs to design an IP addressing scheme to support a nationwide network. The company needs a minimum of 300 sub-networks and a maximum of 50 host addresses per subnet. Working with only one Class B address, which of the following subnet masks will support an appropriate addressing scheme? (Choose two)
    A. 255.255.255.0
    B. 255.255.255.128
    C. 255.255.252.0
    D. 255.255.255.224
    E. 255.255.255.192
    F. 255.255.248.0


    Answer: B E

    Explanation

    We need to remember the default subnet mask of class B is 255.255.0.0. Next, the company requires a minimum of 300 sub-networks so we have to use at least 512 sub-networks (because 512 is the minimum power of 2 and greater than 300). Therefore we need to get 9 bits for network mask (29=512), leaving 7 bits for hosts which is 27= 128 > 50 hosts per subnet.This scheme satisfies the requirement -> B is correct.

    We can increase the sub-networks to 1024 ( 1024 = 210), leaving 6 bits for hosts that is 26= 64 > 50 hosts. This scheme satisfies the requirement, too -> E is correct.

    Notice: The question asks “The company needs a minimum of 300 sub-networks and a maximum of 50 host addresses per subnet” but this is a typo, you should understand it as “”The company needs a minimum of 300 sub-networks and a minimum of 50 host addresses per subnet”.

    Question 15

    Which address range efficiently summarizes the routing table of the addresses for router main?


    A. 172.16.0.0/18
    B. 172.16.0.0/16
    C. 172.16.0.0/20
    D. 172.16.0.0/21

    Answer: C

    Explanation

    To summarize these networks efficiently we need to find out a network that “covers” from 172.16.1.0 -> 172.16.13.0 (including 13 networks < 16). So we need to use 4 bits (24 = 16). Notice that we have to move the borrowed bits to the left (not right) because we are summarizing.
    The network 172.16.0.0 belongs to class B with a default subnet mask of /16 but in this case it has been subnetted with a subnet mask of /24 (we can guess because 172.16.1.0, 172.16.2.0, 172.16.3.0… are different networks).
    Therefore “move 4 bits to the left” of “/24″ will give us “/20″ -> C is the correct answer.


    Question 16

    Refer to the diagram. All hosts have connectivity with one another. Which statements describe the addressing scheme that is in use in the network? (Choose three)

    A. The subnet mask in use is 255.255.255.192.
    B. The subnet mask in use is 255.255.255.128.
    C. The IP address 172.16.1.25 can be assigned to hosts in VLAN1
    D. The IP address 172.16.1.205 can be assigned to hosts in VLAN1
    E. The LAN interface of the router is configured with one IP address.
    F. The LAN interface of the router is configured with multiple IP addresses.

    Answer: B C F

    Explanation

    First we should notice that different VLANs must use different sub-networks. In this case Host A (172.16.1.126) and Host B (172.16.1.129) are in different VLANs and must use different sub-networks. Therefore the subnet mask in use here should be 255.255.255.128. In particular, it is 172.16.1.0/25 with 2 sub-networks:

    + Sub-network 1: 172.16.1.0 -> 172.16.1.127 (assigned to VLAN 1)
    + Sub-network 2: 172.16.1.128 -> 172.16.1.255 (assigned to VLAN 2)
    -> B is correct.
    The IP address 172.16.1.25, which is in the same sub-network with host A so it can be assigned to VLAN 1 -> C is correct.
    To make different VLANs communicate with each other we can configure sub-interfaces (with a different IP address on each interface) on the LAN interface of the router -> F is correct.

    Question 17

    The network administrator needs to address seven LANs. RIP version 1 is the only routing protocol in use on the network and subnet 0 is not being used. What is the maximum number of usable IP addresses that can be supported on each LAN if the organization is using one class C address block?

    A. 6
    B. 8
    C. 14
    D. 16
    E. 30
    F. 32


    Answer: E

    Explanation

    “The network administrator needs to address seven LANs” means we have 7 subnets < 8 = 23, so we need to borrow 3 bits from the host part (to create 8 subnets). We are using class C address block which has 8 bits 0 (the default subnet mask of class C is 255.255.255.0), so the number of bit 0 left is 8 – 3 = 5. Therefore the hosts per subnet will be 25 – 2 = 30 -> E is correct.

    Question 18

    Refer to the exhibit. What is the most efficient summarization that R1 can use to advertise its networks to R2?


    A. 172.1.0.0/22
    B. 172.1.0.0/21
    C. 172.1.4.0/22
    D. 172.1.4.0/24
    172.1.5.0/24
    172.1.6.0/24
    172.1.7.0/24
    E. 172.1.4.0/25
    172.1.4.128/25
    172.1.5.0/24
    172.1.6.0/24
    172.1.7.0/24

    Answer: C

    Explanation

    Network 172.1.4.0/25 and network 172.1.4.128/25 can be grouped to a single network 172.1.4.0/24

    Network 172.1.4.0/24 + Network 172.1.5.0/24 + Network 172.1.6.0/24 + Network 172.1.7.0/24 can be grouped to a single network 172.1.4.0/22 because we have all 4 subnetworks so we can move left 2 bits (22=4).

    Question 19

Gateway of last resort is not set
192.168.25.0/30 is subnetted, 4 subnets
D 192.168.25.20 [90/2681856] via 192.168.15.5, 00:00:10, Serial0/1
D 192.168.25.16 [90/1823638] via 192.168.15.5, 00:00:50, Serial0/1
D 192.168.25.24 [90/3837233] via 192.168.15.5, 00:05:23, Serial0/1
D 192.168.25.28 [90/8127323] via 192.168.15.5, 00:06:45, Serial0/1
C 192.168.15.4/30 is directly connected, Serial0/1
C 192.168.2.0/24 is directly connected, FastEthernet0/0
Which address and mask combination a summary of the routes learned by EIGRP?
A. 192.168.25.0 255.255.255.240
B. 192.168.25.16 255.255.255.252
C. 192.168.25.0 255.255.255.252
D. 192.168.25.28 255.255.255.240
E. 192.168.25.16 255.255.255.240
F. 192.168.25.28 255.255.255.240


Answer: E

Explanation

We have 4 routes learned by EIGRP:
D 192.168.25.20 [90/2681856] via 192.168.15.5, 00:00:10, Serial0/1
D 192.168.25.16 [90/1823638] via 192.168.15.5, 00:00:50, Serial0/1
D 192.168.25.24 [90/3837233] via 192.168.15.5, 00:05:23, Serial0/1
D 192.168.25.28 [90/8127323] via 192.168.15.5, 00:06:45, Serial0/1
These subnets are all /30 (as it says “192.168.25.0/30 is subnetted, 4 subnets”. We have 4 successive subnets = 22 so we can go back 2 bits -> the summarized subnet mask is 30 – 2 = 28 and the summarized network is 192.168.25.16.
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  • #2
    We have 4 successive subnets = 22 so we can go back 2 bits -> the summarized subnet mask is 30 – 2 = 28 and the summarized network is 192.168.25.16???



    == http://www.solitaire-champ.com/ ==
    Last edited by adolfainsley8; 27-04-2016, 02:16 PM.

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    • #3
      An IP address is an address used to uniquely identify a device on an IP network. The address is made up of 32 binary bits, which can be divisible into a network portion and a host portion with the help of a subnet mask. The 32 binary bits are divided into four octets (1 octet = 8 bits). Cisco 200-125 Exam Dumps Each octet becomes decimal and is separated by a period (period). For this reason, it is said that an IP address is expressed in dotted decimal format (for example, 172.16.81.100). The value in each octet ranges from 0 to 255 decimal, or 00000000 - 11111111 binary.

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      • #4
        Get real 200-105 exam questions answers with a free and get full guarantee to pass in first attempt.

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