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2021 Mar 400-101 study guide

Q351. Which three statements about GLBP are true? (Choose three.) 

A. It uses a virtual MAC address that starts with 0007.b4. 

B. It elects a single active virtual gateway to appoint and manage multiple active virtual forwarders. 

C. It allows the configured virtual IP address to be used on a physical interface as well. 

D. It uses a virtual MAC address that starts with 0070.4b. 

E. It elects multiple active virtual gateways to appoint and manage a single active virtual forwarder. 

F. Preemption is enabled for the configured active virtual gateway by default. 

Answer: A,B,C 

Explanation: 

The virtual MAC address in GLBP is 0007.b400.xxyy where xx is the GLBP group number and yy is the different number of each gateway (01, 02, 03…). One of the routers in a GLBP group is elected as an AVG – Active Virtual Gateway. There is only one active AVG in a group, and its task is to respond to ARP requests sent to the virtual gateway IP address replying different virtual MAC addresses in response packets. GLBP allows the configured virtual IP address to be used on a physical interface. By default, the GLBP gateway preemptive scheme is disabled. A backup virtual gateway can become the AVG only if the current AVG fails, regardless of the priorities assigned to the virtual gateways. 


Q352. Refer to the exhibit. 

Which additional configuration is necessary for R1 and R2 to become OSPF neighbors? 

A. R1 

router ospf 1 

no passive-interface Fastethernet0/0 

B. R2 

router ospf 10 

no network 10.1.1.6 0.0.0.0 area 0 

network 10.1.1.6 0.0.0.0 area 1 

C. R1 

interface FastEthernet0/0 

ip ospf mtu-ignore 

R2 

interface FastEthernet0/1 

ip ospf mtu-ignore ! 

D. R1 

no router ospf 1 

router ospf 10 

network 10.1.1.5 0.0.0.0 area 0 

Answer:

Explanation: 

Because the passive interface default command is used, by default all interfaces are passive and no neighbors will form on these interfaces. We need to disable passive interface on the link to R2 by using the “no passive-interface Fastethernet0/0” on R1 under OSPF. 


Q353. Which CoS value is mapped to DSCP 48 by default? 

A. 6 

B. 7 

C. AF21 

D. AF44 

E. AF41 

F. 46 

Answer:


Q354. Which two statements about the BGP community attribute are true? (Choose two.) 

A. Routers send the community attribute to all BGP neighbors automatically. 

B. A router can change a received community attribute before advertising it to peers. 

C. It is a well-known, discretionary BGP attribute. 

D. It is an optional transitive BGP attribute. 

E. A prefix can support only one community attribute. 

Answer: B,D 

Explanation: 

A community is a group of prefixes that share some common property and can be configured with the BGP community attribute. The BGP Community attribute is an optional transitive attribute of variable length. The attribute consists of a set of four octet values that specify a community. The community attribute values are encoded with an Autonomous System (AS) number in the first two octets, with the remaining two octets defined by the AS. A prefix can have more than one community attribute. A BGP speaker that sees multiple community attributes in a prefix can act based on one, some or all the attributes. A router has the option to add or modify a community attribute before the router passes the attribute on to other peers. 

Reference: 

http://www.cisco.com/c/en/us/support/docs/ip/border-gateway-protocol-bgp/28784-bgp-community.html 


Q355. Which two statements are true about VPLS? (Choose two.) 

A. It can work over any transport that can forward IP packets. 

B. It provides integrated mechanisms to maintain First Hop Resiliency Protocols such as HSRP, VRRP, or GLBP. 

C. It includes automatic detection of multihoming. 

D. It relies on flooding to propagate MAC address reachability information. 

E. It can carry a single VLAN per VPLS instance. 

Answer: D,E 

Explanation: 

VPLS relies on flooding to propagate MAC address reachability information. Therefore, flooding cannot be prevented. 

VPLS can carry a single VLAN per VPLS instance. To multiplex multiple VLANs on a single instance, VPLS uses IEEE QinQ. 

Reference: http://www.cisco.com/c/en/us/products/collateral/switches/nexus-7000-series-switches/white_paper_c11-574984.html 


Update 400-101 exam cost:

Q356. Which three options are sources from which a SPAN session can copy traffic? (Choose three.) 

A. ports 

B. EtherChannels 

C. VLANs 

D. subnets 

E. primary IP addresses 

F. secondary IP addresses 

Answer: A,B,C 

Explanation: 

. SPAN Sources 

The interfaces from which traffic can be monitored are called SPAN sources. Sources designate the traffic to monitor and whether to copy ingress, egress, or both directions of traffic. SPAN sources include the following: 

. Ethernet ports 

. Port channels 

. The inband interface to the control plane CPU — You can monitor the inband interface only from the default VDC. Inband traffic from all VDCs is monitored. 

. VLANs — When a VLAN is specified as a SPAN source, all supported interfaces in the VLAN are SPAN sources. 

. Remote SPAN (RSPAN) VLANs 

. Fabric port channels connected to the Cisco Nexus 2000 Series Fabric Extender . 

Satellite ports and host interface port channels on the Cisco Nexus 2000 Series Fabric Extender 

— These interfaces are supported in Layer 2 access mode, Layer 2 trunk mode, and Layer 3 mode. 

Reference: http://www.cisco.com/c/en/us/td/docs/switches/datacenter/sw/5_x/nx-os/system_management/configuration/guide/sm_nx_os_cg/sm_14span.html#wp1239492

 


Q357. Which TCP mechanism prevents the sender from sending data too quickly for the receiver to process? 

A. Congestion control 

B. Error detection 

C. Selective acknowledgement 

D. Flow control 

Answer:

Explanation: 

In data communications, flow control is the process of managing the rate of data transmission between two nodes to prevent a fast sender from overwhelming a slow receiver. It provides a mechanism for the receiver to control the transmission speed, so that the receiving node is not overwhelmed with data from transmitting node. 

Reference: http://en.wikipedia.org/wiki/Flow_control_(data) 


Q358. Refer to the exhibit. 

Which statement is true? 

A. The command ip multicast rpf multitopology is missing from the configuration. 

B. Multitopology routing for multicast has been enabled for IS-IS. 

C. This output is invalid. 

D. The command mpls traffic-eng multicast-intact is configured on this router. 

Answer:

Explanation: 

The following is sample output from the show ip rpf command in a Multi-Topology Routing (MTR) routing environment. In Cisco IOS releases that support MTR, the “RPF topology” field was introduced to indicate which RIB topology is being used for the RPF lookup. For the “RPF topology” field in this example, the first topology listed (ipv4 multicast base) indicates where the nexthop of the RPF lookup is being conducted and the second topology listed (ipv4 unicast data) indicates where the route originated from. 

Router# show ip rpf 10.30.30.32 

RPF information for ? (10.30.30.32) 

RPF interfacE. Ethernet1/0 

RPF neighbor: ? (10.1.1.32) 

RPF route/mask: 10.30.30.32/32 

RPF typE. unicast (ospf 100) 

Doing distance-preferred lookups across tables 

RPF topology: ipv4 multicast base, originated from ipv4 unicast data 

The table below describes the fields shown in the displays. 

Table 15 show ip rpf Field Descriptions 

Field 

Description 

RPF information for 

Hostname and source address for which RPF information is displayed. 

RPF interface 

For the given source, the interface from which the router expects to receive packets. 

RPF neighbor 

For the given source, the neighbor from which the router expects to receive packets. 

RPF route/mask 

Route number and mask that matched against this source. 

RPF type 

Routing table from which this route was obtained, either unicast, MBGP, DVMRP, or static mroutes. 

RPF recursion count 

The number of times the route is recursively resolved. 

Doing distance-preferred 

Whether RPF was determined based on distance or length of mask. 

Using Group Based VRF Select, RPF VRF. 

The RPF lookup was based on the group address and the VRF where the RPF lookup is being performed. 

Metric preference 

The preference value used for selecting the unicast routing metric to the RP announced by the designated forwarder (DF). 

Metric 

Unicast routing metric to the RP announced by the DF. 

RPF topology 

RIB topology being used for the RPF lookup, and, if originated from a different RIB topology, which RIB topology the route originated from. 

Reference: http://www.cisco.com/c/en/us/td/docs/ios-xml/ios/ipmulti/command/imc-xe-3se-5700-cr-book/imc-xe-3se-3850-cr-book_chapter_010.html 


Q359. Refer to the exhibit. 

Which two conditions can cause this error message to be displayed on the console? (Choose two.) 

A. The EtherChannel is configured as desirable on both ends. 

B. The port-channel on the adjacent device is misconfigured. 

C. There is a speed and duplex mismatch on interface fa0/12. 

D. The EtherChannel is configured as auto on one of the interfaces. 

Answer: B,C 


Q360. Which two mechanisms provide Cisco IOS XE Software with control plane and data plane separation? (Choose two.) 

A. Forwarding and Feature Manager 

B. Forwarding Engine Driver 

C. Forwarding Performance Management 

D. Forwarding Information Base 

Answer: A,B 

Explanation: 

Control Plane and Data Plane Separation 

IOS XE introduces an opportunity to enable teams to now build drivers for new Data Plane ASICs outside the IOS instance and have them program to a set of standard APIs which in turn enforces Control Plane and Data Plane processing separation. IOS XE accomplishes Control Plane / Data Plane separation through the introduction of the Forwarding and Feature Manager (FFM) and its standard interface to the Forwarding Engine Driver (FED). FFM provides a set of APIs to Control Plane processes. In turn, the FFM programs the Data Plane via the FED and maintains forwarding state for the system. The FED is the instantiation of the hardware driver for the Data Plane and is provided by the platform. 

Reference: http://www.cisco.com/c/en/us/products/collateral/ios-nx-os-software/ios-xe-3sg/QA_C67-622903.html