FCP_WCS_AD-7.4 Valid Test Vce Free & FCP_WCS_AD-7.4 Free Sample
FCP_WCS_AD-7.4 Valid Test Vce Free & FCP_WCS_AD-7.4 Free Sample
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Fortinet FCP - AWS Cloud Security 7.4 Administrator Sample Questions (Q19-Q24):
NEW QUESTION # 19
Which two statements about the FortiCloud portal are true? (Choose two.)
- A. You can gain remote access to your FortiGate VM directly from the portal.
- B. You can access the FortiFlex portal only after you purchase a FortiFlex license and register it on FortiCare.
- C. To assign permissions in the identity and access management (JAM) portal, you must write a JSON script.
- D. You can access only cloud services that you have subscribed to on AWS marketplace.
Answer: A,B
Explanation:
Remote Access to FortiGate VM:
The FortiCloud portal allows users to remotely access their FortiGate VM instances. This is particularly useful for managing and configuring instances without needing direct network access (Option A).
FortiFlex Portal Access:
The FortiFlex portal is a feature that becomes available only after purchasing a FortiFlex license and registering it on FortiCare. This portal provides additional functionalities and services related to FortiFlex (Option C).
IAM Permissions:
Option B is incorrect because the Identity and Access Management (IAM) permissions in the FortiCloud portal do not require writing JSON scripts; they can be managed through the portal interface.
Subscription to Cloud Services:
Option D is incorrect because FortiCloud provides access to services beyond those subscribed through the AWS marketplace, including services directly offered by Fortinet.
Reference:
FortiCloud Documentation: FortiCloud
FortiFlex Portal: FortiFlex Licensing
NEW QUESTION # 20
Refer to the exhibit.
What two conclusions can you draw from the FortiGate debug output? (Choose two.)
- A. The address object AWS Windows Server Lab can be manually changed on FortiGate.
- B. The AWS user account used for software-defined network (SDN) integration must have full administrative rights.
- C. The SDN connector is correctly configured and authorized.
- D. The dynamic address object is automatically updated if the IP changes.
Answer: C,D
Explanation:
Dynamic Address Object Update:
The debug output shows that the IP address of the AWS Windows Server Lab has been updated automatically, indicating that the dynamic address object feature is working as intended. This allows FortiGate to adapt to changes in the IP addresses of AWS instances dynamically (Option A).
SDN Connector Configuration:
The messages in the debug output confirm that the SDN connector is able to retrieve instance information and update the firewall address objects successfully. This implies that the SDN connector is correctly configured and has the necessary permissions (Option C).
Manual Change and Permissions:
Option B is incorrect because while the address object could theoretically be changed manually, this is not inferred from the debug output.
Option D is incorrect because the debug output does not indicate that the AWS user account must have full administrative rights. The required permissions are typically more scoped to specific actions related to SDN.
Reference:
FortiGate AWS Integration Guide: FortiGate on AWS
AWS IAM Policies for SDN: AWS IAM Policies
NEW QUESTION # 21
A customer is attempting to deploy an active-passive high availability (HA) cluster using the software-defined network (SDN) connector in the AWS cloud.
What is an important consideration to ensure a successful formation of HA, failover, and traffic flow?
- A. Unicast FortiGate Clustering Protocol (FGCP) must be used.
- B. Both cluster members must show as healthy in the elastic load balancer (ELB) configuration.
- C. Both cluster members must be in the same availability zone.
- D. VDOM exceptions must be configured.
Answer: A
Explanation:
HA Cluster in AWS Cloud:
Deploying an active-passive HA cluster in AWS requires careful consideration of the clustering protocol used to ensure seamless failover and traffic flow.
Unicast FortiGate Clustering Protocol (FGCP):
Unicast FGCP is specifically designed for environments where multicast traffic is not feasible or supported, such as in the AWS cloud. Using unicast FGCP ensures that heartbeat and synchronization traffic between the cluster members are managed correctly over unicast communication, which is suitable for AWS's network infrastructure (Option C).
Comparison with Other Options:
Option A is incorrect because while placing both cluster members in the same availability zone might be required for certain configurations, it is not the critical factor for HA formation.
Option B is incorrect as VDOM exceptions are not directly related to the successful formation of HA.
Option D is incorrect because the ELB configuration checks are more about ensuring that the load balancer correctly routes traffic but do not specifically ensure HA formation and failover.
Reference:
FortiGate HA in AWS Documentation: FortiGate HA
Fortinet FGCP Details: FGCP Documentation
NEW QUESTION # 22
Refer to the exhibit.
Which statement is correct about the VPC peering connections shown in the exhibit?
- A. You cannot route packets directly from VPC B to VPC C through VPC A.
- B. You can associate VPC ID pcx-23232323 with VPC B to form a VPC peering connection between VPC B and VPC C.
- C. To route packets directly from VPC B to VPC C through VPC A, you must add a route for network 192.168.0.0/16 in the VPC A routing table.
- D. You cannot create a separate VPC peering connection between VPC B and VPC C to route packets directly.
Answer: A
Explanation:
Understanding VPC Peering:
VPC peering connections allow instances in one VPC to communicate with instances in another VPC. Peering is a one-to-one relationship between two VPCs.
Transit Routing Limitation:
AWS VPC peering connections do not support transitive peering. This means that a packet originating in VPC B cannot be routed through VPC A to reach VPC C. Each pair of VPCs must have its own peering connection.
Routing Table Configuration:
Even if you add a route in the VPC A routing table for the 192.168.0.0/16 network, it won't allow VPC B to communicate with VPC C because of the non-transitive nature of VPC peering.
Comparison with Other Options:
Option A is incorrect because adding a route in VPC A does not overcome the limitation of non-transitive peering.
Option C is incorrect because associating pcx-23232323 with VPC B is not how VPC peering works.
Option D is incorrect because you can create a separate peering connection between VPC B and VPC C, which is the required approach for communication between these VPCs.
Reference:
AWS VPC Peering Guide: VPC Peering
Limitations of VPC Peering: AWS VPC Peering Limitations
NEW QUESTION # 23
An administrator wants to deploy a solution to automatically create firewall rules on FortiGate to accelerate time-to-protection for threats.
Which AWS service can be integrated with FortiGate to accomplish this?
- A. AWS network access control list
- B. AWS GuardDuty
- C. SDN Connector for AWS
- D. AWS Firewall Manager
Answer: B
Explanation:
AWS GuardDuty Integration:
AWS GuardDuty is a threat detection service that continuously monitors for malicious activity and unauthorized behavior to protect AWS accounts and workloads. It can generate findings that can be used to create or update firewall rules automatically in FortiGate to enhance security and provide timely protection (Option D).
Integration with FortiGate:
GuardDuty findings can be integrated with FortiGate using automation tools and scripts to create firewall rules dynamically, thereby accelerating the time-to-protection against emerging threats.
Other Options Analysis:
Option A (AWS Firewall Manager) is more suited for managing rules across multiple accounts but not for dynamic threat response.
Option B (AWS Network ACL) provides stateless filtering but does not offer automated rule creation.
Option C (SDN Connector for AWS) helps in integrating SDN capabilities but is not specifically focused on threat-based rule automation.
Reference:
AWS GuardDuty: AWS GuardDuty
FortiGate Integration: Fortinet Integration
NEW QUESTION # 24
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