SAP-C02套裝,SAP-C02最新考證
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SAP-C02考試涵蓋了與AWS架構和服務相關的廣泛主題,包括在AWS上設計和部署企業級可擴展操作、選擇適當的AWS服務以滿足特定的應用程序和業務需求、在AWS上設計和部署容錯和高可用系統,以及將複雜的多層應用程序遷移到AWS。該考試還涵蓋了高級主題,例如設計和實施將本地基礎架構與AWS雲服務集成的混合架構、在AWS上設計和實施安全和合規策略,以及在AWS上設計和實施成本優化解決方案。
AWS認證方案架構師專業級別證書(SAP-C02)專為有經驗的專業人士設計,想要展示他們在AWS平臺上設計和部署可擴展、容錯和高可用系統的專業知識。這個認證是方案架構師、工程師和顧問的必備認證,他們每天都在使用AWS,希望驗證自己的技能和知識。
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SAP-C02 認證考試包括多選和多答題,評估個人在 AWS 服務的各個領域,包括網絡、安全、存儲、應用服務和數據庫技術方面的知識和專業知識。考試還測試個人使用 AWS 服務和功能,如 AWS CloudFormation、AWS Elastic Beanstalk 和 Amazon EC2 自動縮放等設計和部署複雜架構的能力。通過 SAP-C02 考試需要深入了解 AWS 服務及其與其他系統的整合,以及識別和解決複雜技術問題的能力。這種認證受雇主高度重視,為個人在雲計算領域發展提供機會。
最新的 AWS Certified Solutions Architect SAP-C02 免費考試真題 (Q561-Q566):
問題 #561
A company is configuring connectivity to a multi-account AWS environment to support application workloads fiat serve users in a single geographic region. The workloads depend on a highly available, on-premises legacy system deployed across two locations It is critical for the AWS workloads to manias connectivity to the legacy system, and a minimum of 5 Gbps of bandwidth is required. All application workloads within AWS must have connectivity with one another.
Which solution will meet these requirements?
- A. Configure multiple AWS Direct Connect (DX) 10 Gbps dedicated connections from a DX partner for each on-premises location.
Create and attach a virtual private gateway for each AWS account VPC.
Create a transit gateway in a central network account and associate It with the virtual private gateways.
Create a transit virtual interface on each DX connection and attach the interface to the transit gateway. - B. Configure multiple AWS Direct Connect (DX) 10 Gbps dedicated connections from two DX partners for each on-premises location.
Create a transit gateway and a DX gateway in a central network account.
Create a transit virtual interface for each DX interlace and associate them with the DX gateway.
Create a gateway association between the DX gateway and the transit gateway - C. Configure multiple AWS Direct Connect (OX) 10 Gbps dedicated connections from a DX partner for each on-premises location.
Create private virtual interfaces on each connection for each AWS account VPC.
Associate the private virtual interface with a virtual private gateway attached to each VPC. - D. Configure multiple AWS Direct Connect (DX) 10 Gbps dedicated connections from two DX partners for each on-premises location.
Create and attach a virtual private gateway for each AWS account VPC.
Create a DX gateway m a central network account and associate it with the virtual private gateways.
Create a public virtual interface on each DX connection and associate the interface with me DX gateway.
答案:B
解題說明:
https://docs.aws.amazon.com/whitepapers/latest/aws-vpc-connectivity-options/aws-direct- connect-aws-transit-gateway.html
問題 #562
Example Corp. has an on-premises data center and a VPC named VPC A in the Example Corp.
AWS account. The on-premises network connects to VPC A through an AWS Site-To-Site VPN.
The on-premises servers can properly access VPC A. Example Corp. just acquired AnyCompany, which has a VPC named VPC B. There is no IP address overlap among these networks. Example Corp. has peered VPC A and VPC B.
Example Corp. wants to connect from its on-premise servers to VPC B. Example Corp. has properly set up the network ACL and security groups.
Which solution will meet this requirement with the LEAST operational effort?
- A. Create a transit gateway. Attach the Site-to-Site VPN, VPC A, and VPC B to the transit gateway.
Update the transit gateway route tables for all networks to add IP range routes for all other networks. - B. Create a transit gateway. Create a Site-to-Site VPN connection between the on-premises network and VPC B. and connect the VPN connection to the transit gateway. Add a route to direct traffic to the peered VPCs, and add an authorization rule to give clients access to the VPCs A and B.
- C. Modify the Site-to-Site VPN's virtual private gateway definition to include VPC A and VPC B. Split the two routers of the virtual private getaway between the two VPCs.
- D. Update the route tables for the Site-to-Site VPN and both VPCs for all three networks. Configure BGP propagation for all three networks. Wait for up to 5 minutes for BGP propagation to finish.
答案:A
解題說明:
This option will allow you to connect from the on-premises servers to VPC B with the least operational effort, as it utilizes the transit gateway to connect all networks and allows for easy updates to the route tables. BGP propagation is not necessary and the use of transit gateway will simplify the traffic routing.
問題 #563
A company is planning to migrate an on-premises data center to AWS. The company currently hosts the data center on Linux-based VMware VMs. A solutions architect must collect information about network dependencies between the VMs. The information must be in the form of a diagram that details host IP addresses, hostnames, and network connection information.
Which solution will meet these requirements?
- A. Install the AWS Application Migration Service agent on the on-premises servers for data collection. Use AWS Migration Hub data in Workload Discovery on AWS to generate network diagrams.
- B. Install the AWS Application Migration Service agent on the on-premises servers for data collection. Export data from AWS Migration Hub in .csv format into an Amazon CloudWatch dashboard to generate network diagrams.
- C. Use AWS Application Discovery Service. Select an AWS Migration Hub home AWS Region. Install the AWS Application Discovery Agent on the on-premises servers for data collection. Grant permissions to Application Discovery Service to use the Migration Hub network diagrams.
- D. Use the AWS Application Discovery Service Agentless Collector for server data collection. Export the network diagrams from the AWS Migration Hub in .png format.
答案:D
解題說明:
To effectively gather information about network dependencies between VMs in an on-premises data center for migration to AWS, it's crucial to use tools that can capture detailed application and server dependencies. The AWS Application Discovery Service is designed for this purpose, particularly when migrating from environments like Linux-based VMware VMs. By installing the AWS Application Discovery Agent on the on-premises servers, the service can collect necessary data such as host IP addresses, hostnames, and network connection information. This data is crucial for creating a comprehensive network diagram that outlines the interactions and dependencies between various components of the on-premises infrastructure. The integration with AWS Migration Hub enhances this process by allowing the visualization of these dependencies in a network diagram format, aiding in the planning and execution of the migration process. This approach ensures a thorough understanding of the on-premises environment, which is essential for a successful migration to AWS.
References:
AWS Documentation on Application Discovery Service: This provides detailed guidance on how to use the Application Discovery Service, including the installation and configuration of the Discovery Agent.
AWS Migration Hub User Guide: Offers insights on how to integrate Application Discovery Service data with Migration Hub for comprehensive migration planning and tracking.
AWS Solutions Architect Professional Learning Path: Contains advanced topics and best practices for migrating complex on-premises environments to AWS, emphasizing the use of AWS services and tools for effective migration planning and execution.
問題 #564
A company hosts an application on AWS. The application uses AWS Lambda functions that are invoked by an Amazon API Gateway API. The company has an Amazon CloudFront distribution that uses the API Gateway API as its origin. The CloudFront distribution serves web requests to customers worldwide.
During testing, users experienced slow responses from the application APIs. The company discovered that requests from different AWS Regions contained inconsistent query parameters with mixed-case letters, which caused increased cache misses and more requests to reach the Lambda functions.
The company wants to ensure that the API consistently provides responses with minimal latency.
Which solution will meet these requirements?
- A. Create a new Lambda function to sort incoming request query parameters alphabetically and convert the parameters to lowercase. Configure the CloudFront distribution to use the Lambda@Edge function type. Configure the Lambda function to invoke on origin request.
- B. Configure the API Gateway API to use a Lambda authorizer to sort incoming request query parameters alphabetically and convert the parameters to lowercase before Lambda processes the request.
- C. Configure the API Gateway API to use mapping templates to sort incoming request query parameters alphabetically and convert the parameters to lowercase before Lambda processes the request.
- D. Create a CloudFront function to sort incoming request query parameters alphabetically and convert the parameters to lowercase. Configure the CloudFront distribution to use the CloudFront Functions function type. Configure the CloudFront function to invoke on viewer request.
答案:D
解題說明:
Comprehensive and Detailed Explanation From Exact Extract:
B is correct because the problem is caused by inconsistent query-string casing leading to CloudFront cache misses, and the best place to normalize the request is at the CloudFront edge before cache-key evaluation. CloudFront Functions run at the edge with very low latency and are intended for lightweight request manipulations (for example, normalizing URLs, headers, and query strings) on viewer request events. By sorting query parameters and converting them to lowercase on the viewer request, CloudFront will treat semantically equivalent requests as the same cache key, increasing cache hit ratio and reducing the number of origin calls to API Gateway and downstream Lambda invocations. This directly reduces latency for global users.
Why the other options are less suitable:
* A (Lambda@Edge on origin request): Lambda@Edge can also modify requests, but it is heavier- weight than CloudFront Functions for simple normalization logic. Also, doing this on origin request occurs after CloudFront has already decided whether there is a cache hit. If the cache key is still based on the original mixed-case query string at the viewer side, you won't consistently prevent cache misses.
Normalization must happen before cache lookup to maximize cache hits.
* C (API Gateway mapping templates): This normalizes the request only after it has already missed in CloudFront and reached the origin. It does not fix CloudFront cache fragmentation, so it does not meet the "minimal latency" goal as effectively.
* D (Lambda authorizer): Lambda authorizers are for authorization/authentication decisions. Using an authorizer for query normalization adds unnecessary overhead and still happens at API Gateway (origin), not at CloudFront before cache evaluation.
References:
Amazon CloudFront Documentation: cache behavior and cache keys; viewer request/origin request event flow CloudFront Functions Documentation: designed for lightweight, high-scale, low-latency request/response manipulation at the edge; viewer request execution AWS Lambda@Edge Documentation: edge compute for more complex logic; event timing differences (viewer vs origin) Amazon API Gateway Documentation: mapping templates and Lambda authorizers and their intended use cases
問題 #565
A company has deployed applications to thousands of Amazon EC2 instances in an AWS account. A security audit discovers that several unencrypted Amazon Elastic Block Store (Amazon EBS) volumes are attached to the EC2 instances. The company's security policy requires the EBS volumes to be encrypted.
The company needs to implement an automated solution to encrypt the EBS volumes. The solution also must prevent development teams from creating unencrypted EBS volumes.
Which solution will meet these requirements?
- A. Configure the AWS Config managed rule that identifies unencrypted EBS volumes. Configure an automatic remediation action. Associate an AWS Systems Manager Automation runbook that includes the steps to create a new encrypted EBS volume. Create an AWS Key Management Service (AWS KMS) customer managed key. In the key policy, include a statement to deny the creation of unencrypted EBS volumes.
- B. Use AWS Systems Manager Fleet Manager to create a list of unencrypted EBS volumes. Create a Systems Manager Automation runbook that includes the steps to create a new encrypted EBS volume. Modify the AWS account setting for EBS encryption to always encrypt new EBS volumes.
- C. Use AWS Systems Manager Fleet Manager to create a list of unencrypted EBS volumes, Create a Systems Manager Automation runbook that includes the steps to create a new encrypted EBS volume. Create an SCP to deny the creation of unencrypted EBS volumes.
- D. Configure the AWS Config managed rule that identifies unencrypted EBS volumes. Configure an automatic remediation action. Associate an AWS Systems Manager Automation runbook that includes the steps to create a new encrypted EBS volume. Modify the AWS account setting for EBS encryption to always encrypt new EBS volumes.
答案:D
問題 #566
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