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NEW QUESTION: 1
A company is building a solution for storing files containing Personally Identifiable Information (PII) on AWS.
Requirements state:
- All data must be encrypted at rest and in transit.
- Al data must be replicated in at least two locations that are at
least 500 miles apart.
Which solution meets these requirements?
A. Create primary and secondary Amazon S3 buckets in two separate Availability Zones that are at least 500 miles apart. Use a bucket policy to enforce access to the buckets only through HTTPS.
Use a bucket policy to enforce Amazon S3 SSE-C on all objects uploaded to the bucket. Configure cross- region replication between the two buckets.
B. Create primary and secondary Amazon S3 buckets in two separate Availability Zones that are at least 500 miles apart. Use a bucket policy to enforce access to the buckets only through HTTPS.
Use a bucket policy to enforce AWS KMS encryption on all objects uploaded to the bucket.
Configure cross- region replication between the two buckets. Create a KMS Customer Master Key (CMK) in the primary region for encrypting objects.
C. Create primary and secondary Amazon S3 buckets in two separate AWS Regions that are at least
500 miles apart. Use a bucket policy to enforce access to the buckets only through HTTPS. Use a bucket policy to enforce S3-Managed Keys (SSE-S3) on all objects uploaded to the bucket.
Configure cross- region replication between the two buckets.
D. Create primary and secondary Amazon S3 buckets in two separate AWS Regions that are at least
500 miles apart. Use an IAM role to enforce access to the buckets only through HTTPS. Use a bucket policy to enforce Amazon S3-Managed Keys (SSE-S3) on all objects uploaded to the bucket. Configure cross-region replication between the two buckets.
Answer: D

NEW QUESTION: 2
企業は、オンプレミスアプリケーションが迅速なリカバリのためにこれらのバックアップへのアクセスを維持することを保証しながら、オンプレミスデータベースサーバー用の耐久性のあるバックアップストレージソリューションを必要としています。会社はこれらのバックアップの宛先としてAWSストレージサービスを使用しますソリューションアーキテクトは最小限の運用オーバーヘッドでソリューションを設計していますソリューションアーキテクトはどのソリューションを実装する必要がありますか?
A. AWS Storage Gatewayファイルゲートウェイをオンプレミスにデプロイし、AmazonS3バケットに関連付けます
B. データベースをAWS Storage Gatewayボリュームゲートウェイにバックアップし、Amazon S3APIを使用してアクセスします。
C. データベースバックアップファイルを、AmazonEC2インスタンスに接続されたAmazonElastic Block Store(Amazon EBS)ボリュームに転送します。
D. データベースをAWS Snowballデバイスに直接バックアップし、ライフサイクルルールを使用してデータをAmazon S3 Glacier DeepArchiveに移動します。
Answer: A
Explanation:
Explanation
Network Load Balancer overview
A Network Load Balancer functions at the fourth layer of the Open Systems Interconnection (OSI) model. It can handle millions of requests per second. After the load balancer receives a connection request, it selects a target from the target group for the default rule. It attempts to open a TCP connection to the selected target on the port specified in the listener configuration.
When you enable an Availability Zone for the load balancer, Elastic Load Balancing creates a load balancer node in the Availability Zone. By default, each load balancer node distributes traffic across the registered targets in its Availability Zone only. If you enable cross-zone load balancing, each load balancer node distributes traffic across the registered targets in all enabled Availability Zones. For more information, see Availability Zones.
If you enable multiple Availability Zones for your load balancer and ensure that each target group has at least one target in each enabled Availability Zone, this increases the fault tolerance of your applications. For example, if one or more target groups does not have a healthy target in an Availability Zone, we remove the IP address for the corresponding subnet from DNS, but the load balancer nodes in the other Availability Zones are still available to route traffic. If a client doesn't honor the time-to-live (TTL) and sends requests to the IP address after it is removed from DNS, the requests fail.
For TCP traffic, the load balancer selects a target using a flow hash algorithm based on the protocol, source IP address, source port, destination IP address, destination port, and TCP sequence number. The TCP connections from a client have different source ports and sequence numbers, and can be routed to different targets. Each individual TCP connection is routed to a single target for the life of the connection.
For UDP traffic, the load balancer selects a target using a flow hash algorithm based on the protocol, source IP address, source port, destination IP address, and destination port. A UDP flow has the same source and destination, so it is consistently routed to a single target throughout its lifetime. Different UDP flows have different source IP addresses and ports, so they can be routed to different targets.
An Auto Scaling group contains a collection of Amazon EC2 instances that are treated as a logical grouping for the purposes of automatic scaling and management. An Auto Scaling group also enables you to use Amazon EC2 Auto Scaling features such as health check replacements and scaling policies. Both maintaining the number of instances in an Auto Scaling group and automatic scaling are the core functionality of the Amazon EC2 Auto Scaling service.
The size of an Auto Scaling group depends on the number of instances that you set as the desired capacity.
You can adjust its size to meet demand, either manually or by using automatic scaling.
An Auto Scaling group starts by launching enough instances to meet its desired capacity. It maintains this number of instances by performing periodic health checks on the instances in the group. The Auto Scaling group continues to maintain a fixed number of instances even if an instance becomes unhealthy. If an instance becomes unhealthy, the group terminates the unhealthy instance and launches another instance to replace it.
https://docs.aws.amazon.com/elasticloadbalancing/latest/network/introduction.html
https://docs.aws.amazon.com/autoscaling/ec2/userguide/AutoScalingGroup.html

NEW QUESTION: 3
Which of the following is the main weakness of Aruba's WLAN
A. Does not support 2.5G solution
B. Does not support Bluetooth solution
C. Does not support the sensitive solution
Answer: C