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NEW QUESTION: 1
Which capability does big data analytics provide?
A. Reducing the data storage capacity requirement
B. Performing analytics using traditional tools
C. Storing large volumes of data without affecting availability
D. Translating large volumes of data into right decisions
Answer: D

NEW QUESTION: 2
FinTechスタートアップは、マイクロサービスアーキテクチャを使用してスマートコントラクトを提供する新しいブロックチェーンベースのアプリケーションを開発しています。開発チームは、コンテナーを使用してアプリケーションをデプロイし、クラウドネイティブアプリケーションを構築、デプロイ、管理するための信頼できる方法を模索しています。
さらに、アプリケーションアーティファクトを保存、共有、管理する簡単な方法が必要です。
このアプリケーションにはどのオプションをお勧めしますか?
A. OCIコンピューティングインスタンスにKubernetesクラスターをインストールして管理し、アプリケーションアーティファクトの管理にOCI Resource Managerを使用します
B. Oracle Container Engine for Kubernetes(OKE)を使用して、アプリケーションアーティファクトのデプロイメント環境とOCI関数を管理します
C. OCI Resource Managerを使用してクラウドネイティブアプリケーションを管理し、OCI関数を使用してアプリケーションアーティファクトを利用できるようにします
D. Oracle Container Engine for Kubernetes(OKE)を使用して、クラウドネイティブアプリケーションとアプリケーションアーティファクトのOCIレジストリを管理します
Answer: D
Explanation:
Oracle Cloud Infrastructure Container Engine for Kubernetesは、フルマネージドでスケーラブルな高可用性サービスであり、コンテナー化されたアプリケーションをクラウドにデプロイするために使用できます。開発チームがクラウドネイティブアプリケーションを確実に構築、デプロイ、管理したい場合は、Kubernetes用コンテナエンジン(単にOKEと略されることもあります)を使用します。アプリケーションに必要なコンピューティングリソースを指定すると、Container Engine for Kubernetesがそれらを既存のOCIテナンシーのOracle Cloud Infrastructureにプロビジョニングします。
Oracle Cloud Infrastructure Registryは、開発から本番へのワークフローを簡略化できるOracle管理レジストリです。 Oracle Cloud Infrastructure Registryを使用すると、開発者はDockerイメージなどの開発アーティファクトを簡単に保存、共有、管理できます。また、Oracle Cloud Infrastructureの高可用性でスケーラブルなアーキテクチャにより、アプリケーションを確実に展開できます。
したがって、運用上の問題や、基盤となるインフラストラクチャのスケーリングについて心配する必要はありません。

NEW QUESTION: 3
What is the chief criterion for determining record inactivity?
A. preference of the medical staff
B. efficiency of microfilming
C. Medicare's definition of inactivity
D. amount of space available for storage of newer records
Answer: D

NEW QUESTION: 4
HOTSPOT


Answer:
Explanation:

Explanation:

The Default TTL, is just that a default for newly created records. Once the records are created their TTL is independent of the Default TTL on the SOA. Microsoft DNS implementation copies the Default TTL setting to all newly created records their by giving them all independent TTL settings.
SOA Minimum Field: The SOA minimum field has been overloaded in the past to have three different meanings, the minimum TTL value of all RRs in a zone, the default TTL of RRs which did not contain a TTL value and the TTL of negative responses.
Despite being the original defined meaning, the first of these, the minimum TTL value of all RRs in a zone, has never in practice been used and is hereby deprecated. The second, the default TTL of RRs which contain no explicit TTL in the master zone file, is relevant only at the primary server. After a zone transfer all RRs have explicit TTLs and it is impossible to determine whether the TTL for a record was explicitly set or derived from the default after a zone transfer. Where a server does not require RRs to include the TTL value explicitly, it should provide a mechanism, not being the value of the MINIMUM field of the SOA record, from which the missing TTL values are obtained. How this is done is implementation dependent.
TTLs also occur in the Domain Name System (DNS), where they are set by an authoritative name server for a particular resource record. When a caching (recursive) nameserver queries the authoritative nameserver for a resource record, it will cache that record for the time (in seconds) specified by the TTL. If a stub resolver queries the caching nameserver for the same record before the TTL has expired, the caching server will simply reply with the already cached resource record rather than retrieve it from the authoritative nameserver again.
Shorter TTLs can cause heavier loads on an authoritative nameserver, but can be useful when changing the address of critical services like Web servers or MX records, and therefore are often lowered by the DNS administrator prior to a service being moved, in order to minimize disruptions.