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NEW QUESTION: 1
2つのチームがアーキテクチャの異なる部分で共同で作業しており、リソースの管理にAWS CloudFormationを使用しています。 1つのチームはオペレーティングシステムレベルの更新とパッチを管理し、もう1つのチームはアプリケーションレベルの依存関係と更新を管理します。アプリケーションチームは、新しいインスタンスを作成してアプリケーションをデプロイするときに、最新のAMIを使用する必要があります。これら2つのチームとプロセスをリンクするための最もスケーラブルな方法は何ですか?
A. オペレーティングシステムチームはCloudFormationを使用してAMIの新しいバージョンを作成し、AMIのAmazonリソースネーム(ARN)をスタック出力セクションの一部として暗号化されたAmazon S3オブジェクトにリストします。アプリケーションチームはクロススタックリファレンスを使用して、暗号化されたS3オブジェクトをロードし、最新のAMI ARNを取得します。
B. オペレーティングシステムチームはCloudFormationスタックを使用して、新しいAMIを構築するAWS CodePipelineパイプラインを作成し、最新のAMI ARNをパイプライン出力の一部として暗号化されたAmazon S3オブジェクトに配置します。アプリケーションチームは、独自のCloudFormationテンプレート内のクロススタック参照を使用して、そのS3オブジェクトの場所を取得し、アプリケーションのデプロイ時に使用する最新のAMI ARNを取得します。
C. オペレーティングシステムチームはCloudFormationスタックを使用して、新しいAMIを構築するAWS CodePipelineパイプラインを作成します。次に、チームはAMI ARNをパイプライン出力の一部としてAWS Systems Managerパラメーターストアのパラメーターとして配置します。アプリケーションチームは、CloudFormationスタックでタイプssmのパラメーターを指定して、パラメーターストアから最新のAMI ARNを取得します。
D. オペレーティングシステムチームは、オペレーティングシステムテンプレートとアプリケーションチームテンプレートの両方を含むネストされたスタックを維持します。オペレーティングシステムチームは、スタックの更新を使用して、アプリケーションチームがアプリケーションコードを変更するたびに、更新をアプリケーションスタックに展開します。
Answer: B

NEW QUESTION: 2
Which of the following is NOT true about IPSec Tunnel mode?
A. Have two sets of IP headers
B. Fundamentally an IP tunnel with encryption and authentication
C. Works at the Transport layer of the OSI model
D. Established for gateway service
Answer: C
Explanation:
IPSec can be run in either tunnel mode or transport mode. Each of these modes has
its own particular uses and care should be taken to ensure that the correct one is selected for the
solution:
Tunnel mode is most commonly used between gateways, or at an end-station to a gateway, the
gateway acting as a proxy for the hosts behind it.
Transport mode is used between end-stations or between an end-station and a gateway, if the
gateway is being treated as a host-for example, an encrypted Telnet session from a workstation
to a router, in which the router is the actual destination.
As Figure 1 shows, basically transport mode should be used for end-to-end sessions and tunnel
mode should be used for everything else. (Refer to the figure for the following discussion.)
Figure 1 Tunnel and transport modes in IPSec.
Figure 1 displays some examples of when to use tunnel versus transport mode:
Tunnel mode is most commonly used to encrypt traffic between secure IPSec gateways, such as
between the Cisco router and PIX Firewall (as shown in example A in Figure 1). The IPSec
gateways proxy IPSec for the devices behind them, such as Alice's PC and the HR servers in
Figure 1. In example A, Alice connects to the HR servers securely through the IPSec tunnel set up
between the gateways.
Tunnel mode is also used to connect an end-station running IPSec software, such as the Cisco
Secure VPN Client, to an IPSec gateway, as shown in example B.
In example C, tunnel mode is used to set up an IPSec tunnel between the Cisco router and a
server running IPSec software. Note that Cisco IOS software and the PIX Firewall sets tunnel
mode as the default IPSec mode.
Transport mode is used between end-stations supporting IPSec, or between an end-station and a
gateway, if the gateway is being treated as a host. In example D, transport mode is used to set up
an encrypted Telnet session from Alice's PC running Cisco Secure VPN Client software to
terminate at the PIX Firewall, enabling Alice to remotely configure the PIX Firewall securely.
AH Tunnel Versus Transport Mode
Figure 2 shows the differences that the IPSec mode makes to AH. In transport mode, AH services
protect the external IP header along with the data payload. AH services protect all the fields in the
header that don't change in transport. The header goes after the IP header and before the ESP
header, if present, and other higher-layer protocols.
In tunnel mode, the entire original header is authenticated, a new IP header is built, and the new
IP header is protected in the same way as the IP header in transport mode.
Figure 2 AH tunnel versus transport mode.
AH is incompatible with Network Address Translation (NAT) because NAT changes the source IP
address, which breaks the AH header and causes the packets to be rejected by the IPSec peer.
ESP Tunnel Versus Transport Mode
Figure 3 shows the differences that the IPSec mode makes to ESP. In transport mode, the IP
payload is encrypted and the original headers are left intact. The ESP header is inserted after the
IP header and before the upper-layer protocol header. The upper-layer protocols are encrypted
and authenticated along with the ESP header. ESP doesn't authenticate the IP header itself.
NOTE
Higher-layer information is not available because it's part of the encrypted payload.
When ESP is used in tunnel mode, the original IP header is well protected because the entire
original IP datagram is encrypted. With an ESP authentication mechanism, the original IP
datagram and the ESP header are included; however, the new IP header is not included in the
authentication.
When both authentication and encryption are selected, encryption is performed first, before
authentication. One reason for this order of processing is that it facilitates rapid detection and rejection of replayed or bogus packets by the receiving node. Prior to decrypting the packet, the receiver can detect the problem and potentially reduce the impact of denial-of-service attacks.
Figure 3 ESP tunnel versus transport mode. ESP can also provide packet authentication with an optional field for authentication. Cisco IOS software and the PIX Firewall refer to this service as ESP hashed message authentication code (HMAC). Authentication is calculated after the encryption is done. The current IPSec standard specifies SHA-1 and MD5 as the mandatory HMAC algorithms. The main difference between the authentication provided by ESP and AH is the extent of the coverage. Specifically, ESP doesn't protect any IP header fields unless those fields are encapsulated by ESP (tunnel mode). Figure 4 illustrates the fields protected by ESP HMAC.
Figure 4 ESP encryption with a keyed HMAC. IPSec Transforms
An IPSec transform specifies a single IPSec security protocol (either AH or ESP) with its corresponding security algorithms and mode. Example transforms include the following:
The AH protocol with the HMAC with MD5 authentication algorithm in tunnel mode is used for authentication.
The ESP protocol with the triple DES (3DES) encryption algorithm in transport mode is used for confidentiality of data.
The ESP protocol with the 56-bit DES encryption algorithm and the HMAC with SHA-1 authentication algorithm in tunnel mode is used for authentication and confidentiality. Transform Sets A transform set is a combination of individual IPSec transforms designed to enact a specific security policy for traffic. During the ISAKMP IPSec security association negotiation that occurs in IKE phase 2 quick mode, the peers agree to use a particular transform set for protecting a particular data flow. Transform sets combine the following IPSec factors:
Mechanism for payload authentication-AH transform Mechanism for payload encryption-ESP transform
IPSec mode (transport versus tunnel)
Transform sets equal a combination of an AH transform, plus an ESP transform, plus the IPSec mode (either tunnel or transport mode).
This brings us to the end of the second part of this five-part series of articles covering IPSec. Be sure to catch the next installment.
Cisco Press at: http://www.ciscopress.com/articles/printerfriendly.asp?p=25477 and Source: TIPTON, Harold F. & KRAUSE, MICKI, Information Security Management Handbook, 4th Edition, Volume 2, 2001, CRC Press, NY, Pages 166-167.

NEW QUESTION: 3
A company has an application that runs a web service on Amazon EC2 instances and stores .jpg images in Amazon S3. The web traffic has a predictable baseline, but often demand spikes unpredictably for short periods of time. The application is loosely coupled and stateless. The .jpg images stored in Amazon S3 are accessed frequently for the first 15 to 20 days, they are seldom accessed thereafter but always need to be immediately available. The CIO has asked to find ways to reduce costs.
Which of the following options will reduce costs? (Choose two.)
A. Use On-Demand instances for baseline capacity requirements and use Spot Fleet instances for the demand spikes.
B. Configure a lifecycle policy to move the .jpg images on Amazon S3 to Amazon Glacier after 30 days.
C. Configure a lifecycle policy to move the .jpg images on Amazon S3 to S3 IA after 30 days.
D. Create a script that checks the load on all web servers and terminates unnecessary On-Demand instances.
E. Purchase Reserved instances for baseline capacity requirements and use On-Demand instances for the demand spikes.
Answer: C,E
Explanation:
A: This make a lot of sense.
B\D: This would allow the files to be immediately accessible still vs Glacier.
C: Spot instance is not guaranteed so is not suitable.
E: This should be done on CloudWatch.

NEW QUESTION: 4
Which two options represent a threat to the physical installation of an enterprise network? (Choose two.)
A. change control
B. electrical power
C. surveillance camera
D. computer room access
E. security guards
Answer: B,D
Explanation:
http://www.cisco.com/E-Learning/bulk/public/celc/CRS/media/targets/1_3_1.swf


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