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NEW QUESTION: 1
NetAppAnnouncements can be found in _____.
A. PartnerEdge
B. CustomerEdge
C. Product Bulletins
D. Technical Reports Library
Answer: C
NEW QUESTION: 2
必要に応じて、次のログイン資格情報を使用します。
ユーザー名を入力するには、[サインイン]ボックスにカーソルを置き、下のユーザー名をクリックします。
パスワードを入力するには、[パスワードの入力]ボックスにカーソルを置き、下のパスワードをクリックします。
Azureユーザー名:[email protected]
Azureパスワード:Ag1Bh9!#Bd
以下の情報は、テクニカルサポートのみを目的としています。
ラボインスタンス:10598168
VM1という名前の仮想マシンのセキュリティログからAzureStorageアカウントにすべての監査失敗データを収集する必要があります。
このタスクを完了するには、Azureポータルにサインインします。
このタスクは完了するまでに数分かかる場合があります。タスクの完了中に他のタスクを実行できます。
Answer:
Explanation:
See the explanation below.
Explanation
Step 1: Create a workspace
Azure Monitor can collect data directly from your Azure virtual machines into a Log Analytics workspace for detailed analysis and correlation.
1. In the Azure portal, select All services. In the list of resources, type Log Analytics. As you begin typing, the list filters based on your input. Select Log Analytics workspaces.
2. Select Create, and then select choices for the following items:
3. After providing the required information on the Log Analytics workspace pane, select OK.
While the information is verified and the workspace is created, you can track its progress under Notifications from the menu.
Step 2: Enable the Log Analytics VM Extension
Installing the Log Analytics VM extension for Windows and Linux allows Azure Monitor to collect data from your Azure VMs.
1. In the Azure portal, select All services found in the upper left-hand corner. In the list of resources, type Log Analytics. As you begin typing, the list filters based on your input. Select Log Analytics workspaces.
2. In your list of Log Analytics workspaces, select DefaultWorkspace (the name you created in step 1).
3. On the left-hand menu, under Workspace Data Sources, select Virtual machines.
4. In the list of Virtual machines, select a virtual machine you want to install the agent on. Notice that the Log Analytics connection status for the VM indicates that it is Not connected.
5. In the details for your virtual machine, select Connect. The agent is automatically installed and configured for your Log Analytics workspace. This process takes a few minutes, during which time the Status shows Connecting.
After you install and connect the agent, the Log Analytics connection status will be updated with This workspace.
Reference: https://docs.microsoft.com/en-us/azure/azure-monitor/learn/quick-collect-azurevm
NEW QUESTION: 3
あなたは、ウェブ・アプリケーションで使われるクラス・ライブラリを作成しています。
あなたは、クラスライブラリアセンブリが強く命名されていることを確認する必要があります。
あなたは、何をするべきですか?
A. Use assembly attributes.
B. Use the aspnet_regiis.exe command-line tool.
C. Use the xsd.exe command-line tool.
D. Use the gacutil.exe command-line tool.
Answer: A
Explanation:
The Windows Software Development Kit (SDK) provides several ways to sign an assembly with a strong name:
* Using the Assembly Linker (Al.exe) provided by the Windows SDK.
* Using assembly attributes to insert the strong name information in your code. You can use either the AssemblyKeyFileAttribute or the AssemblyKeyNameAttribute, depending on where the key file to be used is located.
* Using compiler options such /keyfile or /delaysign in C# and Visual Basic, or the /KEYFILE or /DELAYSIGN linker option in C++. (For information on delay signing, see Delay Signing an Assembly.)
NEW QUESTION: 4
A. Option D
B. Option B
C. Option C
D. Option A
Answer: B
Explanation:
NAT operation is typically transparent to both the internal and external hosts. Typically the internal host is aware of
the true IP address and TCP or UDP port of the external host. Typically the NAT device may function as the default
gateway for the internal host. However the external host is only aware of the public IP address for the NAT device and
the particular port being used to communicate on behalf of a specific internal host.
NAT and TCP/UDP
"Pure NAT", operating on IP alone, may or may not correctly parse protocols that are totally concerned with IP
information, such as ICMP, depending on whether the payload is interpreted by a host on the "inside" or "outside" of
translation. As soon as the protocol stack is traversed, even with such basic protocols as TCP and UDP, the protocols
will break unless NAT takes action beyond the network layer.
IP packets have a checksum in each packet header, which provides error detection only for the header. IP datagrams
may become fragmented and it is necessary for a NAT to reassemble these fragments to allow correct recalculation of
higher-level checksums and correct tracking of which packets belong to which connection.
The major transport layer protocols, TCP and UDP, have a checksum that covers all the data they carry, as well as the
TCP/UDP header, plus a "pseudo-header" that contains the source and destination IP addresses of the packet carrying
the TCP/UDP header. For an originating NAT to pass TCP or UDP successfully, it must recompute the TCP/UDP header
checksum based on the translated IP addresses, not the original ones, and put that checksum into the TCP/UDP
header of the first packet of the fragmented set of packets. The receiving NAT must recompute the IP checksum on
every packet it passes to the destination host, and also recognize and recompute the TCP/UDP header using the
retranslated addresses and pseudo-header. This is not a completely solved problem. One solution is for the receiving
NAT to reassemble the entire segment and then recompute a checksum calculated across all packets.
The originating host may perform Maximum transmission unit (MTU) path discovery to determine the packet size that
can be transmitted without fragmentation, and then set the don't fragment (DF) bit in the appropriate packet header
field. Of course, this is only a one-way solution, because the responding host can send packets of any size, which may
be fragmented before reaching the NAT.