Arcitura Education C90.06 Exam Prep Course (Premium File)
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Last updated on May 26, 2026

 C90.06 Practice Exam
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Last Updated: 26-May-2026
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All Cloud Architecture Lab certification learning material, study guide, training courses are created by a team of Arcitura Education training experts. The Study Guide and .EXM training software files contain relevant Cloud Architecture Lab content, labs, practice questions and explanation. This C90.06 exam guide and training courses is based on the latest exam outlines available!

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Cloud Architecture Lab Study package designed to help you confidently pass your exam.

The C90.06 Exam Prep Features:

  • Contains the most relevant and up to date C90.06 study material covering all exam topics on the latest C90.06 certification.
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A Comprehensive Guide to Preparing and Passing the Arcitura Education C90.06 Exam

As a student aspiring to excel in the field of service-oriented architecture (SOA) and cloud technology, taking the Arcitura Education C90.06 Exam is a crucial step towards validating your knowledge and skills. This comprehensive guide will provide you with all the necessary information and actionable tips to help you prepare effectively and pass the C90.06 Exam with flying colors.

About the C90.06 Exam

The Arcitura Education C90.06 Exam, also known as "Cloud Technology Concepts," is designed to assess your understanding of cloud computing principles, concepts, technologies, and best practices. It focuses on key areas such as cloud architecture, deployment models, service models, virtualization, scalability, elasticity, and cloud governance.

To ensure the accuracy and up-to-date nature of the information provided, let's refer directly to the official Arcitura Education website:

  • Exam Name: C90.06 Cloud Technology Concepts
  • Exam Code: C90.06
  • Exam Format: Multiple Choice
  • Number of Questions: 60
  • Passing Score: 70%
  • Exam Duration: 90 minutes
  • Exam Language: English

Tips for Exam Preparation

1. Understand the Exam Objectives: Familiarize yourself with the exam objectives outlined by Arcitura Education. These objectives serve as a roadmap for your preparation, helping you focus on the key topics that will be covered in the exam.

2. Study the Recommended Resources: Arcitura Education provides a list of recommended resources, including study guides, books, and online courses. Make sure to utilize these resources to gain a comprehensive understanding of cloud technology concepts.

3. Practice with Sample Questions: Take advantage of the sample questions provided by Arcitura Education. Solving these questions will not only help you assess your knowledge but also familiarize you with the exam format and style of questions.

4. Join Study Groups and Forums: Engage with fellow students or professionals preparing for the C90.06 Exam. Participating in study groups and online forums can provide valuable insights, discussion opportunities, and a chance to clarify any doubts you may have.

5. Create a Study Plan: Develop a structured study plan that allows you to allocate time for each exam objective. Set realistic goals and milestones to track your progress and ensure thorough coverage of all the topics.

6. Hands-on Experience: Gain practical experience by working on cloud technology projects or experimenting with cloud platforms. Applying theoretical concepts to real-world scenarios will enhance your understanding and retention of the subject matter.

7. Review and Revise: Regularly review the topics you have studied to reinforce your understanding. Take notes, create flashcards, and summarize key concepts to aid in revision.

8. Simulate Exam Conditions: As the exam approaches, simulate the actual exam conditions by attempting practice tests within the given time limit. This will help you improve your time management skills and build confidence for the real exam.

9. Stay Calm and Confident: On the day of the exam, stay calm and approach each question with confidence. Read the questions carefully, eliminate unlikely options, and choose the best answer based on your knowledge and preparation.

Conclusion

Preparing for and passing the Arcitura Education C90.06 Exam requires dedication, thorough preparation, and a clear understanding of cloud technology concepts. By following the actionable tips provided in this guide and utilizing the official resources and support from Arcitura Education, you can enhance your chances of success. Remember to stay focused, maintain a positive mindset, and believe in your abilities. Good luck with your exam!

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VirtuLearn AI

Question 33:

  • Correct concept: The Weather.Historic entity corresponds to the text "by month" in the utterance.

  • Why: The sample export shows the entity spans characters 23 to 31, and the substring in that span is "by month." In LU/LUIS, an entity's value is the exact text matched in the utterance; startIndex/endIndex (or startPos/endPos in older versions) indicate where that text appears.

  • Key takeaway: Weather.Historic is the phrase "by month" extracted from the user input, not the numeric value or a separate label. The positions illustrate where the entity text is located within the utterance.

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Question 61:

  • Correct answer: Run the Bot Framework Emulator.

  • Why: When you start a bot locally, the Emulator is the standard tool to validate and debug your bot without publishing it. It lets you connect to your local endpoint (e.g., http://localhost:3978/api/messages), send test messages, inspect requests/responses, and verify dialogs and state.

  • What to expect: You can test conversation flows, activities, and debugging traces, ensuring the bot behaves as intended before connecting to any Azure channels.

  • Why the other options aren’t correct for this step:
- Bot Framework Composer is for designing and managing bot flows, not the primary local validation step before connecting to the bot. - Register the bot with Azure Bot Service is for deployment to Azure channels, not for initial local validation. - Run Windows Terminal is just a command shell and does not validate bot functionality.

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Question 51:

  • Correct answer: Waterfall and Prompt dialogs (options C and D).

Explanation:
  • WaterfallDialog provides a simple, linear sequence of steps to collect multiple inputs. You can branch the flow based on the item type and decide which steps to execute next.
  • Prompt dialogs (e.g., TextPrompt, NumberPrompt) handle asking for input and basic validation, reducing custom parsing code.
  • Using a waterfall flow with prompts lets you minimize development effort: you define the sequence once and use prompts to gather the required details for each item type, rather than building complex adaptive logic.

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Question 35:

  • Correct answer: Waterfall (option C), i.e., use a WaterfallDialog.
  • Why: A product setup process is a linear, guided flow. A WaterfallDialog runs a fixed sequence of steps (prompts, validations, and results) in order, which is ideal for collecting setup details step-by-step and finalizing the configuration.
  • How it works:
- Define a list of steps (e.g., gather product type, collect settings, confirm, complete). - Each step can prompt the user, validate input, store results, and proceed to the next step. - End after the final step.
  • Why not the others:
- ComponentDialog: groups multiple dialogs but isn’t inherently linear. - AdaptiveDialog: more flexible/dynamic; used for complex, context-aware flows. - “Action” isn’t a standard dialog type for this purpose.
In short, for a straightforward, guided setup flow, a WaterfallDialog is the most appropriate choice.

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Question 34:
Correct answers: Adaptive Card (D) and Dialog (E).
Explanation:

  • Adaptive Card: Lets you render rich content, including multiple options each with an image. You can include images for every option and actions (like Submit) to capture the user’s choice.
  • Dialog: Provides the flow control to show the card, wait for the user to pick an option, and then branch to the appropriate next steps. It manages multi-turn interactions and state.

Why the other options don’t fit:
  • an entity: Used for extracting data from user input, not for presenting options with images.
  • an Azure function: Backend code, not for UI presentation.
  • an utterance: A user input phrase, not for building the option list.

So, to present a list with images and handle selections in Bot Framework Composer, use an Adaptive Card to display the options and a Dialog to manage the interaction.

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Question 76:

  • Correct answer: Spatial Analysis in Azure AI Vision

  • Why this is correct:
- You need to verify the user is alone in the camera frame. Spatial Analysis in Azure AI Vision can analyze a video stream to detect and count people in a scene and understand their spatial relationships. This directly supports determining whether more than one person is present, which matches the “user alone” requirement. - It minimizes development effort because it provides built-in scene understanding for video, unlike other options that would require additional training or separate services.
  • Why not the others:
- Speech-to-text in Azure AI Speech focuses on transcribing audio, not detecting other people in the video. - Object detection in Azure AI Custom Vision would require labeling and training a model to detect people, which adds work. - Object detection in Azure AI Vision (non-spatial) can detect objects but isn’t as targeted for counting people and analyzing their spatial arrangement as the dedicated Spatial Analysis feature.
  • Quick implementation note:
- Use the video pipeline’s spatial analysis capability to count people per frame over time; trigger a warning or block access if the count exceeds 1.

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Question 72:
Question 72 asks which Python package to add to App1 to use an Azure AI service model (Model1) that identifies text intent.

  • Correct answer: azure-ai-language-conversations (Option B)

Why:
  • The task uses the Language Service’s Conversation Analysis feature to identify intent from text. The appropriate Python SDK to call a deployed Conversation model is the azure-ai-language-conversations package.
  • Other options are for different capabilities:
- azure-cognitiveservices-language-textanalytics is the older Text Analytics API (sentiment, key phrases, etc.), not for custom intent models. - azure-mgmt-cognitiveservices is for resource management, not calling models. - azure-cognitiveservices-speech is for Speech services (speech-to-text, etc.), not text intent.
Practical note (conceptual):
  • Install: pip install azure-ai-language-conversations
  • Use the ConversationAnalysisClient to call your deployed model (

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Question 61:

  • Correct answer: Azure Cognitive Services.

  • Why: A single multi-service Azure Cognitive Services resource provides one endpoint and one credential that can be used to access multiple APIs (e.g., Decision and Language, plus others like Content Moderator). This meets the requirement of using a single endpoint/credential.

  • Why not the others: If you created separate resources for each API (e.g., separate Language, Speech, Content Moderator resources), you’d have multiple endpoints and keys, violating the “single endpoint and credential” requirement. All listed services are part of Cognitive Services, so they share a single Cognitive Services resource.

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Question 28:
Answer: C — Computer Vision image analysis
Explanation:

  • To generate image tags in multiple languages with minimal development, use the Image Analysis endpoint of the Computer Vision service.
  • Call the API (Analyze Image) with visualFeatures=Tags and specify the language parameter (e.g., language=en, language=fr, language=es). The response returns tags with names localized to the requested language.
  • This approach requires no custom model training, unlike Custom Vision image classification, which would require building and tagging a dataset.
  • Other options:
- Content Moderator is for content safety/moderation, not tagging. - Image Moderation endpoints focus on inappropriate content. - Custom Translator translates text, not image tags.
In short, use the Image Analysis endpoint to get language-localized tags with minimal effort.

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