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Microsoft AI-103 Exam Syllabus Topics:

SectionObjectives
Topic 1: Develop Generative AI Applications and Agents- Azure OpenAI Service integration
  • 1. Function calling and tool use
    • 2. Prompt engineering and prompt flow design
      - AI agents architecture
      • 1. Agent orchestration and workflows
        • 2. Memory and state management
          Topic 2: Implement Natural Language Processing Solutions- Language understanding and intent recognition
          - Text analytics and summarization
          - Translation and multilingual support
          Topic 3: Knowledge Mining and Information Retrieval- RAG (Retrieval Augmented Generation) patterns
          - Indexing and semantic search
          - Azure AI Search configuration
          Topic 4: Plan and Manage Azure AI Solutions- Azure AI resource provisioning and configuration
          - Responsible AI principles and governance
          - Model selection and lifecycle management
          Topic 5: Implement Computer Vision Solutions- OCR and document intelligence
          - Image classification and object detection

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          Microsoft Developing AI Apps and Agents on Azure Sample Questions (Q156-Q161):

          NEW QUESTION # 156
          Hotspot Question
          You have a Microsoft Foundry project that contains an agent.
          You use a GitHub Actions workflow for CI/CD.
          You need to configure the workflow to automatically evaluate the agent when a pull request (PR) is created and prevent branches from merging if the evaluation results do NOT meet the defined thresholds.
          How should you configure the workflow? To answer, select the appropriate options in the answer area.
          NOTE: Each correct selection is worth one point.

          Answer:

          Explanation:


          NEW QUESTION # 157
          Drag and Drop Question
          You have a Microsoft Foundry project that uses Azure Content Understanding in Foundry Tools to analyze marketing videos.
          Video segmentation is enabled.
          You need to configure an analyzer to output a generated JSON field that describes the color scheme of each video segment.
          How should you configure the analyzer? To answer, drag the appropriate values to the correct targets. Each value may be used once, more than once, or not at all. You may need to drag the split bar between panes or scroll to view content.
          NOTE: Each correct selection is worth one point.

          Answer:

          Explanation:

          Explanation:
          Box 1: string
          The Type (string): While you want the output schema to contain a description of the color palette or style, Azure Content Understanding schemas map the underlying data types using fundamental types like string, number, or array. The field will output the final result in the JSON response under a key like "valueString" Box 2: generate The Method (generate): The extract method is only used for pulling literal text exactly as it appears in content (such as speech-to-text transcripts or OCR). Because analyzing visual aesthetics and synthesizing descriptive text about a "color scheme" requires multimodal AI reasoning, you must use the generate method. This instructs the underlying model to analyze the segment and synthesize a completely new descriptive insight.
          References:
          https://learn.microsoft.com/en-us/azure/ai-services/content-understanding/video/elements


          NEW QUESTION # 158
          You have a web app named App1 that processes user prompts by integrating with a Microsoft Foundry project named Project1. App1 performs the following actions:
          - Sends prompts directly to a model by using the Azure OpenAI Responses API
          - Invokes the Azure AI Content Safety tool by using a Foundry
          connection within the same request
          You need to configure end-to-end visibility into each step of the request workflow.
          What should you do?

          Answer: B

          Explanation:
          To configure end-to-end visibility into each step of the request workflow, you should Enable application tracing in the project.
          Project-Level Observability: Enabling application tracing allows Microsoft Foundry to natively track, trace, and monitor every component of the workflow-including calls to the Azure OpenAI Responses API and associated tools like Azure AI Content Safety-within the same request without requiring complex, separate SDK configurations.
          Centralized Tracking: Tracing captures the exact execution path across the project endpoints, allowing you to see metrics, latency, and inputs/outputs sequentially for both the model invocation and the content safety check.
          Reference:
          https://learn.microsoft.com/en-us/azure/foundry-classic/how-to/develop/trace-production-sdk


          NEW QUESTION # 159
          You are building an image sharing app that will use Azure AI to prevent users from sharing sexually explicit images.
          You need to ensure that inappropriate images are identified correctly. The solution must minimize development effort.
          What should you use?

          Answer: D

          Explanation:
          To prevent users from sharing sexually explicit images, you need a tool that can handle content moderation specifically designed for inappropriate content such as adult or sexually explicit material. Azure AI Content Safety Studio is a service designed for this purpose, providing pre- built AI models that can detect inappropriate content like adult images, violence, and other sensitive material. It minimizes development effort by offering an easy-to-use, pre-configured service for content safety without the need to build custom models.


          NEW QUESTION # 160
          You have an Azure Speech in Foundry Tools resource that hosts a custom speech to text model deployed to a custom endpoint. An agent uses the endpoint to perform real-time speech recognition.
          You are approaching the expiration date of the custom speech to text model.
          What is the expected behavior when the model expires?

          Answer: A

          Explanation:
          The correct answer is A. Speech recognition requests will fall back to the most recent base model for the same locale . Microsoft's custom speech model lifecycle guidance states that when a model expires, it is no longer available for transcription. For the custom endpoint route, speech recognition requests fall back to the most recent base model for the same locale. The documentation also warns that recognition results might still be returned, but the transcription may no longer reflect the domain-specific adaptation of the custom model.
          This distinguishes real-time custom endpoint behavior from batch transcription behavior. Batch transcription requests that specify an expired model fail with a 4xx error, but that is not the route described in this question.
          The agent is using a custom endpoint for real-time recognition, so fallback to the latest base model is the expected behavior. The model is not automatically deleted merely because it expires, and it does not continue to use the expired custom model indefinitely. The operational recommendation is to update the endpoint's model before expiration by redeploying the endpoint with a newer custom model. Reference topics: Azure Speech custom speech model lifecycle, custom endpoints, model expiration, real-time speech recognition, and endpoint redeployment.


          NEW QUESTION # 161
          ......

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