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Microsoft AI-900 Prüfungsplan:

Thema Einzelheiten
Thema 1
  • describe how training and validation datasets are used in machine learning
  • Identify features of anomaly detection workloads

Thema 2
  • Describe fundamental principles of machine learning on Azure
  • Identify core tasks in creating a machine learning solution

Thema 3
  • Identify features of image classification solutions
  • Identify features of common AI workloads

Thema 4
  • Select and interpret model evaluation metrics for classification and regression
  • Identify clustering machine learning scenarios

Thema 5
  • Identify features of semantic segmentation solutions
  • Identify natural language processing or knowledge mining workloads

Thema 6
  • Identify conversational AI workloads Identify guiding principles for responsible AI
  • Identify prediction
  • forecasting workloads


>> Microsoft AI-900 Praxisprüfung <<

AI-900 Übungsfragen: Microsoft Azure AI Fundamentals & AI-900 Dateien Prüfungsunterlagen

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Microsoft Azure AI Fundamentals AI-900 Prüfungsfragen mit Lösungen (Q151-Q156):

151. Frage
You are authoring a Language Understanding (LUIS) application to support a music festival.
You want users to be able to ask questions about scheduled shows, such as: "Which act is playing on the main stage?" The question "Which act is playing on the main stage?" is an example of which type of element?

  • A. an utterance
  • B. a domain
  • C. an entity
  • D. an intent

Antwort: A Begründung:
Explanation
Utterances are input from the user that your app needs to interpret.
Reference:
https://docs.microsoft.com/en-us/azure/cognitive-services/LUIS/luis-concept-utterance
152. Frage
Match the machine learning tasks to the appropriate scenarios.
To answer, drag the appropriate task from the column on the left to its scenario on the right. Each task may be used once, more than once, or not at all.
NOTE: Each correct selection is worth one point.
Antwort: ** Begründung:
Explanation

Box 1: Model evaluation
The Model evaluation module outputs a confusion matrix showing the number of true positives, false negatives, false positives, and true negatives, as well as ROC, Precision/Recall, and Lift curves.
Box 2: Feature engineering
Feature engineering is the process of using domain knowledge of the data to create features that help ML algorithms learn better. In Azure Machine Learning, scaling and normalization techniques are applied to facilitate feature engineering. Collectively, these techniques and feature engineering are referred to as featurization.
Note: Often, features are created from raw data through a process of feature engineering. For example, a time stamp in itself might not be useful for modeling until the information is transformed into units of days, months, or categories that are relevant to the problem, such as holiday versus working day.
Box 3: Feature selection
In machine learning and statistics, feature selection is the process of selecting a subset of relevant, useful features to use in building an analytical model. Feature selection helps narrow the field of data to the most valuable inputs. Narrowing the field of data helps reduce noise and improve training performance.
Reference:
https://docs.microsoft.com/en-us/azure/machine-learning/studio/evaluate-model-performance
https://docs.microsoft.com/en-us/azure/machine-learning/concept-automated-ml
153. Frage**
Match the Microsoft guiding principles for responsible AI to the appropriate descriptions.
To answer, drag the appropriate principle from the column on the left to its description on the right. Each principle may be used once, more than once, or not at all.
NOTE: Each correct selection is worth one point.
Antwort: ** Begründung:

Explanation

Box 1: Reliability and safety
To build trust, it's critical that AI systems operate reliably, safely, and consistently under normal circumstances and in unexpected conditions. These systems should be able to operate as they were originally designed, respond safely to unanticipated conditions, and resist harmful manipulation.
Box 2: Fairness
Fairness: AI systems should treat everyone fairly and avoid affecting similarly situated groups of people in different ways. For example, when AI systems provide guidance on medical treatment, loan applications, or employment, they should make the same recommendations to everyone with similar symptoms, financial circumstances, or professional qualifications.
We believe that mitigating bias starts with people understanding the implications and limitations of AI predictions and recommendations. Ultimately, people should supplement AI decisions with sound human judgment and be held accountable for consequential decisions that affect others.
Box 3: Privacy and security
As AI becomes more prevalent, protecting privacy and securing important personal and business information is becoming more critical and complex. With AI, privacy and data security issues require especially close attention because access to data is essential for AI systems to make accurate and informed predictions and decisions about people. AI systems must comply with privacy laws that require transparency about the collection, use, and storage of data and mandate that consumers have appropriate controls to choose how their data is used Reference:
https://docs.microsoft.com/en-us/learn/modules/responsible-ai-principles/4-guiding-principles
154. Frage**
Which two scenarios are examples of a conversational AI workload? Each correct answer presents a complete solution.
NOTE: Each correct selection is worth one point.

  • A. telephone voice menus to reduce the load on human resources
  • B. a telephone answering service that has a pre-recorder message
  • C. a service that creates frequently asked questions (FAQ) documents by crawling public websites
  • D. a chatbot that provides users with the ability to find answers on a website by themselves

Antwort: A,D Begründung:
Section: Describe features of conversational AI workloads on Azure
Explanation:
B: A bot is an automated software program designed to perform a particular task. Think of it as a robot without a body.
C: Automated customer interaction is essential to a business of any size. In fact, 61% of consumers prefer to communicate via speech, and most of them prefer self-service. Because customer satisfaction is a priority for all businesses, self-service is a critical facet of any customer-facing communications strategy.
Incorrect Answers:
D: Early bots were comparatively simple, handling repetitive and voluminous tasks with relatively straightforward algorithmic logic. An example would be web crawlers used by search engines to automatically explore and catalog web content.
Reference:
https://docs.microsoft.com/en-us/azure/architecture/data-guide/big-data/ai-overview
https://docs.microsoft.com/en-us/azure/architecture/solution-ideas/articles/interactive-voice-response-bot
155. Frage
To complete the sentence, select the appropriate option in the answer area.
Antwort: ** Begründung:

Explanation
Table Description automatically generated with medium confidence

Regression is a machine learning task that is used to predict the value of the label from a set of related features.
Reference:
https://docs.microsoft.com/en-us/dotnet/machine-learning/resources/tasks
156. Frage
...... IT-Industrie entwickelt sich sehr schnell und die Angestellten in dieser Branche werden mehr gefordert. Wenn Sie nicht ausscheiden möchten, ist das Bestehen der Microsoft AI-900 Prüfung notwendig. Vielleicht haben Sie Angst davor, dass Sie die in der Microsoft AI-900 durchfallen, auch wenn Sie viel Zeit und Geld aufwenden. Dann lassen wir It-Pruefung Ihnen helfen! Zahllose Benutzer der Microsoft AI-900 Prüfungssoftware geben wir die Konfidenz, Ihnen zu garantieren, dass mit Hilfe unserer Produkte werden Ihr Bestehen der Microsoft AI-900 gesichert sein! **AI-900 Prüfungsfragen
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