VCE AIF-C01 FILES - RELIABLE AIF-C01 EXAM VOUCHER

Vce AIF-C01 Files - Reliable AIF-C01 Exam Voucher

Vce AIF-C01 Files - Reliable AIF-C01 Exam Voucher

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Amazon AIF-C01 Exam Syllabus Topics:

TopicDetails
Topic 1
  • Applications of Foundation Models: This domain examines how foundation models, like large language models, are used in practical applications. It is designed for those who need to understand the real-world implementation of these models, including solution architects and data engineers who work with AI technologies to solve complex problems.
Topic 2
  • Security, Compliance, and Governance for AI Solutions: This domain covers the security measures, compliance requirements, and governance practices essential for managing AI solutions. It targets security professionals, compliance officers, and IT managers responsible for safeguarding AI systems, ensuring regulatory compliance, and implementing effective governance frameworks.
Topic 3
  • Fundamentals of AI and ML: This domain covers the fundamental concepts of artificial intelligence (AI) and machine learning (ML), including core algorithms and principles. It is aimed at individuals new to AI and ML, such as entry-level data scientists and IT professionals.
Topic 4
  • Guidelines for Responsible AI: This domain highlights the ethical considerations and best practices for deploying AI solutions responsibly, including ensuring fairness and transparency. It is aimed at AI practitioners, including data scientists and compliance officers, who are involved in the development and deployment of AI systems and need to adhere to ethical standards.
Topic 5
  • Fundamentals of Generative AI: This domain explores the basics of generative AI, focusing on techniques for creating new content from learned patterns, including text and image generation. It targets professionals interested in understanding generative models, such as developers and researchers in AI.

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Amazon AWS Certified AI Practitioner Sample Questions (Q97-Q102):

NEW QUESTION # 97
A company wants to create a chatbot by using a foundation model (FM) on Amazon Bedrock. The FM needs to access encrypted data that is stored in an Amazon S3 bucket.
The data is encrypted with Amazon S3 managed keys (SSE-S3).
The FM encounters a failure when attempting to access the S3 bucket data.
Which solution will meet these requirements?

  • A. Ensure that the S3 data does not contain sensitive information.
  • B. Use prompt engineering techniques to tell the model to look for information in Amazon S3.
  • C. Ensure that the role that Amazon Bedrock assumes has permission to decrypt data with the correct encryption key.
  • D. Set the access permissions for the S3 buckets to allow public access to enable access over the internet.

Answer: C


NEW QUESTION # 98
A company is developing a new model to predict the prices of specific items. The model performed well on the training dataset. When the company deployed the model to production, the model's performance decreased significantly.
What should the company do to mitigate this problem?

  • A. Increase the volume of data that is used in training.
  • B. Reduce the volume of data that is used in training.
  • C. Increase the model training time.
  • D. Add hyperparameters to the model.

Answer: A


NEW QUESTION # 99
A company is using a pre-trained large language model (LLM) to build a chatbot for product recommendations. The company needs the LLM outputs to be short and written in a specific language.
Which solution will align the LLM response quality with the company's expectations?

  • A. Adjust the prompt.
  • B. Choose an LLM of a different size.
  • C. Increase the temperature.
  • D. Increase the Top K value.

Answer: A


NEW QUESTION # 100
A company is using a pre-trained large language model (LLM) to build a chatbot for product recommendations. The company needs the LLM outputs to be short and written in a specific language.
Which solution will align the LLM response quality with the company's expectations?

  • A. Adjust the prompt.
  • B. Choose an LLM of a different size.
  • C. Increase the temperature.
  • D. Increase the Top K value.

Answer: A

Explanation:
Adjusting the prompt is the correct solution to align the LLM outputs with the company's expectations for short, specific language responses.
* Adjust the Prompt:
* Modifying the prompt can guide the LLM to produce outputs that are shorter and tailored to the desired language.
* A well-crafted prompt can provide specific instructions to the model, such as "Answer in a short sentence in Spanish."
* Why Option A is Correct:
* Control Over Output: Adjusting the prompt allows for direct control over the style, length, and language of the LLM outputs.
* Flexibility: Prompt engineering is a flexible approach to refining the model's behavior without modifying the model itself.
* Why Other Options are Incorrect:
* B. Choose an LLM of a different size: The model size does not directly impact the response length or language.
* C. Increase the temperature: Increases randomness in responses but does not ensure brevity or specific language.
* D. Increase the Top K value: Affects diversity in model output but does not align directly with response length or language specificity.


NEW QUESTION # 101
A company is building a chatbot to improve user experience. The company is using a large language model (LLM) from Amazon Bedrock for intent detection. The company wants to use few-shot learning to improve intent detection accuracy.
Which additional data does the company need to meet these requirements?

  • A. Pairs of user messages and correct user intents
  • B. Pairs of chatbot responses and correct user intents
  • C. Pairs of user messages and correct chatbot responses
  • D. Pairs of user intents and correct chatbot responses

Answer: A

Explanation:
Few-shot learning involves providing a model with a few examples (shots) to learn from. For improving intent detection accuracy in a chatbot using a large language model (LLM), the data should consist of pairs of user messages and their corresponding correct intents.
* Few-shot Learning for Intent Detection:
* Few-shot learning aims to enable the model to learn from a small number of examples. For intent detection, the model needs to understand the relationship between user messages and the intended action or meaning.
* Providing examples of user messages and the correct user intents allows the model to learn patterns in the phrasing or language that corresponds to each intent.
* Why Option C is Correct:
* User Messages and Intents: These examples directly teach the model how to map a user's input to the appropriate intent, which is the goal of intent detection in chatbots.
* Improves Accuracy: By using few-shot learning with these examples, the model can generalize better from limited data, improving intent detection.
* Why Other Options are Incorrect:
* A. Pairs of chatbot responses and correct user intents: Incorrect because it does not focus on user input but rather on outputs.
* B. Pairs of user messages and correct chatbot responses: This would be useful for response generation, not intent detection.
* D. Pairs of user intents and correct chatbot responses: Again, this is not aligned with detecting intents but with generating responses.


NEW QUESTION # 102
......

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