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Question 152 - DAS-C01 discussion

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A company wants to use an automatic machine learning (ML) Random Cut Forest (RCF) algorithm to visualize complex realworld scenarios, such as detecting seasonality and trends, excluding outers, and imputing missing values. The team working on this project is non-technical and is looking for an out-of-the-box solution that will require the LEAST amount of management overhead. Which solution will meet these requirements?

A.
Use an AWS Glue ML transform to create a forecast and then use Amazon QuickSight to visualize the data.
Answers
A.
Use an AWS Glue ML transform to create a forecast and then use Amazon QuickSight to visualize the data.
B.
Use Amazon QuickSight to visualize the data and then use ML-powered forecasting to forecast the key business metrics.
Answers
B.
Use Amazon QuickSight to visualize the data and then use ML-powered forecasting to forecast the key business metrics.
C.
Use a pre-build ML AMI from the AWS Marketplace to create forecasts and then use Amazon QuickSight to visualize the data.
Answers
C.
Use a pre-build ML AMI from the AWS Marketplace to create forecasts and then use Amazon QuickSight to visualize the data.
D.
Use calculated fields to create a new forecast and then use Amazon QuickSight to visualize the data.
Answers
D.
Use calculated fields to create a new forecast and then use Amazon QuickSight to visualize the data.
Suggested answer: A

Explanation:


Reference: https://aws.amazon.com/blogs/big-data/query-visualize-and-forecast-trufactor-web-session-intelligence-with-awsdata-exchange/

asked 16/09/2024
Rekik Tesfaye
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