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NEW QUESTION 36
A Data Scientist is developing a machine learning model to classify whether a financial transaction is fraudulent. The labeled data available for training consists of 100,000 non-fraudulent observations and 1,000 fraudulent observations.
The Data Scientist applies the XGBoost algorithm to the data, resulting in the following confusion matrix when the trained model is applied to a previously unseen validation dataset. The accuracy of the model is 99.1%, but the Data Scientist has been asked to reduce the number of false negatives.
AWS-Certified-Machine-Learning-Specialty-8e9db719c4ca75fed75a393c1cccaf6b.jpg
Which combination of steps should the Data Scientist take to reduce the number of false positive predictions by the model? (Choose two.)

  • A. Increase the XGBoost max_depth parameter because the model is currently underfitting the data.
  • B. Increase the XGBoost scale_pos_weight parameter to adjust the balance of positive and negative weights.
  • C. Decrease the XGBoost max_depth parameter because the model is currently overfitting the data.
  • D. Change the XGBoost eval_metric parameter to optimize based on AUC instead of error.
  • E. Change the XGBoost eval_metric parameter to optimize based on rmse instead of error.

Answer: C,D

 

NEW QUESTION 37
An e-commerce company needs a customized training model to classify images of its shirts and pants products The company needs a proof of concept in 2 to 3 days with good accuracy Which compute choice should the Machine Learning Specialist select to train and achieve good accuracy on the model quickly?

  • A. p3.2xlarge (GPU accelerated computing)
  • B. r5.2xlarge (memory optimized)
  • C. p3 8xlarge (GPU accelerated computing)
  • D. . m5 4xlarge (general purpose)

Answer: A

 

NEW QUESTION 38
A retail company wants to update its customer support system. The company wants to implement automatic routing of customer claims to different queues to prioritize the claims by category.
Currently, an operator manually performs the category assignment and routing. After the operator classifies and routes the claim, the company stores the claim's record in a central database. The claim's record includes the claim's category.
The company has no data science team or experience in the field of machine learning (ML). The company's small development team needs a solution that requires no ML expertise.
Which solution meets these requirements?

  • A. Export the database to a .csv file with one column: claim_text. Use the Amazon SageMaker Latent Dirichlet Allocation (LDA) algorithm and the .csv file to train a model. Use the LDA algorithm to detect labels automatically. Use SageMaker to deploy the model to an inference endpoint. Develop a service in the application to use the inference endpoint to process incoming claims, predict the labels, and route the claims to the appropriate queue.
  • B. Export the database to a .csv file with two columns: claim_label and claim_text. Use Amazon Comprehend custom classification and the .csv file to train the custom classifier. Develop a service in the application to use the Amazon Comprehend API to process incoming claims, predict the labels, and route the claims to the appropriate queue.
  • C. Export the database to a .csv file with two columns: claim_label and claim_text. Use the Amazon SageMaker Object2Vec algorithm and the .csv file to train a model. Use SageMaker to deploy the model to an inference endpoint. Develop a service in the application to use the inference endpoint to process incoming claims, predict the labels, and route the claims to the appropriate queue.
  • D. Use Amazon Textract to process the database and automatically detect two columns: claim_label and claim_text. Use Amazon Comprehend custom classification and the extracted information to train the custom classifier. Develop a service in the application to use the Amazon Comprehend API to process incoming claims, predict the labels, and route the claims to the appropriate queue.

Answer: B

 

NEW QUESTION 39
A Marketing Manager at a pet insurance company plans to launch a targeted marketing campaign on social media to acquire new customers. Currently, the company has the following data in Amazon Aurora:
* Profiles for all past and existing customers
* Profiles for all past and existing insured pets
* Policy-level information
* Premiums received
* Claims paid
What steps should be taken to implement a machine learning model to identify potential new customers on social media?

  • A. Use clustering on customer profile data to understand key characteristics of consumer segments. Find similar profiles on social media
  • B. Use regression on customer profile data to understand key characteristics of consumer segments. Find similar profiles on social media
  • C. Use a recommendation engine on customer profile data to understand key characteristics of consumer segments. Find similar profiles on social media.
  • D. Use a decision tree classifier engine on customer profile data to understand key characteristics of consumer segments. Find similar profiles on social media.

Answer: C

 

NEW QUESTION 40
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