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Questions # 11:

You want to make your model more parsimonious to reduce the cost of collecting and processing data. You plan to do this by removing features that are highly correlated. You would like to create a heatmap that displays the correlation so that you can identify candidate features to remove. Which Accelerated Data Science (ADS) SDK method would be appropriate to display the correlation between Continuous and Categorical features?

Options:

A.

corr()

B.

correlation_ratio_plot()

C.

pearson_plot()

D.

cramersv_plot()

Questions # 12:

Which OCI service provides a managed Kubernetes service for deploying, scaling, and managing containerized applications?

Options:

A.

Oracle Cloud Infrastructure Container Registry

B.

Oracle Cloud Infrastructure Load Balancing

C.

Oracle Cloud Infrastructure Container Engine for Kubernetes

D.

Oracle Cloud Infrastructure Streaming

Questions # 13:

The feature type TechJob has the following registered validators:

    TechJob.validator.register(name=’is_tech_job’, handler=is_tech_job_default_handler)

    TechJob.validator.register(name=’is_tech_job’, handler=is_tech_job_open_handler, condition=('job_family',))

    TechJob.validator.register(name=’is_tech_job’, handler=is_tech_job_closed_handler, condition=('job_family': 'IT'))When you run is_tech_job(job_family='Engineering'), what does the feature type validator system do?

Options:

A.

Execute the is_tech_job_default_handler handler

B.

Throw an error because the system cannot determine which handler to run

C.

Execute the is_tech_job_closed_handler handler

D.

Execute the is_tech_job_open_handler handler

Questions # 14:

Which is NOT a part of Observability and Management Services?

Options:

A.

Event Services

B.

OCI Management Service

C.

Logging Analytics

D.

Logging

Questions # 15:

You want to write a Python script to create a collection of different projects for your data science team. Which Oracle Cloud Infrastructure (OCI) Data Science interface would you use?

Options:

A.

The OCI Software Development Kit (SDK)

B.

OCI Console

C.

Command Line Interface (CLI)

D.

Mobile App

Questions # 16:

You are a data scientist trying to load data into your notebook session. You understand that Accelerated Data Science (ADS) SDK supports loading various data formats. Which of the following THREE are ADS-supported data formats?

Options:

A.

DOCX

B.

Pandas DataFrame

C.

JSON

D.

Raw Images

E.

XML

Questions # 17:

Which of the following TWO non-open source JupyterLab extensions has Oracle Cloud Infrastructure (OCI) Data Science developed and added to the notebook session experience?

Options:

A.

Environment Explorer

B.

Table of Contents

C.

Command Palette

D.

Notebook Examples

E.

Terminal

Questions # 18:

You are a data scientist working inside a notebook session and you attempt to pip install a package from a public repository that is not included in your conda environment. After running this command, you get a network timeout error. What might be missing from your networking configuration?

Options:

A.

FastConnect to an on-premises network

B.

Primary Virtual Network Interface Card (VNIC)

C.

NAT Gateway with public internet access

D.

Service Gateway with private subnet access

Questions # 19:

You have received machine learning model training code, without clear information about the optimal shape to run the training. How would you proceed to identify the optimal compute shape for your model training that provides a balanced cost and processing time?

Options:

A.

Start with a smaller shape and monitor the Job Run metrics and time required to complete the model training. If the compute shape is not fully utilized, tune the model parameters, and rerun the job. Repeat the process until the shape resources are fully utilized

B.

Start with the strongest compute shape Jobs support and monitor the Job Run metrics and time required to complete the model training. Tune the model so that it utilizes as much compute resources as possible, even at an increased cost

C.

Start with a smaller shape and monitor the utilization metrics and time required to complete the model training. If the compute shape is fully utilized, change to compute that has more resources and rerun the job. Repeat the process until the processing time does not improve

D.

Start with a random compute shape and monitor the utilization metrics and time required to finish the model training. Perform model training optimizations and performance tests in advance to identify the right compute shape before running the model training as a job

Questions # 20:

Which OCI service provides a scalable environment for developers and data scientists to run Apache Spark applications at scale?

Options:

A.

Data Science

B.

Anomaly Detection

C.

Data Labeling

D.

Data Flow

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