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Oracle 1Z0-1110-26 Exam Syllabus Topics:

SectionWeightObjectives
MLOps and OCI Integration20%- OCI ecosystem
  • 1. IAM and security
    • 2. Object Storage
      - Automation and pipelines
      • 1. CI/CD integration
        • 2. Model lifecycle management
          OCI Data Science Service30%- Projects and notebooks
          • 1. Conda environments
            • 2. Notebook sessions
              - Model catalog
              • 1. Model versioning
                • 2. Model metadata
                  Model Development and Deployment30%- Model training
                  • 1. Hyperparameter optimization
                    • 2. Experiments
                      - Model deployment
                      • 1. Deployment creation
                        • 2. Prediction endpoints
                          Machine Learning Fundamentals20%- Supervised learning
                          • 1. Classification
                            • 2. Regression
                              - Unsupervised learning
                              • 1. Dimensionality reduction
                                • 2. Clustering

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                                  Oracle Cloud Infrastructure Data Science Professional Sample Questions (Q10-Q15):

                                  NEW QUESTION # 10
                                  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?

                                  Answer: A,B,D

                                  Explanation:
                                  Detailed Answer in Step-by-Step Solution:
                                  Objective: Identify three data formats supported by ADS SDK for loading data.
                                  Understand ADS SDK: Facilitates data loading into notebook sessions via DatasetFactory.
                                  Evaluate Options:
                                  A . DOCX: Not natively supported&#x2014;requires conversion (e.g., to text).
                                  B . Pandas DataFrame: Supported&#x2014;core format for data manipulation in ADS.
                                  C . JSON: Supported&#x2014;common structured data format.
                                  D . Raw Images: Not directly supported&#x2014;image data needs preprocessing (e.g., via Vision).
                                  E . XML: Supported&#x2014;parseable structured format.
                                  Reasoning: ADS focuses on tabular/structured data&#x2014;B, C, E align; A and D require external handling.
                                  Conclusion: B, C, E are correct.
                                  OCI documentation states: &#x201C;ADS SDK&#x2019;s DatasetFactory supports loading data from formats like Pandas DataFrames (B), JSON (C), and XML (E), enabling easy integration into notebook sessions.&#x201D; DOCX (A) isn&#x2019;t natively handled, and raw images (D) require preprocessing outside ADS&#x2014;B, C, E match the supported list.
                                  1: Oracle Cloud Infrastructure ADS SDK Documentation, &quot;Supported Data Formats&quot;.


                                  NEW QUESTION # 11
                                  What is the first step in the data science process?

                                  Answer: D

                                  Explanation:
                                  Detailed Answer in Step-by-Step Solution:
                                  Objective: Identify the initial data science step.
                                  Define Process: Starts with problem definition, then data and modeling.
                                  Evaluate Options:
                                  A: Data collection&#x2014;Second step after problem definition.
                                  B: Modeling&#x2014;Later stage.
                                  C: Hypothesis&#x2014;Sets the goal, first step&#x2014;correct.
                                  D: Data owners&#x2014;Collaboration, not the start.
                                  Reasoning: Hypothesis drives the process (e.g., &#x201C;Can we predict churn?&#x201D;).
                                  Conclusion: C is correct.
                                  OCI documentation states: &#x201C;The data science process begins with defining an analytical hypothesis to address a business problem, followed by data collection and analysis.&#x201D; C precedes A, B, and D&#x2014;aligning with OCI&#x2019;s structured approach.
                                  1: Oracle Cloud Infrastructure Data Science Documentation, &quot;Data Science Process&quot;.


                                  NEW QUESTION # 12
                                  Which of the following best describes the principal goal of data science?

                                  Answer: A

                                  Explanation:
                                  Detailed Answer in Step-by-Step Solution:
                                  Objective: Define data science&#x2019;s main goal.
                                  Evaluate Options:
                                  A: Archiving&#x2014;Not the focus; too narrow.
                                  B: Analyze for insights/business value&#x2014;Core purpose&#x2014;correct.
                                  C: Prep for analytics&#x2014;Means, not the end goal.
                                  D: Output-focused&#x2014;Vague, incomplete.
                                  Reasoning: B captures the actionable insight generation central to data science.
                                  Conclusion: B is correct.
                                  OCI documentation defines data science as &#x201C;mining and analyzing large datasets to uncoveractionable insights for operational improvements and business value.&#x201D; A is storage-focused, C is preparatory, and D is unclear&#x2014;only B reflects the principal goal per OCI&#x2019;s mission.
                                  1: Oracle Cloud Infrastructure Data Science Documentation, &quot;What is Data Science?&quot;.


                                  NEW QUESTION # 13
                                  Which statement about resource principals is true?

                                  Answer: C

                                  Explanation:
                                  Detailed Answer in Step-by-Step Solution:
                                  Define Resource Principals: They allow OCI resources (e.g., notebook sessions) to authenticate to other OCI services without user credentials.
                                  Evaluate Options:
                                  A: False&#x2014;Resource principals eliminate manual credential management.
                                  B: False&#x2014;They&#x2019;re secure, leveraging IAM policies, not less secure than API keys.
                                  C: False&#x2014;Data Science supports resource principals for accessing resources (e.g., Object Storage).
                                  D: True&#x2014;Resource principals are an IAM feature authorizing resources as actors.
                                  Reasoning: D captures the essence of resource principals as an IAM mechanism.
                                  Conclusion: D is correct.
                                  OCI documentation states: &#x201C;A resource principal is an IAM feature that enables OCI resources, such as compute instances or notebook sessions, to act as principal actors and authenticate to other OCI services using policies.&#x201D; This refutes A (no credentials needed), B (secure method), and C (supported in Data Science), making D the accurate statement.
                                  1: Oracle Cloud Infrastructure IAM Documentation, &quot;Resource Principals&quot;.


                                  NEW QUESTION # 14
                                  You have trained three different models on your dataset using Oracle AutoML. You want to visualize the behavior of each of the models, including the baseline model, on the test set. Which class should be used from the Accelerated Data Science (ADS) SDK to visually compare the models?

                                  Answer: A

                                  Explanation:
                                  Detailed Answer in Step-by-Step Solution:
                                  Objective: Identify the ADS SDK class for visualizing model performance comparison.
                                  Understand ADS Classes: Each serves a specific ML purpose&#x2014;visualization requires evaluation tools.
                                  Evaluate Options:
                                  A . EvaluationMetrics: Likely a typo&#x2014;meant EvaluationsMetrics? Not a standalone class for visualization.
                                  B . ADSEvaluator: Designed to evaluate and visualize model performance (e.g., ROC curves)&#x2014;correct.
                                  C . ADSExplainer: Explains model predictions (e.g., SHAP), not comparative visualization.
                                  D . ADSTuner: Tunes hyperparameters, not for visualization.
                                  Reasoning: ADSEvaluator provides comparative plots (e.g., precision-recall) for multiple models, including baselines.
                                  Conclusion: B is correct.
                                  OCI documentation states: &#x201C;The ADSEvaluator class in ADS SDK (B) enables visualization of model performance metrics, such as ROC curves and confusion matrices, for multiple models on a test set, including baselines.&#x201D; EvaluationMetrics (A) isn&#x2019;t a class, ADSExplainer (C) focuses on interpretability, and ADSTuner (D) is for tuning&#x2014;only B fits the visualization need per OCI&#x2019;s ADS toolkit.
                                  1: Oracle Cloud Infrastructure ADS SDK Documentation, &quot;ADSEvaluator Class&quot;.


                                  NEW QUESTION # 15
                                  ......

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