Free PDF Oracle - 1z0-1195-26 - Oracle AI Database Foundations Associate Pass-Sure Test Book

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Oracle 1z0-1195-26 Exam Syllabus Topics:

SectionObjectives
Topic 1: Working with AI and Vector Foundations- Explain vectors, embeddings, and the Oracle VECTOR data type
- Describe AI, AGI, and machine learning foundations
- Apply vector distance and indexing concepts to similarity search needs
Topic 2: Identifying Oracle AI Database 26ai Strategy and Autonomous AI Database Basics- Create an Autonomous AI Database Serverless instance for a basic workload
- Explain modern data characteristics and the Oracle AI Database 26ai converged strategy
- Describe Autonomous AI Database characteristics, offerings, and deployment choices
Topic 3: Working with JSON and Graph in Oracle AI Database- Distinguish when graph capabilities and Property Graph Views fit a business use case
- Explain JSON and Oracle AI Database JSON capabilities
- Describe core graph concepts and graph analytic capabilities
Topic 4: Implementing Select AI and AI Vector Search in Autonomous AI Database- Apply AI Vector Search to combined semantic and business-data search scenarios
- Describe Select AI in Autonomous AI Database
- Determine how AI Vector Search supports GenAI pipelines and RAG
Topic 5: Building Low-Code Applications and Agentic AI- Describe Oracle APEX as Oracle's low-code platform
- Choose the appropriate Agent Factory capability for a no-code AI agent use case
Topic 6: Using Oracle Database Actions and Data Studio Tools- Apply Data Studio capabilities to data discovery, integration, analysis, and sharing tasks
- Describe Database Actions and core development tools

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1z0-1195-26 New Question | Detail 1z0-1195-26 Explanation

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Oracle AI Database Foundations Associate Sample Questions (Q22-Q27):

NEW QUESTION # 22
A company wants a GenAI assistant that answers policy questions by grounding responses in its internal documents.
Which use of AI Vector Search best supports this design?

Answer: A

Explanation:
Comprehensive and Detailed 100 to 150 words of Explanation From Oracle AI Database topics:
Retrieval-Augmented Generation grounds an LLM by retrieving relevant enterprise content before generation.
Oracle Select AI with RAG uses AI Vector Search and semantic similarity to locate the top matching document chunks from a vector store, then supplies those retrieved texts together with the user's question to the LLM. This gives the model current, organization-specific context and reduces hallucination risk. Keyword- only retrieval can miss semantically related passages that use different wording, while graph edge identifiers are not a substitute for document content. Returning unfiltered database patches also does not provide targeted grounding. Therefore, the correct design is to retrieve semantically similar chunks and use them as context for generation. This matches Oracle's documented Select AI RAG workflow and the AI/vector foundations objectives. Oracle Docs


NEW QUESTION # 23
What is the main difference between Autonomous AI Database Serverless and Dedicated deployment choices?

Answer: A

Explanation:
The fundamental distinction is that Serverless emphasizes simplicity and elasticity , whereas Dedicated provides isolated infrastructure and greater operational customization . This is the answer explicitly identified in the uploaded question set. Oracle documentation describes the Serverless model as ultra-simple and elastic: customers manage the Autonomous AI Database while Oracle manages the underlying Exadata infrastructure. Dedicated, by contrast, provides exclusive compute, storage, network, and database resources.
Oracle also characterizes Dedicated as a private-cloud-in-public-cloud deployment model with high levels of security isolation and governance. Dedicated environments can support customizable operational policies involving workload placement, update scheduling, availability, capacity usage, and other infrastructure-level concerns. Serverless removes much of that infrastructure planning and is therefore well suited to organizations prioritizing rapid provisioning and elastic consumption.
Neither deployment is restricted exclusively to JSON or relational workloads, and the distinction is not primarily about available developer SQL tools. Option A reverses the infrastructure characteristics: it is Dedicated-not Serverless-that supplies the isolated dedicated resource model.
Study Guide reference: Identifying Oracle AI Database 26ai Strategy and Autonomous AI Database Basics - Serverless versus Dedicated deployment architecture.


NEW QUESTION # 24
Which statement describes Artificial Intelligence?

Answer: B

Explanation:
Artificial Intelligence describes computing systems designed to perform functions associated with human intelligence, including learning, reasoning, language understanding, recognition, prediction, and decision support. Oracle characterizes AI as computing systems trained to simulate human intelligence and notes that AI systems can learn from data, solve problems, process diverse inputs, and pursue defined objectives. Oracle also describes AI technologies as systems or machines that mimic human intelligence when performing tasks.
Data and algorithms are central to modern AI implementations. Machine-learning models learn patterns from training data, while generative models can synthesize new outputs based on learned representations and prompts. However, AI does not imply that training or grounding data is unnecessary. Nor is current enterprise AI equivalent to Artificial General Intelligence (AGI); most deployed systems remain specialized around particular tasks and workloads.
AI also does not replace database technology. Oracle AI Database instead integrates AI capabilities with relational, JSON, graph, spatial, vector, and other database models so that intelligent applications can operate directly on governed enterprise data. Oracle AI Database 26ai specifically emphasizes AI capabilities while preserving converged data-management functionality. The uploaded question source marks option A as correct.
Study Guide reference: Identifying Oracle AI Database 26ai Strategy and Autonomous AI Database Basics - AI fundamentals and Oracle's AI-enabled database strategy.


NEW QUESTION # 25
A project team wants a built-in workspace to analyze data assets and support sharing or collaboration after preparation work is complete.
Which choice fits that requirement?

Answer: A

Explanation:
Comprehensive and Detailed 100 to 150 words of Explanation From Oracle AI Database topics:
Data Studio is the correct choice because Oracle positions it as the integrated, web-based data workspace inside Database Actions for loading, discovering, cataloging, transforming, analyzing, sharing, enriching, and automating data workflows. Its Data Analysis capability supports reports and visual analysis, while Data Share and Data Marketplace support governed distribution and collaboration after data preparation. SQL Worksheet is primarily for SQL and PL/SQL execution; Database Users is for user administration; and Private Endpoint configuration is a networking control, not a data-analysis workspace. Therefore, a team that needs to continue from prepared data into analysis and sharing should use Data Studio. This maps directly to the Oracle AI Database topic "Using Oracle Database Actions and Data Studio Tools." Oracle Docs


NEW QUESTION # 26
A team needs faster similarity search at scale and accepts approximate top-K results. Which feature should they use?

Answer: C


NEW QUESTION # 27
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