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Oracle 1z0-1195-26 Exam Syllabus Topics:

SectionWeightObjectives
Converged Database — Multi-Model and AI Capabilities~15%- JSON, Graph, Spatial, and key-value data support
- Oracle AI Vector Search concepts
- Select AI and natural language querying
Security, Resilience, and Cloud Integration~21%- Database security architectures and data protection
- High availability, backup, and disaster recovery
- Cloud-native database services and deployment strategies
Data Management and Oracle Data Platform Overview~11%- Oracle Data Strategy and multi-cloud deployment models
- Modern data platform value and architecture
- Data management concepts and data types
MySQL HeatWave and NoSQL Services~11%- MySQL HeatWave architecture and analytics
- Oracle NoSQL Database features and use cases
Autonomous AI Database and Tools~16%- Shared vs dedicated infrastructure
- Core features of Autonomous AI Database
- Built-in management and query tools
Oracle Database Services — Exadata, DBCS, and Engineered Systems~11%- Exadata architecture and features
- Database Cloud Service (DBCS) characteristics
Oracle Machine Learning and AI Integration~15%- AI agents and LLM integration
- In-database machine learning algorithms
- Oracle Data Studio and visualization

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Hundreds of IT aspirants have cracked the Oracle AI Database Foundations Associate 1z0-1195-26 examination by just preparing with our real test questions. If you also want to become a Oracle 1z0-1195-26 certified without any anxiety, download Network Security Specialist 1z0-1195-26 updated test questions and start preparing today. These real 1z0-1195-26 Dumps come in desktop practice exam software, web-based practice test, and Oracle 1z0-1195-26 PDF document. Below are specifications of these three formats.

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

NEW QUESTION # 22
A data engineer is creating a vector similarity query and wants to choose the distance metric correctly.
Which guidance should be applied?

Answer: B

Explanation:
Comprehensive and Detailed 100 to 150 words of Explanation From Oracle AI Database topics:
Oracle recommends using the distance metric associated with the embedding model that generated the vectors. Different metrics-such as cosine, Euclidean, dot product, Manhattan, or Hamming-measure similarity in different ways, and an embedding model is normally trained or intended to be evaluated with a particular metric. Oracle's AI Vector Search documentation states that it is generally best to match the query distance metric to the metric used to train the embedding model. Oracle also notes that a vector index should be created and searched with the appropriate distance function; using a different function can prevent index use and trigger exact search behavior. Table row count, maintenance schedules, and the presence of JSON attributes do not determine semantic vector geometry. Therefore, option C is the correct guidance. Oracle Docs


NEW QUESTION # 23
What does Select AI enable in Autonomous AI Database?

Answer: B

Explanation:
Select AI enables users to interact with Autonomous AI Database by expressing requests in natural language rather than manually constructing SQL. Oracle documents that Select AI uses generative AI and large language models to convert natural-language input into Oracle SQL. Depending on the requested action, the generated SQL can be displayed, explained, executed, or its results can be transformed into a natural-language response. This makes database information accessible to users who understand the business question but may not know SQL syntax or the underlying schema.
Internally, Select AI can augment a prompt with schema metadata, interact with the configured LLM, generate SQL, run the query, and optionally narrate the resulting data. It also extends beyond NL2SQL into Retrieval-Augmented Generation, conversations, and other generative-AI capabilities. It does not replace relational SQL with graph pattern matching, manage encryption-key rotation, or provision Autonomous AI Database infrastructure. Those are unrelated database administration or graph functions. The supplied question bank explicitly marks the natural-language data-query capability as correct.
Study Guide reference: Implementing Select AI and AI Vector Search in Autonomous AI Database - Select AI, natural-language interaction, NL2SQL, and LLM integration.


NEW QUESTION # 24
Which set of characteristics is commonly used to describe Autonomous AI Database?

Answer: D

Explanation:
The uploaded question set identifies self-driving, self-securing, and self-repairing as the defining Autonomous AI Database characteristics. Oracle documentation uses the same terminology when describing Autonomous Database services.
Self-driving refers to automated database-management activities that traditionally require significant DBA intervention, including provisioning, tuning, optimization, backups, patching, and scaling. Self-securing encompasses automated security practices designed to protect database infrastructure and data, including encryption and security maintenance. Self-repairing describes automated availability and fault-management capabilities intended to reduce downtime and recover from infrastructure or database failures with minimal manual involvement.
These attributes are central to Oracle's Autonomous Database strategy because the service shifts routine infrastructure and database operations from customer-managed procedures toward automated cloud-service capabilities. This allows development and data teams to focus on application logic and business workloads rather than routine database administration.
The alternative combinations are not Oracle's established characterization. Autonomous AI Database does not promise autonomous application coding, licensing, documentation creation, or architectural design. Those terms incorrectly broaden the scope of database automation beyond the capabilities Oracle associates with the Autonomous platform.
Study Guide reference: Identifying Oracle AI Database 26ai Strategy and Autonomous AI Database Basics - Autonomous characteristics and automated database operations.


NEW QUESTION # 25
What does Oracle mean by a converged database strategy?

Answer: B

Explanation:
Comprehensive and Detailed 100 to 150 words of Explanation From Oracle AI Database topics:
A converged database strategy means using one database engine to support multiple modern data models and workload types rather than deploying a separate specialized database for each requirement. Oracle AI Database provides native support for relational, JSON/document, vector, graph, spatial, text, and other data, while supporting transactional, analytic, AI Vector Search, and mixed workloads. This reduces data movement, synchronization, security fragmentation, and operational complexity. A converged database does not mean one reporting tool replaces every access language, one application server manages unrelated databases, or one storage tier is reserved only for AI. Those choices confuse application tooling or storage design with the database architecture itself. Option D accurately expresses Oracle's converged strategy:
multiple data types and workloads supported together in a unified database platform. Oracle


NEW QUESTION # 26
A data analyst wants to discover data, load it into the platform, and prepare it for later use without leaving the built-in tools. Which workspace fits this task?

Answer: C

Explanation:
Data Studio is the correct built-in workspace because its purpose directly covers data discovery, loading, preparation, transformation, analysis, cataloging, sharing, and related self-service workflows. The uploaded source designates Data Studio as the correct answer. Oracle's current Autonomous AI Database documentation states that Data Studio can be used to load, discover, catalog, transform, analyze, share, enrich, and automate data workflows through a web-based interface.
Data Studio is available through Database Actions and contains specialized tools including Data Load , Catalog , Data Transforms , Data Analysis , and Data Insights . Data Load can ingest or link data from local files, remote databases, cloud storage, and live feeds, while Catalog supports searching, discovering, inspecting, and managing available data assets.
OCI Vault addresses secrets and encryption-key management rather than data preparation.
VECTOR_DISTANCE is an individual SQL function used for vector comparisons, not an integrated analyst workspace. A Property Graph View defines a graph representation over data but likewise does not provide general discovery and loading functionality.
Study Guide reference: Using Oracle Database Actions and Data Studio Tools - Data Studio, Data Load, Catalog, Data Transforms, and self-service data preparation.


NEW QUESTION # 27
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