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Questions # 1:

What is the primary function of an embedding model in the context of vector search?

Options:

A.

To define the schema for a vector database

B.

To execute similarity search operations within a database

C.

To transform text or data into numerical vector representations

D.

To store vectors in a structured format for efficient retrieval

Questions # 2:

What is the advantage of using Euclidean Squared Distance rather than Euclidean Distance in similarity search queries?

Options:

A.

It is the default distance metric for Oracle AI Vector Search

B.

It supports hierarchical partitioning of vectors

C.

It is simpler and faster because it avoids square-root calculations

D.

It guarantees higher accuracy than Euclidean Distance

Questions # 3:

What is the primary difference between the HNSW and IVF vector indexes in Oracle Database 23ai?

Options:

A.

Both operate identically but differ in memory usage

B.

HNSW guarantees accuracy, whereas IVF sacrifices performance for accuracy

C.

HNSW uses an in-memory neighbor graph for faster approximate searches, whereas IVF uses the buffer cache with partitions

D.

HNSW is partition-based, whereas IVF uses neighbor graphs for indexing

Questions # 4:

Which statement best describes the core functionality and benefit of Retrieval Augmented Generation (RAG) in Oracle Database 23ai?

Options:

A.

It empowers LLMs to interact with private enterprise data stored within the database, leading to more context-aware and precise responses to user queries

B.

It primarily aims to optimize the performance and efficiency of LLMs by using advanced data retrieval techniques, thus minimizing response times and reducing computational overhead

C.

It allows users to train their own specialized LLMs directly within the Oracle Database environment using their internal data, thereby reducing reliance on external AI providers

D.

It enables Large Language Models (LLMs) to access and process real-time data streams from diverse sources to generate the most up-to-date insights

Questions # 5:

If a query vector uses a different distance metric than the one used to create the index, whathappens?

Options:

A.

The query fails

B.

An exact match search is triggered

C.

The index automatically updates

D.

A warning is logged, but the query executes

Questions # 6:

You are tasked with finding the closest matching sentences across books, where each book has multiple paragraphs and sentences. Which SQL structure should you use?

Options:

A.

A nested query with ORDER BY

B.

Exact similarity search with a single query vector

C.

GROUP BY with vector operations

D.

FETCH PARTITIONS BY clause

Questions # 7:

How does an application use vector similarity search to retrieve relevant information from a database, and how is this information then integrated into the generation process?

Options:

A.

Encodes the question and database chunks into vectors, finds the most similar using cosine similarity, and includes them in the LLM prompt

B.

Trains a separate LLM on the database and uses it to answer, ignoring the general LLM

C.

Converts the question to keywords, searches for matches, and inserts the text into the response

D.

Clusters similar text chunks and randomly selects one from the most relevant cluster

Questions # 8:

What is a key advantage of using GoldenGate 23ai for managing and distributing vector data for AI applications?

Options:

A.

Real-time vector data updates across locations

B.

Automatic translation of vector embeddings between formats

C.

Specialized vector embedding compression

D.

Built-in version control for vector data

Questions # 9:

Which Oracle Cloud Infrastructure (OCI) service is directly integrated with Select AI?

Options:

A.

OCI Language

B.

OCI Generative AI

C.

OCI Vision

D.

OCI Data Science

Questions # 10:

What security enhancement is introduced in Exadata System Software 24ai?

Options:

A.

Integration with third-party security tools

B.

Enhanced encryption algorithm for data at rest

C.

SNMP security (Security Network Management Protocol)

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