2026 New 1Z0-184-25 Exam Questions Real Oracle Dumps [Q23-Q40]

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2026 New 1Z0-184-25  Exam Questions Real Oracle Dumps

Course 2026 1Z0-184-25 Test Prep Training Practice Exam Download

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

 
 
 
 

NEW QUESTION 24
Which statement best describes the core functionality and benefit of Retrieval Augmented Generation (RAG) in Oracle Database 23ai?

 
 
 
 

NEW QUESTION 25
What is the primary function of an embedding model in the context of vector search?

 
 
 
 

NEW QUESTION 26
In the following Python code, what is the significance of prepending the source filename to each text chunk before storing it in the vector database?
bash
CollapseWrapCopy
docs = [{“text”: filename + “|” + section, “path”: filename} for filename, sections in faqs.items() for section in sections]
# Sample the resulting data
docs[:2]

 
 
 
 

NEW QUESTION 27
What is the purpose of the VECTOR_DISTANCE function in Oracle Database 23ai similarity search?

 
 
 
 

NEW QUESTION 28
When generating vector embeddings for a new dataset outside of Oracle Database 23ai, which factor is crucial to ensure meaningful similarity search results?

 
 
 
 

NEW QUESTION 29
How is the security interaction between Autonomous Database and OCI Generative AI managed in the context of Select AI?

 
 
 
 

NEW QUESTION 30
Which is NOT a feature or capability related to AI and Vector Search in Exadata?

 
 
 
 

NEW QUESTION 31
A machine learning team is using IVF indexes in Oracle Database 23ai to find similar images in a large dataset. During testing, they observe that the search results are often incomplete, missing relevant images. They suspect the issue lies in the number of partitions probed. How should they improve the search accuracy?

 
 
 
 

NEW QUESTION 32
What is the primary purpose of the VECTOR_EMBEDDING function in Oracle Database 23ai?

 
 
 
 

NEW QUESTION 33
What happens when querying with an IVF index if you increase the value of the NEIGHBOR_PARTITIONS probes parameter?

 
 
 
 

NEW QUESTION 34
What is the primary purpose of the DBMS_VECTOR_CHAIN.UTL_TO_CHUNKS package in a RAG application?

 
 
 
 

NEW QUESTION 35
An application needs to fetch the top-3 matching sentences from a dataset of books while ensuring a balance between speed and accuracy. Which query structure should you use?

 
 
 
 

NEW QUESTION 36
Which Oracle Cloud Infrastructure (OCI) service is directly integrated with Select AI?

 
 
 
 

NEW QUESTION 37
When using SQL*Loader to load vector data for search applications, what is a critical consideration regarding the formatting of the vector data within the input CSV file?

 
 
 
 

NEW QUESTION 38
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?

 
 
 
 

NEW QUESTION 39
Which Python library is used to vectorize text chunks and the user’s question in the following example?
import oracledb
connection = oracledb.connect(user=un, password=pw, dsn=ds)
table_name = “Page”
with connection.cursor() as cursor:
create_table_sql = f”””
CREATE TABLE IF NOT EXISTS {table_name} (
id NUMBER PRIMARY KEY,
payload CLOB CHECK (payload IS JSON),
vector VECTOR
)”””
try:
cursor.execute(create_table_sql)
except oracledb.DatabaseError as e:
raise
connection.autocommit = True
from sentence_transformers import SentenceTransformer
encoder = SentenceTransformer(‘all-MiniLM-L12-v2’)

 
 
 
 

NEW QUESTION 40
Which PL/SQL function converts documents such as PDF, DOC, JSON, XML, or HTML to plain text?

 
 
 
 

Oracle 1Z0-184-25 Exam Syllabus Topics:

Topic Details
Topic 1
  • Using Vector Indexes: This section evaluates the expertise of AI Database Specialists in optimizing vector searches using indexing techniques. It covers the creation of vector indexes to enhance search speed, including the use of HNSW and IVF vector indexes for performing efficient search queries in AI-driven applications.
Topic 2
  • Performing Similarity Search: This section tests the skills of Machine Learning Engineers in conducting similarity searches to find relevant data points. It includes performing exact and approximate similarity searches using vector indexes. Candidates will also work with multi-vector similarity search to handle searches across multiple documents for improved retrieval accuracy.
Topic 3
  • Leveraging Related AI Capabilities: This section evaluates the skills of Cloud AI Engineers in utilizing Oracle’s AI-enhanced capabilities. It covers the use of Exadata AI Storage for faster vector search, Select AI with Autonomous for querying data using natural language, and data loading techniques using SQL Loader and Oracle Data Pump to streamline AI-driven workflows.

 

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