2026 Oracle Pass-Sure 1z0-1122-26: Valid Oracle Cloud Infrastructure 2026 AI Foundations Associate Exam Test

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Oracle 1z0-1122-26 Exam Syllabus Topics:

SectionObjectives
Topic 1: OCI Generative AI and Oracle Database AI Capabilities- Oracle AI Database
  • 1. Vector database concepts
    • 2. AI capabilities in Oracle Database
      - AI Application Frameworks
      • 1. Language frameworks
        • 2. Retrieval and AI application concepts
          - OCI Generative AI
          • 1. OCI Generative AI services
            • 2. Generative AI models and applications
              Topic 2: Oracle AI and Machine Learning Services- Oracle AI Stack
              • 1. AI infrastructure
                • 2. AI data and machine learning services
                  - OCI Machine Learning Services
                  • 1. OCI Data Science and machine learning workflows
                    • 2. Machine learning capabilities in OCI
                      - OCI AI Services
                      • 1. Language
                        • 2. Document Understanding
                          • 3. Vision
                            • 4. Speech
                              Topic 3: Generative AI and Large Language Models- Large Language Models
                              • 1. Language models and generative AI applications
                                • 2. LLM fundamentals
                                  - Generative AI Fundamentals
                                  • 1. Generative AI use cases
                                    • 2. Generative AI concepts and capabilities
                                      Topic 4: Artificial Intelligence and Machine Learning Fundamentals- Artificial Intelligence Concepts
                                      • 1. AI fundamentals and terminology
                                        • 2. AI use cases and applications
                                          - Deep Learning Fundamentals
                                          • 1. Convolutional and sequence models
                                            • 2. Neural networks
                                              - Machine Learning Fundamentals
                                              • 1. Supervised and unsupervised learning
                                                • 2. Machine learning models and architectures

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                                                  Oracle Cloud Infrastructure 2026 AI Foundations Associate Sample Questions (Q27-Q32):

                                                  NEW QUESTION # 27
                                                  In machine learning, what does the term " model training " mean?

                                                  Answer: C

                                                  Explanation:
                                                  In machine learning, " model training " refers to the process of teaching a model to make predictions or decisions by learning the relationships between input features and the corresponding output. During training, the model is fed a large dataset where the inputs are paired with known outputs (labels). The model adjusts its internal parameters to minimize the error between its predictions and the actual outputs. Over time, the model learns to generalize from the training data to make accurate predictions on new, unseen data.


                                                  NEW QUESTION # 28
                                                  What is the purpose of the model catalog in OCI Data Science?

                                                  Answer: D

                                                  Explanation:
                                                  The primary purpose of the model catalog in OCI Data Science is to store, track, share, and manage machine learning models. This functionality is essential for maintaining an organized repository where data scientists and developers can collaborate on models, monitor their performance, and manage their lifecycle. The model catalog also facilitates model versioning, ensuring that the most recent and effective models are available for deployment. This capability is crucial in a collaborative environment where multiple stakeholders need access to the latest model versions for testing, evaluation, and deployment.


                                                  NEW QUESTION # 29
                                                  What distinguishes Generative AI from other types of AI?

                                                  Answer: A

                                                  Explanation:
                                                  Generative AI is distinct from other types of AI in that it focuses on creating new content by learning patterns from existing data. This includes generating text, images, audio, and other types of media. Unlike AI that primarily analyzes data to make decisions or predictions, Generative AI actively creates new and original outputs. This ability to generate diverse content is a hallmark of Generative AI models like GPT-4, which can produce human-like text, create images, and even compose music based on the patterns they have learned from their training data.


                                                  NEW QUESTION # 30
                                                  What is the primary benefit of using Oracle Cloud Infrastructure Supercluster for AI workloads?

                                                  Answer: C

                                                  Explanation:
                                                  Oracle Cloud Infrastructure Supercluster is designed to deliver exceptional performance and scalability for complex AI tasks. The primary benefit of this infrastructure is its ability to handle demanding AI workloads, offering high-performance computing (HPC) capabilities that are crucial for training large-scale AI models and processing massive datasets. The architecture of the Supercluster ensures low-latency networking, efficient resource allocation, and high-throughput processing, making it ideal for AI tasks that require significant computational power, such as deep learning, data analytics, and large-scale simulations.


                                                  NEW QUESTION # 31
                                                  Emma is developing a customer support chatbot for an e-commerce website. The chatbot needs to provide accurate and up-to-date return policies, which change frequently. She initially tries fine-tuning but finds that the model still uses outdated information. Which approach should Emma use instead?

                                                  Answer: A

                                                  Explanation:
                                                  Retrieval-Augmented Generation is the appropriate approach when a chatbot must answer using information that changes frequently. Oracle defines RAG as a technique that retrieves information from specific external data sources and augments an LLM ' s response with that retrieved context, producing grounded answers.
                                                  Oracle Docs Oracle further explains that RAG can incorporate information that is more current than the model
                                                  ' s original training data and that knowledge repositories can be continually updated without retraining the underlying LLM. Oracle Docs Fine-tuning is better suited to adapting model behavior or specialization, not continuously changing factual information. Prompt engineering and zero-shot prompting control how instructions are presented but do not independently supply current return-policy data. Therefore, RAG is the correct solution for providing accurate, current, organization-specific policy responses.


                                                  NEW QUESTION # 32
                                                  ......

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