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NEW QUESTION # 24
Which of the following is not a CORRECT common unsupervised learning model/algorithm?
Answer: D
Explanation:
The correct answer is C. K-nearest neighbors KNNs because KNN is commonly used as a supervised learning algorithm, not an unsupervised learning algorithm. In supervised learning, the model uses labeled data to classify or predict outcomes for new data points. KNN works by comparing a new data point with nearby labeled examples and assigning a class or value based on those neighbors.
K-means clustering is a common unsupervised learning algorithm because it groups unlabeled data into clusters based on similarity. Principal Component Analysis PCA is also commonly associated with unsupervised learning because it reduces data dimensions by finding important patterns or directions of variance without requiring labeled outputs.
Since options A and B are valid unsupervised learning techniques, they are not the answer. The option that is not a correct common unsupervised learning model or algorithm is C. K-nearest neighbors KNNs .
NEW QUESTION # 25
Choose the CORRECT statement for GenAI.
Answer: A
Explanation:
The correct answer is E. All of the above because all three statements describe the broader idea of general intelligence in AI systems. GenAI in this question is presented as intelligence that goes beyond narrow, task- specific AI and aims to support broader reasoning, learning, adaptation, and performance across multiple domains.
Statement A is correct because general AI focuses on systems that can demonstrate human-like cognitive abilities and perform different kinds of tasks rather than being limited to one predefined function. Statement B is also correct because architects working on such advanced AI systems must design solutions that go beyond specific use cases and support more general intelligence capabilities. Statement C is correct because general AI systems are expected to learn from limited data, transfer knowledge across domains, adapt to changing environments, and perform reliably in uncertain situations.
Since A, B, and C are all correct, the best answer is E. All of the above .
NEW QUESTION # 26
Which of the following models is called a black box as the outcomes cannot be directly linked to the model architecture and explained?
Answer: A
Explanation:
The correct answer is A. Neural network . Neural networks, especially deep neural networks, are often described as black box models because their internal decision-making process can be difficult to interpret directly. These models learn through many interconnected layers, weights, activation functions, and hidden representations. Although they may produce highly accurate predictions, it is often hard to clearly explain how a specific input led to a specific output in simple human-understandable terms.
Computer vision is not the best answer because it is an AI application area, not a specific model type. Support vector machines can also be complex in some cases, but neural networks are the most commonly associated with black box behavior in AI explainability discussions. Unsupervised learning is a learning approach, not a specific black box model. "Semi unsupervised learning" is not a standard primary machine learning category.
Because neural networks are widely known for limited transparency and difficult interpretability, the correct answer is A .
NEW QUESTION # 27
Which is the first useful computer program that came into existence in the AI world?
Answer: D
Explanation:
The correct answer is B. GPS . In artificial intelligence history, GPS stands for General Problem Solver . It was an early AI program developed to simulate human problem-solving behavior. GPS was designed to solve problems by breaking them down into goals, subgoals, operators, and differences between the current state and the desired state. This approach became important because it introduced structured reasoning and symbolic problem solving, which were central ideas in early AI research.
LPS, MLS, AIS, and EPS are not the standard answer for the first useful computer program in the AI world in this context. GPS is widely recognized as one of the earliest useful AI programs because it attempted to model general reasoning rather than solving only one narrow calculation task. It showed how computers could be programmed to search through possible actions and work toward a goal. Therefore, the correct answer is B.
GPS .
NEW QUESTION # 28
Select the most CORRECT statement.
Answer: C
Explanation:
The correct answer is D. a and c only because dimensionality reduction is the process of reducing the number of variables or features considered in a dataset while trying to preserve the most important information. This is especially useful when working with large datasets that contain many columns, attributes, or variables.
Reducing dimensionality can improve model performance, reduce computational cost, remove noise, and make data easier to visualize and analyze.
Statement A is correct because dimensionality reduction reduces the number of variables considered in the analysis. Statement C is also correct because Principal Component Analysis, or PCA, is one of the most common techniques used to reduce the dimensionality of large datasets. PCA transforms the original variables into a smaller set of principal components that capture most of the important variance in the data.
Statement B is not correct because dimensionality reduction is not about reducing "targetted variables." It focuses mainly on reducing input features or random variables. Therefore, the best answer is D. a and c only .
NEW QUESTION # 29
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