COMPTIA DY0-001 QUESTIONS FOR GUARANTEED SUCCESS [2025]

CompTIA DY0-001 Questions For Guaranteed Success [2025]

CompTIA DY0-001 Questions For Guaranteed Success [2025]

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CompTIA DataX Certification Exam Sample Questions (Q59-Q64):

NEW QUESTION # 59
Which of the following image data augmentation techniques allows a data scientist to increase the size of a data set?

  • A. Clipping
  • B. Masking
  • C. Cropping
  • D. Scaling

Answer: C

Explanation:
# Cropping involves selecting portions of an image to create multiple training samples from one image. This technique helps increase dataset size and variability, which improves model generalization.
Why the other options are incorrect:
* A: Clipping typically refers to limiting pixel values, not augmentation.
* C: Masking hides or removes parts of an image - used more in object detection or inpainting, not to expand the dataset.
* D: Scaling changes the image size but doesn't create new samples.
Official References:
* CompTIA DataX (DY0-001) Study Guide - Section 6.3:"Cropping is a data augmentation strategy that allows for synthetic expansion of the dataset by generating multiple views."
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NEW QUESTION # 60
The term "greedy algorithms" refers to machine-learning algorithms that:

  • A. update priors as more data is seen.
  • B. apply a theoretical model to the distribution of the data.
  • C. examine every node of a tree before making a decision.
  • D. make the locally optimal decision.

Answer: D

Explanation:
# Greedy algorithms make decisions based on what appears to be the best (most optimal) choice at that current moment - i.e., a locally optimal decision - without regard to whether this choice will yield the globally optimal solution.
Examples in machine learning:
* Decision Tree algorithms (e.g., CART) use greedy approaches by selecting the best split at each node based on information gain or Gini index.
Why the other options are incorrect:
* A: This refers to Bayesian updating, not greedy behavior.
* B: That describes exhaustive search, not greediness.
* C: That aligns more with probabilistic or generative models, not greedy strategies.
Official References:
* CompTIA DataX (DY0-001) Official Study Guide - Section 4.2 (Model Selection Methods):"Greedy algorithms make locally optimal decisions at each step. Decision trees, for instance, use greedy splitting based on current best criteria."
* Elements of Statistical Learning, Chapter 9:"Greedy methods make stepwise decisions that maximize immediate gains - they are fast, but may miss the global optimum."
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NEW QUESTION # 61
Which of the following layer sets includes the minimum three layers required to constitute an artificial neural network?

  • A. An input layer, a hidden layer, and an output layer
  • B. An input layer, a pooling layer, and an output layer
  • C. An input layer, a convolutional layer, and a hidden layer
  • D. An input layer, a dropout layer, and a hidden layer

Answer: A

Explanation:
# A basic artificial neural network (ANN) consists of:
* An input layer to receive data
* At least one hidden layer to process the data
* An output layer to produce predictions
These three layers form the minimal architecture required for learning and transformation.
Why the other options are incorrect:
* A: Pooling layers are used in CNNs, not core ANN structure.
* B: Convolutional layers are specific to CNNs.
* D: Dropout is a regularization technique, not a required component.
Official References:
* CompTIA DataX (DY0-001) Study Guide - Section 4.3:"ANNs must include an input layer, hidden layer(s), and an output layer to form a complete learning structure."
* Deep Learning Fundamentals, Chapter 3:"At a minimum, a neural network includes input, hidden, and output layers to process and propagate data."
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NEW QUESTION # 62
Which of the following compute delivery models allows packaging of only critical dependencies while developing a reusable asset?

  • A. Thin clients
  • B. Containers
  • C. Virtual machines
  • D. Edge devices

Answer: B

Explanation:
# Containers (e.g., Docker) allow developers to package an application along with only the necessary runtime, libraries, and critical dependencies. This makes the asset lightweight, reusable, and portable across environments. Unlike virtual machines, containers share the host OS kernel and are far more efficient in packaging only what's essential.
Why the other options are incorrect:
* A: Thin clients refer to client-server models with minimal local processing - not relevant to dependency packaging.
* C: Virtual machines include an entire OS, leading to more overhead than necessary for reusable assets.
* D: Edge devices are hardware-based deployments typically used in IoT scenarios, not packaging tools.
Official References:
* CompTIA DataX (DY0-001) Official Study Guide - Section 5.2:"Containers enable consistent development environments by packaging applications and only critical dependencies, making them ideal for portability and reuse."
* Docker Documentation:"Containers package code and dependencies into a single unit of software, ensuring consistency across environments while minimizing overhead."
-


NEW QUESTION # 63
The most likely concern with a one-feature, machine-learning model is high error due to:

  • A. bias
  • B. probability
  • C. variance
  • D. dimensionality

Answer: A

Explanation:
# A one-feature model is likely to be overly simplistic and may not capture the true complexity of the target variable. This leads to underfitting, which is associated with high bias - the model consistently misses the mark regardless of the data.
Why the other options are incorrect:
* B: High dimensionality is not a concern in this case - the model has too few features.
* C: Variance refers to overfitting - more common in overly complex models.
* D: Probability is a modeling technique, not a source of error.
Official References:
* CompTIA DataX (DY0-001) Official Study Guide - Section 4.2:"Models with insufficient features tend to underfit and exhibit high bias due to their inability to represent complex relationships."
* Bias-Variance Tradeoff - Data Science Textbook:"A high-bias model makes strong assumptions and is typically too simple to capture the underlying patterns in data."


NEW QUESTION # 64
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