Neural Networks Fundamentals

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Q. In a neural network, what is the purpose of the output layer?
  • A. To process input data
  • B. To apply activation functions
  • C. To produce the final predictions
  • D. To adjust learning rates
Q. What does 'training a neural network' involve?
  • A. Feeding it data without labels
  • B. Adjusting weights based on labeled data
  • C. Evaluating its performance on unseen data
  • D. Initializing the network parameters
Q. What does the term 'backpropagation' refer to in neural networks?
  • A. The process of forward propagation of inputs
  • B. The method of updating weights based on error
  • C. The initialization of network parameters
  • D. The evaluation of model performance
Q. What is a common application of Convolutional Neural Networks (CNNs)?
  • A. Time series prediction
  • B. Image classification
  • C. Natural language processing
  • D. Reinforcement learning
Q. What is the primary function of an activation function in a neural network?
  • A. To initialize weights
  • B. To introduce non-linearity
  • C. To optimize the learning rate
  • D. To reduce overfitting
Q. What is the role of the loss function in training a neural network?
  • A. To measure the accuracy of predictions
  • B. To calculate the gradient for backpropagation
  • C. To determine the optimal learning rate
  • D. To initialize the weights
Q. Which of the following is a characteristic of unsupervised learning in neural networks?
  • A. Requires labeled data
  • B. Focuses on classification tasks
  • C. Identifies patterns without labels
  • D. Optimizes for accuracy
Q. Which of the following is a common activation function used in neural networks?
  • A. Mean Squared Error
  • B. ReLU
  • C. Gradient Descent
  • D. Softmax
Q. Which of the following is NOT a type of neural network architecture?
  • A. Convolutional Neural Network
  • B. Recurrent Neural Network
  • C. Support Vector Machine
  • D. Feedforward Neural Network
Q. Which technique is commonly used to prevent overfitting in neural networks?
  • A. Increasing the learning rate
  • B. Using dropout
  • C. Reducing the number of layers
  • D. Applying batch normalization
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