Machine Learning

Neural Network Models MCQs With Answers

Welcome to the Neural Network Models MCQs with Answers. In this post, we have shared Neural Network Models Online Test for different competitive exams. Find practice Neural Network Models Practice Questions with answers in Computer Tests exams here. Each question offers a chance to enhance your knowledge regarding Neural Network Models.

Neural Network Models Online Quiz

By presenting 3 options to choose from, Neural Network Models Quiz which cover a wide range of topics and levels of difficulty, making them adaptable to various learning objectives and preferences. You will have to read all the given answers of Neural Network Models Questions and Answers and click over the correct answer.

  • Test Name: Neural Network Models MCQ Quiz Practice
  • Type: Quiz Test
  • Total Questions: 40
  • Total Marks: 40
  • Time: 40 minutes

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Neural Network Models MCQs

Neural Network Models

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1 / 40

The activation function commonly used in hidden layers of neural networks is _________.

2 / 40

Autoencoders are commonly used for ________ tasks.

3 / 40

The activation function that maps input values to probabilities in a multi-class classification neural network is _________.

4 / 40

________ are used to model the uncertainty in predictions of neural networks.

5 / 40

Long Short-Term Memory (LSTM) networks are designed to overcome ________ in RNNs.

6 / 40

Convolutional Neural Networks (CNNs) are specialized for ________ tasks.

7 / 40

The learning rate in neural networks controls ________.

8 / 40

The primary purpose of a decoder in an autoencoder is to ________.

9 / 40

________ networks use reinforcement learning techniques to optimize actions.

10 / 40

Batch Normalization is used to ________ during neural network training.

11 / 40

The term "epoch" in neural network training refers to ________.

12 / 40

Generative Adversarial Networks (GANs) consist of ________ and ________ networks.

13 / 40

In neural networks, the term "backpropagation" refers to ________.

14 / 40

The softmax activation function is commonly used in the ________ layer of a neural network.

15 / 40

Feedforward Neural Networks (FNNs) are primarily used for _________.

16 / 40

Residual connections in ResNet help address ________ during training.

17 / 40

________ architectures are capable of handling variable-length inputs and outputs.

18 / 40

The activation function used in the output layer of a binary classification neural network is _________.

19 / 40

The Adam optimizer combines ________ and ________ for efficient gradient descent.

20 / 40

The objective of a variational autoencoder (VAE) is to learn ________ representations.

21 / 40

________ networks are effective for processing time series data.

22 / 40

The primary advantage of using CNNs over fully connected networks for image processing is ________.

23 / 40

Recurrent Neural Networks (RNNs) are effective for handling ________ data.

24 / 40

________ are used to reduce the complexity of data before feeding it into neural networks.

25 / 40

________ are designed for processing sequences of data.

26 / 40

________ are designed for image classification tasks.

27 / 40

________ networks are designed to handle dependencies between variables.

28 / 40

Gated Recurrent Unit (GRU) networks simplify the LSTM architecture by combining ________ gates.

29 / 40

The term "batch size" in neural networks refers to ________.

30 / 40

The Gated Recurrent Unit (GRU) simplifies the LSTM architecture by combining ________ gates.

31 / 40

________ networks are effective for learning embeddings from text data.

32 / 40

________ networks use attention mechanisms for focusing on important features.

33 / 40

The sigmoid activation function is used in ________ neural networks.

34 / 40

________ networks are designed to predict continuous outputs.

35 / 40

Capsule Networks aim to address issues with ________ in traditional CNNs.

36 / 40

The ResNet architecture introduces ________ connections to improve training.

37 / 40

Dropout is a regularization technique used to prevent ________.

38 / 40

A multi-layer perceptron (MLP) consists of ________ layers.

39 / 40

The term "padding" in CNNs refers to ________.

40 / 40

Transfer learning in neural networks involves ________.

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