Why is synthetic data important in machine learning?
Deep Learning - Artificial Neural Networks with Tensorflow - ANN for Regression

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Computers
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11th - 12th Grade
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Hard
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10 questions
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1.
MULTIPLE CHOICE QUESTION
30 sec • 1 pt
It requires less computational power.
It is easier to collect than real data.
It helps in understanding algorithm behavior.
It is always more accurate than real data.
2.
MULTIPLE CHOICE QUESTION
30 sec • 1 pt
Why is it important to visualize the decision boundary in machine learning?
To reduce the number of training epochs.
To understand where algorithms succeed or fail.
To make the website more engaging.
To ensure data is uniformly distributed.
3.
MULTIPLE CHOICE QUESTION
30 sec • 1 pt
What is the purpose of using a cosine function in the synthetic data generation?
To simplify the data visualization.
To introduce nonlinearity with bumps and curves.
To ensure data is uniformly distributed.
To create a linear dataset.
4.
MULTIPLE CHOICE QUESTION
30 sec • 1 pt
What is the first step in building the neural network model?
Compiling the model.
Building the model architecture.
Choosing the activation function.
Creating the data inputs.
5.
MULTIPLE CHOICE QUESTION
30 sec • 1 pt
Why is a custom learning rate used in the model compilation?
To match the default settings.
To improve the model's performance.
To reduce the number of epochs.
To simplify the training process.
6.
MULTIPLE CHOICE QUESTION
30 sec • 1 pt
What is the purpose of plotting the loss per iteration?
To determine the best activation function.
To adjust the model architecture.
To confirm the training process converged.
To visualize the data distribution.
7.
MULTIPLE CHOICE QUESTION
30 sec • 1 pt
How can you visualize the prediction surface of the neural network?
By plotting the loss per iteration.
By creating a 3D surface plot.
By using a histogram.
By using a 2D scatter plot.
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