What is the main objective of this lecture?
Deep Learning - Recurrent Neural Networks with TensorFlow - RNN for Time Series Prediction

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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
To explore the use of RNNs for time series prediction
To learn about autoregressive models for image processing
To compare RNNs with CNNs for image classification
To understand the basics of TensorFlow installation
2.
MULTIPLE CHOICE QUESTION
30 sec • 1 pt
What is the first step in setting up the environment for this exercise?
Creating a sine wave dataset
Installing TensorFlow and importing libraries
Splitting the dataset into train and test sets
Running the Colab notebook
3.
MULTIPLE CHOICE QUESTION
30 sec • 1 pt
What is the default activation function for RNN layers in TensorFlow?
tanh
ReLU
None
Sigmoid
4.
MULTIPLE CHOICE QUESTION
30 sec • 1 pt
Why is it important to split the dataset with future data points in the validation set?
To reduce the complexity of the model
To mimic real-world forecasting scenarios
To ensure the model is trained on the most recent data
To increase the size of the training set
5.
MULTIPLE CHOICE QUESTION
30 sec • 1 pt
What is a potential downside of RNNs compared to linear models?
RNNs are less flexible than linear models
RNNs require more data preprocessing
RNNs are faster to train than linear models
RNNs can be too flexible, leading to poorer performance
6.
MULTIPLE CHOICE QUESTION
30 sec • 1 pt
What happens when an RNN is used with no activation function?
It overfits the data
It cannot be trained
It behaves like a linear model
It becomes a non-linear model
7.
MULTIPLE CHOICE QUESTION
30 sec • 1 pt
What is a common issue when using ReLU activation in time series forecasting?
The model fails to converge
The model becomes too complex
The model simply copies the previous value
The model requires more data
8.
MULTIPLE CHOICE QUESTION
30 sec • 1 pt
What is the effect of adding noise to the dataset in this exercise?
It makes the dataset easier to model
It improves model accuracy
It mimics real-world data conditions
It reduces the size of the dataset
9.
MULTIPLE CHOICE QUESTION
30 sec • 1 pt
Why might an RNN with tanh activation sometimes perform inconsistently?
Because it requires more tuning
Because tanh is not suitable for time series
Due to insufficient data
Due to overfitting
10.
MULTIPLE CHOICE QUESTION
30 sec • 1 pt
What is a key takeaway from using different activation functions in RNNs?
All activation functions perform equally well
The choice of activation function can significantly impact performance
ReLU is always the best choice
Activation functions do not affect RNNs
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