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Course 55126

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As Inception modules are stacked and features become more abstract, what architectural change does the paper suggest?

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Compared with the winning architecture of Krizhevsky et al. from ILSVRC 2012, the GoogLeNet submission used...

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What is the main role of the convolutions placed before the and convolutions in the dimension-reduction Inception module?

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According to the paper, what are the two main drawbacks of uniformly increasing a network's depth and width?

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How did the authors combine predictions from multiple crops and multiple classifiers for their final classification prediction?

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An input tensor of shape (channels height width) passes through an Inception module with these four branches:

  • 4 filters of size ;
  • 2 filters of size , followed by 4 filters of size ;
  • 1 filter of size , followed by 2 filters of size ;
  • max-pooling, followed by 2 filters of size .

All operations use stride and padding that preserves the spatial dimensions. After the forward pass of the module, what is the output shape?

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Which statement correctly describes the auxiliary classifiers attached to the Inception modules?

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According to the paper's introduction, most of the recent progress in object classification and detection had come mainly from...

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How are the outputs of the parallel branches in an Inception module combined?

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Suppose two consecutive convolutional layers are widened by a factor , i.e., for the second layer, both its number of input channels and its number of output filters are therefore multiplied by , while its kernel size and spatial dimensions remain fixed. How does the second layer's computation scale approximately?

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