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A convolutional neural network (cnn) is a neural network where one or more of the layers employs a convolution as the function applied to the output of the previous layer. Pooling), upsampling (deconvolution), and copy and crop operations. A cnn will learn to recognize patterns across space while rnn is useful for solving temporal data problems
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What will a host on an ethernet network do if it receives a frame with a unicast destination mac address that does not match its own mac address See this answer for more info It will discard the frame
It will forward the frame to the next host
It will remove the frame from the media But if you have separate cnn to extract features, you can extract features for last 5 frames and then pass these features to rnn And then you do cnn part for 6th frame and you pass the features from 2,3,4,5,6 frames to rnn which is better The task i want to do is autonomous driving using sequences of images.
I am training a convolutional neural network for object detection Apart from the learning rate, what are the other hyperparameters that i should tune And in what order of importance What is your knowledge of rnns and cnns
Do you know what an lstm is?
The concept of cnn itself is that you want to learn features from the spatial domain of the image which is xy dimension So, you cannot change dimensions like you mentioned. A convolutional neural network (cnn) that does not have fully connected layers is called a fully convolutional network (fcn)
