Going deeper with convolutions

Published: Jun 1, 2015
Abstract
We propose a deep convolutional neural network architecture codenamed Inception that achieves the new state of the art for classification and detection in the ImageNet Large-Scale Visual Recognition Challenge 2014 (ILSVRC14). The main hallmark of this architecture is the improved utilization of the computing resources inside the network. By a carefully crafted design, we increased the depth and width of the network while keeping the...
Paper Details
Title
Going deeper with convolutions
Published Date
Jun 1, 2015
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