Researcher profile

Wei Liu

· University of North Carolina at Chapel Hill

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Publications

1 research record shown

Going deeper with convolutions
2015 · DOI 10.1109/cvpr.2015.7298594

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 computational budget constant. To optimize quality, the architectural decisions were based on the Hebbian principle and the intuition of multi-scale processing. One particular incarnation used in our submission for ILSVRC14 is called GoogLeNet, a 22 layers deep network, the quality of which is assessed in the context of classification and detection.

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Co-authors

Vincent Vanhoucke

Google (United States)

1 shared publication
Christian Szegedy

Google (United States)

1 shared publication
Yangqing Jia

Google (United States)

1 shared publication
Pierre Sermanet

Google (United States)

1 shared publication
Scott Reed

University of Michigan

1 shared publication
Dragomir Anguelov

Google (United States)

1 shared publication
Dumitru Erhan

Google (United States)

1 shared publication
Andrew Rabinovich

Magic Leap (United States)

1 shared publication