2014

Visualizing and Understanding Convolutional Networks

Matthew D. Zeiler, Rob Fergus

citations

Cite Score

93

AI summary

The paper introduces a novel visualization technique using Deconvolutional Networks (deconvnet) to understand the internal operation of Convolutional Networks (convnet). It diagnoses potential problems with the model and explores the model's generalization ability on the ImageNet, Caltech-101, and Caltech-256 datasets.

Main Contributions

  • Introduces a novel visualization technique using a multi-layered Deconvolutional Network (deconvnet) to map feature activations back to the input pixel space.
  • Performs sensitivity analysis of the classifier output by occluding portions of the input image.
  • Finds model architectures that outperform (Krizhevsky et al., 2012) on the ImageNet classification benchmark.
  • Shows ImageNet model generalizes well to other datasets such as Caltech-101 and Caltech-256.
  • Achieves state-of-the-art results on Caltech-101 and Caltech-256 datasets.

Abstract

Large Convolutional Network models have recently demonstrated impressive classification performance on the ImageNet benchmark (Krizhevsky et al., 2012). However there is no clear understanding of why they perform so well, or how they might be improved. In this paper we address both issues. We introduce a novel visualization technique that gives insight into the function of intermediate feature layers and the operation of the classifier. Used in a diagnostic role, these visualizations allow us to find model architectures that outperform Krizhevsky et al. on the ImageNet classification benchmark. We also perform an ablation study to discover the performance contribution from different model layers. We show our ImageNet model generalizes well to other datasets: when the softmax classifier is retrained, it convincingly beats the current state-of-the-art results on Caltech-101 and Caltech-256 datasets.

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References [23]

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on July 31, 2025

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