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conference paper

Improving filling level classification with adversarial training

Modas, Apostolos  
•
Xompero, Alessio
•
Sanchez-Matilla, Ricardo
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February 8, 2021
Proceedings of the 2021 Ieee International Conference On Image Processing (Icip)
IEEE International Conference on Image Processing (ICIP)

We investigate the problem of classifying - from a single image the level of content in a cup or a drinking glass. This problem is made challenging by several ambiguities caused by transparencies, shape variations and partial occlusions, and by the availability of only small training datasets. In this paper, we tackle this problem with an appropriate strategy for transfer learning. Specifically, we use adversarial training in a generic source dataset and then refine the training with a task-specific dataset. We also discuss and experimentally evaluate several training strategies and their combination on a range of container types of the CORSMAL Containers Manipulation dataset. We show that transfer learning with adversarial training in the source domain consistently improves the classification accuracy on the test set and limits the overfitting of the classifier to specific features of the training data.

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Name

FillingLevelAT.pdf

Type

Preprint

Version

http://purl.org/coar/version/c_71e4c1898caa6e32

Access type

openaccess

License Condition

MIT License

Size

3.1 MB

Format

Adobe PDF

Checksum (MD5)

84ad957f9cbc9ec1a074a2f1b661d277

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