Publications
Harzig, P., Zecha, D., Lienhart, R., Kaiser, C., & Schallner, R. (2019). Image captioning with clause-focused metrics in a multi-modal setting for marketing. 2019 IEEE Conference on Multimedia Information Processing and Retrieval (MIPR), 419–424. San Jose, CA, United States. https://doi.org/10.1109/MIPR.2019.00085
2019
P. Harzig,
D. Zecha,
Prof. Dr. Rainer Lienhart
Image captioning with clause-focused metrics in a multi-modal setting for marketing
Abstract:
Automatically generating descriptive captions for images is a well-researched area in computer vision. However, existing evaluation approaches focus on measuring the similarity between two sentences disregarding fine-grained semantics of the captions. In our setting of images depicting persons interacting with branded products, the subject, predicate, object and the name of the branded product are important evaluation criteria of the generated captions. Generating image captions with these constraints is a new challenge, which we tackle in this work. By simultaneously predicting integer-valued ratings that describe attributes of the human-product interaction, we optimize a deep neural network architecture in a multi-task learning setting, which considerably improves the caption quality. Furthermore, we introduce a novel metric that allows us to assess whether the generated captions meet our requirements (i.e., subject, predicate, object, and product name) and describe a series of experiments on caption quality and how to address annotator disagreements for the image ratings with an approach called soft targets. We also show that our novel clause-focused metrics are also applicable to other image captioning datasets, such as the popular MSCOCO dataset.
Authors
- Dr. Carolin Kaiser, Head of Artificial Intelligence, NIM, carolin.kaiser@nim.org
- P. Harzig, Multimedia Computing and Computer Vision Lab, University of Augsburg, Augsburg, Germany
- D. Zecha, Multimedia Computing and Computer Vision Lab, University of Augsburg, Augsburg, Germany
- Prof. Dr. Rainer Lienhart, Universität Augsburg
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