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Semantic Augmentation in Images using Language

2 April 2024
Sahiti Yerramilli
Jayant Sravan Tamarapalli
Tanmay Girish Kulkarni
Jonathan M Francis
Eric Nyberg
    VLM
    DiffM
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Abstract

Deep Learning models are incredibly data-hungry and require very large labeled datasets for supervised learning. As a consequence, these models often suffer from overfitting, limiting their ability to generalize to real-world examples. Recent advancements in diffusion models have enabled the generation of photorealistic images based on textual inputs. Leveraging the substantial datasets used to train these diffusion models, we propose a technique to utilize generated images to augment existing datasets. This paper explores various strategies for effective data augmentation to improve the out-of-domain generalization capabilities of deep learning models.

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