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Learning to Adapt Structured Output
Space for Semantic Segmentation
Motivation
• This trained model may not generalize well to
unseen images, especially when there is a
domain gap between the training (source) and
test (target) images.
• To address this issue, knowledge transfer or
domain adaptation techniques have been
proposed to close the gap between source and
target domains, where annotations are not
available in the target domain.
Learning to adapt structured output space for semantic
Algorithmic Overview
Learning to adapt structured output space for semantic
Learning to adapt structured output space for semantic
Multi-level Adversarial Learning
Learning to adapt structured output space for semantic
Learning to adapt structured output space for semantic
Learning to adapt structured output space for semantic

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Learning to adapt structured output space for semantic

  • 1. Learning to Adapt Structured Output Space for Semantic Segmentation
  • 2. Motivation • This trained model may not generalize well to unseen images, especially when there is a domain gap between the training (source) and test (target) images. • To address this issue, knowledge transfer or domain adaptation techniques have been proposed to close the gap between source and target domains, where annotations are not available in the target domain.