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Khoi Pham

5 accepted papers

2024

Beyond Seen Primitive Concepts and Attribute-Object Compositional Learning

CVPR 2024poster

Learning from seen attribute-object pairs to generalize to unseen compositions has been studied extensively in Compositional Zero-Shot Learning (CZSL). However CZSL setup is still limited to seen attributes and objects and cannot generalize to unseen concepts and their compositions. To overcome this…

Cited by 0SourcePDFScholar
2024

Composing Object Relations and Attributes for Image-Text Matching

CVPR 2024poster

We study the visual semantic embedding problem for image-text matching. Most existing work utilizes a tailored cross-attention mechanism to perform local alignment across the two image and text modalities. This is computationally expensive even though it is more powerful than the unimodal dual-encod…

2022

Improving Closed and Open-Vocabulary Attribute Prediction Using Transformers

ECCV 2022poster

"We study recognizing attributes for objects in visual scenes. We consider attributes to be any phrases that describe an object’s physical and semantic properties, and its relationships with other objects. Existing work studies attribute prediction in a closed setting with a fixed set of attributes,…

Cited by 24SourcePDFScholar
2021

Learning To Predict Visual Attributes in the Wild

CVPR 2021poster

Visual attributes constitute a large portion of information contained in a scene. Objects can be described using a wide variety of attributes which portray their visual appearance (color, texture), geometry (shape, size, posture), and other intrinsic properties (state, action). Existing work is most…

Cited by 132PDFScholar