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A comprehensive survey on point cloud registration
Registration is a transformation estimation problem between two point clouds, which has a
unique and critical role in numerous computer vision applications. The developments of …
unique and critical role in numerous computer vision applications. The developments of …
Graph neural network: A comprehensive review on non-euclidean space
This review provides a comprehensive overview of the state-of-the-art methods of graph-
based networks from a deep learning perspective. Graph networks provide a generalized …
based networks from a deep learning perspective. Graph networks provide a generalized …
Graph neural networks: foundation, frontiers and applications
The field of graph neural networks (GNNs) has seen rapid and incredible strides over the
recent years. Graph neural networks, also known as deep learning on graphs, graph …
recent years. Graph neural networks, also known as deep learning on graphs, graph …
Image matching from handcrafted to deep features: A survey
As a fundamental and critical task in various visual applications, image matching can identify
then correspond the same or similar structure/content from two or more images. Over the …
then correspond the same or similar structure/content from two or more images. Over the …
Combinatorial optimization and reasoning with graph neural networks
Combinatorial optimization is a well-established area in operations research and computer
science. Until recently, its methods have focused on solving problem instances in isolation …
science. Until recently, its methods have focused on solving problem instances in isolation …
Weisfeiler and leman go machine learning: The story so far
In recent years, algorithms and neural architectures based on the Weisfeiler-Leman
algorithm, a well-known heuristic for the graph isomorphism problem, have emerged as a …
algorithm, a well-known heuristic for the graph isomorphism problem, have emerged as a …
Clustergnn: Cluster-based coarse-to-fine graph neural network for efficient feature matching
Abstract Graph Neural Networks (GNNs) with attention have been successfully applied for
learning visual feature matching. However, current methods learn with complete graphs …
learning visual feature matching. However, current methods learn with complete graphs …
Learning to match features with seeded graph matching network
Matching local features across images is a fundamental problem in computer vision.
Targeting towards high accuracy and efficiency, we propose Seeded Graph Matching …
Targeting towards high accuracy and efficiency, we propose Seeded Graph Matching …
Image-text embedding learning via visual and textual semantic reasoning
As a bridge between language and vision domains, cross-modal retrieval between images
and texts is a hot research topic in recent years. It remains challenging because the current …
and texts is a hot research topic in recent years. It remains challenging because the current …
Cross-modal graph matching network for image-text retrieval
Image-text retrieval is a fundamental cross-modal task whose main idea is to learn image-
text matching. Generally, according to whether there exist interactions during the retrieval …
text matching. Generally, according to whether there exist interactions during the retrieval …