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Amanda W. Lund

Publications and source records attributed to Amanda W. Lund.

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A Hierarchical Framework for Graph Structure Learning in Histopathology Image Classification

The spatial organization of cells and tissues provides important diagnostic cues in histopathology images. Although graph-based approaches can model these relationships, many rely on fixed or heuristic graph structures that may not accurately represent tissue connectivity. In this work, we propose $G_2^*$-Net, an optimized two-level graph learning framework for classifying large-scale histopathology images, such as whole-slide images (WSIs) or large regions of interest (ROIs). Here, $G_2$ denotes the two-level hierarchical graph representation, and the superscript $*$ indicates the optimized image-level graph structure learned from the proposed framework. The method first divides each WSI or large ROI into image patches, constructs cell-level graphs within each patch to capture local tissue architecture, and then represents each patch as a node in a learnable image-level graph. $G_2^*$-Net formulates image-level graph structure learning as a second-order bilevel optimization problem, separating graph connectivity learning from classifier optimization while coupling them through validation-driven feedback. To make this formulation computationally practical, we adopt a DARTS-inspired one-step unrolled approximation for efficient hypergradient estimation. Experimental validation on three distinct histopathology datasets demonstrates the effectiveness of our proposed method.

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Approximate Bilevel Graph Structure Learning for Histopathology Image Classification

The structural and spatial arrangements of cells within tissues represent their functional states, making graph-based learning highly suitable for histopathology image analysis. Existing methods often rely on fixed graphs with predefined edges, limiting their ability to capture the true biological complexity of tissue interactions. In this work, we propose ABiG-Net (Approximate Bilevel Optimization for Graph Structure Learning via Neural Networks), a novel framework designed to learn optimal interactions between patches within whole slide images (WSI) or large regions of interest (ROI) while simultaneously learning discriminative node embeddings for the downstream image classification task. Our approach hierarchically models the tissue architecture at local and global scales. At the local scale, we construct patch-level graphs from cellular orientation within each patch and extract features to quantify local structures. At the global scale, we learn an image-level graph that captures sparse, biologically meaningful connections between patches through a first-order approximate bilevel optimization strategy. The learned global graph is optimized in response to classification performance, capturing the long-range contextual dependencies across the image. By unifying local structural information with global contextual relationships, ABiG-Net enhances interpretability and downstream performance. Experiments on two histopathology datasets demonstrate its effectiveness: on the Extended CRC dataset, ABiG-Net achieves 97.33 $\pm$ 1.15 % accuracy for three-class colorectal cancer grading and 98.33 $\pm$ 0.58 % for binary classification; on the melanoma dataset, it attains 96.27 $\pm$ 0.74 % for tumor-lymphocyte ROI classification.

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C2P-GCN: Cell-to-Patch Graph Convolutional Network for Colorectal Cancer Grading

Graph-based learning approaches, due to their ability to encode tissue/organ structure information, are increasingly favored for grading colorectal cancer histology images. Recent graph-based techniques involve dividing whole slide images (WSIs) into smaller or medium-sized patches, and then building graphs on each patch for direct use in training. This method, however, fails to capture the tissue structure information present in an entire WSI and relies on training from a significantly large dataset of image patches. In this paper, we propose a novel cell-to-patch graph convolutional network (C2P-GCN), which is a two-stage graph formation-based approach. In the first stage, it forms a patch-level graph based on the cell organization on each patch of a WSI. In the second stage, it forms an image-level graph based on a similarity measure between patches of a WSI considering each patch as a node of a graph. This graph representation is then fed into a multi-layer GCN-based classification network. Our approach, through its dual-phase graph construction, effectively gathers local structural details from individual patches and establishes a meaningful connection among all patches across a WSI. As C2P-GCN integrates the structural data of an entire WSI into a single graph, it allows our model to work with significantly fewer training data compared to the latest models for colorectal cancer. Experimental validation of C2P-GCN on two distinct colorectal cancer datasets demonstrates the effectiveness of our method.

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