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Updated: May 24, 2025

Large-scale Reconstructions and Independent, Unbiased Clustering Based on Morphological Metrics to Classify Neurons in Selective Populations
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Tensor-Representation-Based Multiview Attributed Graph Clustering With Smooth Structure.

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    This study introduces a novel tensor-representation framework for multiview attributed graph clustering, enhancing stability and performance. The proposed method, MV_AGC, overcomes limitations in graph autoencoders for improved clustering accuracy.

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    Area of Science:

    • Graph representation learning
    • Machine learning
    • Data mining

    Background:

    • Multiview attributed graph clustering shows promise with data augmentation.
    • Multilayer graph autoencoders (GAEs) suffer from information aggregation deviation, especially with perturbed data.
    • Existing methods are prone to bias from random view construction.

    Purpose of the Study:

    • To propose a tensor-representation-based framework (MV_AGC) for multiview attributed graph clustering that avoids bias.
    • To enhance node representation learning and clustering stability.
    • To improve overall clustering performance in attributed graphs.

    Main Methods:

    • Developed a tensor-product-based high-order graph attention network (GAT) with structural constraints for attribute fusion and semantic consistency.
    • Integrated attribute augmentation and smooth constraints (SCs) into a high-order graph attention autoencoder.
    • Introduced a clustering objective function-guided self-optimizing module to address performance degradation during clustering updates.

    Main Results:

    • MV_AGC effectively eliminates instability in reconstructed graph structures.
    • The method learns more compact and robust node representations.
    • Theoretical analysis demonstrates the superiority of the proposed tensor-product attention mechanism over classical GAT.
    • Achieved state-of-the-art clustering performance on six benchmark datasets.

    Conclusions:

    • The proposed tensor-representation framework offers a stable and effective approach to multiview attributed graph clustering.
    • MV_AGC demonstrates improved generality and expressiveness in node representation learning.
    • The self-optimizing module further enhances final clustering accuracy, outperforming existing methods.