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    This study introduces an extended reality (XR) method for faster, more intuitive neuron tracing. The novel approach combines immersive interactions with GPU-accelerated algorithms for efficient 3D neuronal reconstruction.

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    Area of Science:

    • Neuroscience
    • Computer Vision
    • Medical Imaging

    Background:

    • Neuron tracing reconstructs 3D neuronal morphology from microscopic images, crucial for neuroanatomy and circuit analysis.
    • Current methods are labor-intensive, with challenges in user interaction, throughput, and visualization.
    • Accurate neuron tracing is vital for understanding brain structure and function at multiple scales.

    Purpose of the Study:

    • To develop a novel, semi-automatic neuron tracing method using extended reality (XR).
    • To enhance user interaction, data throughput, and visualization for 3D neuron reconstruction.
    • To validate the method's effectiveness and efficiency through user studies.

    Main Methods:

    • Implemented a novel XR-based system for semi-automatic neuron tracing.
    • Defined intuitive interactors for controllable and efficient interactions within an immersive environment.
    • Developed a GPU-accelerated algorithm for real-time automatic tracing and reconstruction.
    • Integrated a visualizer for enhanced viewing of volumetric images and 3D objects.

    Main Results:

    • The XR method demonstrated satisfying results when implemented with virtual reality (VR) and augmented reality (AR) headsets.
    • User studies confirmed the effectiveness of the defined interactors.
    • The proposed method proved more efficient compared to existing neuron tracing approaches.

    Conclusions:

    • Extended reality (XR) offers an intuitive and efficient platform for semi-automatic neuron tracing.
    • The developed interactors and GPU-accelerated algorithm significantly improve the neuron reconstruction process.
    • This novel approach advances neuroimaging analysis by providing a more accessible and effective tool for researchers.