Super Voxels

Supervoxels are groups of neighboring voxels with similar intensity, color, texture, or spatial properties that simplify three-dimensional image analysis. Algorithms form these compact regions by clustering adjacent voxels according to image features, preserving important boundaries while reducing the number of elements that must be processed. In biology, supervoxels support segmentation and quantitative analysis of microscopy, medical imaging, and volumetric tissue data, including cell, organelle, and anatomical structure identification. By organizing complex images into meaningful local regions, they can improve feature extraction, classification, visualization, and the efficiency of computational workflows for studying biological structure and change.

Super Voxels - Related Videos

Research

JoVE Journal - Neuroscience
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Using Informational Connectivity to Measure the Synchronous Emergence of fMRI Multi-voxel Information Across Time

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Cited by 23 •

2014

Informational connectivity measures the correspondence between time courses of multi-voxel information across different brain regions. Multi-voxel pattern discriminability time series are extracted from regions and compared, revealing networks that are not identified in a typical functional connectivity approach.

Research

JoVE Journal - Biology
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Volume Segmentation and Analysis of Biological Materials Using SuRVoS (Super-region Volume Segmentation) Workbench

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Cited by 10 •

2017

Segmentation of three-dimensional data from many imaging techniques is a major bottleneck in analysis of complex biological systems. Here, we describe the use of SuRVoS Workbench to semi-automatically segment volumetric data at various length-scales using example datasets from cryo-electron tomography, cryo soft X-ray tomography, and phase contrast X-ray tomography techniques.

Education

JoVE Science Education - Psychology

Measuring Grey Matter Differences with Voxel-based Morphometry: The Musical Brain

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2023

Source: Laboratories of Jonas T. Kaplan and Sarah I. Gimbel—University of Southern California Experience shapes the brain. It is well understood that our brains are different as a result of learning. While many experience-related changes manifest themselves at the microscopic level, for example by neurochemical adjustments in the behavior of individual neurons, we may also examine anatomical changes to the structure of the brain at a macroscopic level. One famous example of this kind of change...

Research

JoVE Journal - Medicine
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A Novel Method: Super-selective Adrenal Venous Sampling

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Cited by 44 •

2017

'Super-selective' adrenal venous sampling (ssAVS, also called segmental adrenal venous sampling: sAVS) was performed using a micro-catheter to identify adrenal segment(s) that produce excessive amounts of hormones. The ssAVS technique was described, cases in which adrenal segmental lesion(s) were identified by ssAVS were presented, and the usefulness of ssAVS in future adrenal research was discussed.

Super-resolution Imaging of the Bacterial Division Machinery

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Cited by 17 •

2013

We describe a super-resolution imaging method to probe the structural organization of the bacterial FtsZ-ring, an essential apparatus for cell division. This method is based on quantitative analyses of photoactivated localization microscopy (PALM) images and can be applied to other bacterial cytoskeletal proteins.

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