Image Segmentation Analysis

Image segmentation analysis is a computational method that partitions an image into meaningful regions, allowing researchers to distinguish cells, tissues, structures, or other objects from their surroundings. It works by assigning pixels or groups of pixels to defined classes using features such as intensity, color, texture, shape, or spatial relationships, with approaches ranging from thresholding and region-based methods to machine learning. In developmental biology, segmentation enables quantitative measurement of cell number, size, position, morphology, and tissue boundaries across images and time points. These measurements support analysis of growth, differentiation, morphogenesis, and changes in developing organisms.

Image Segmentation Analysis - Related Videos

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.

Hybrid µCT-FMT imaging and image analysis

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Cited by 34 •

2015

We describe a protocol for hybrid imaging, combining fluorescence-mediated tomography (FMT) with micro computed tomography (µCT). After fusion and reconstruction, we perform interactive organ segmentation to extract quantitative measurements of the fluorescence distribution.

Research

JoVE Journal - Medicine
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Segmentation and Measurement of Fat Volumes in Murine Obesity Models Using X-ray Computed Tomography

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Cited by 26 •

2012

Fat content analysis is routinely conducted in studies utilizing murine obesity models. Emerging methods in small animal CT imaging and analysis are providing for longitudinal detail rich fat content analysis. Here we detail step by step procedures for performing small animal CT imaging, analysis, and visualization.

Research

JoVE Journal - Biology

High-throughput Imaging and Analysis Workflow for Evaluating Skin Cell Phenotypes and Proliferation States in Tissue Samples

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Cited by 1 •

2025

The combination of iterative-bleaching-extends-multiplexity (IBEX) and a commercial nucleotide labeling assay (Click-iT EdU) enables the detection and categorization of dividing cell types in highly dynamic processes in fixed frozen murine tissue sections. Furthermore, a novel open-source image processing pipeline provides high-throughput image acquisition and analysis.

Automated Analysis of C. elegans Fluorescence Images using SegElegans

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2025

Here we provide instructions on effectively utilizing SegElegans, a deep learning system we developed for the automated segmentation of individual worms in widefield microscopy images, for subsequent use in image analysis software such as ImageJ. We provide ways to use the system both online and offline.

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