Focal Stack Reconstruction

Focal stack reconstruction is a computational imaging technique that uses multiple photographs captured at different focus settings to recover scene depth and produce an all-in-focus image. As the focal plane shifts, different regions become sharp while others blur; algorithms compare these focus patterns, estimate a depth map, and fuse the sharpest information across the stack. In engineering, this approach supports three-dimensional measurement, machine vision, microscopy, and inspection of objects with substantial depth variation. It can improve visualization and quantitative analysis when a single image cannot capture both fine detail and extended depth of field.

Focal Stack Reconstruction - Related Videos

Research

JoVE Journal - Biology
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Focal Ca2+ Transient Detection in Smooth Muscle

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2009

Details methods for high-resolution Ca2+ imaging of smooth muscle within isolated organs, including: preparation of the tissue, image acquisition and data analysis.

Research

JoVE Journal - Neuroscience

Functional Interrogation of Adult Hypothalamic Neurogenesis with Focal Radiological Inhibition

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Cited by 8 •

2013

The function of adult-born mammalian neurons remains an active area of investigation. Ionizing radiation inhibits the birth of new neurons. Using computer tomography-guided focal irradiation (CFIR), three-dimensional anatomical targeting of specific neural progenitor populations can now be used to assess the functional role of adult neurogenesis.

Electroencephalography Recording in a Rat Model of Focal Epilepsy

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2025

This video demonstrates a method for high-resolution EEG recording in a rat model of focal epilepsy. It outlines the steps involved in preparing the rat, connecting a multichannel EEG mini-cap to the rat's scalp, and recording the EEG to identify seizure-related events characteristic of the epilepsy model.

Research

JoVE Journal - Biology
Free Sample

Imaging and 3D Reconstruction of Cerebrovascular Structures in Embryonic Zebrafish

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Cited by 1 •

2014

Imaging of cerebrovascular development in larval zebrafish is described. Techniques to facilitate 3D imaging and modify cerebrovascular development using chemical treatments are also provided.

Scaling of Engineered Vascular Grafts Using 3D Printed Guides and the Ring Stacking Method

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Cited by 6 •

2017

Scalable engineered blood vessels would improve clinical applicability. Using easily sizable 3D-printed guides, rings of vascular smooth muscle were created and stacked into a tubular form, forming a vascular graft. Grafts can be sized to meet the range of human coronary artery dimensions by simply changing the 3D-printed guide size.

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