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Open3D

Open3D: A Modern Library for 3D Data Processing

Language:C++License:NOASSERTIONStargazers:11279Issues:0Issues:0

FreehandUSRecon

Source code for DCL-Net, a deep learning model for sensorless freehand 3D ultrasound volume reconstruction.

Language:PythonLicense:MITStargazers:98Issues:0Issues:0

Superiorized-Photo-Acoustic-Non-NEgative-Reconstruction-for-Clinical-Photoacoustic-Imaging

Photoacoustic (PA) imaging can revolutionize medical ultrasound by augmenting it with molecular information. However, clinical translation of PA imaging remains a challenge due to the limited viewing angles and imaging depth. Described here is a new robust algorithm called Superiorized Photo-Acoustic Non-NEgative Reconstruction (SPANNER), designed to reconstruct PA images in real-time and to address these limitations. The method utilizes precise forward modeling of the PA propagation and reception of signals while accounting for the effects of acoustic absorption, element size, shape, and sensitivity, as well as the transducer's impulse response and directivity pattern. A fast superiorized conjugate gradient algorithm is used for inversion. SPANNER is compared to three reconstruction algorithms: delay-and-sum (DAS), universal back-projection (UBP), and model-based reconstruction (MBR). All four algorithms are applied to both simulations and experimental data acquired from tissue-mimicking phantoms, ex vivo tissue samples, and in vivo imaging of the prostates in patients. Simulations and phantom experiments highlight the ability of SPANNER to improve contrast to background ratio by up to 20 dB compared to all other algorithms, as well as a 3-fold increase in axial resolution compared to DAS and UBP. Applying SPANNER on contrast-enhanced PA images acquired from prostate cancer patients yielded a statistically significant difference before and after contrast agent administration, while the other three image reconstruction methods did not, thus highlighting SPANNER's performance in differentiating intrinsic from extrinsic PA signals and its ability to quantify PA signals from the contrast agent more accurately.

Language:MATLABStargazers:22Issues:0Issues:0

MarchingCube

迷之Marching Cube算法,一开始以为只能用于基于CT的网格重构,结果发现拓展下还能作为很多数据形式的网格重构算法=。=

Language:C++Stargazers:87Issues:0Issues:0

PAIReconstruction

Photoacoustic Imaging - Image Reconstruction

Language:PythonLicense:GPL-3.0Stargazers:12Issues:0Issues:0

Medical-Image-Tool

Using ITK, VTK, Qt to browse medical images and other functions.

Language:C++Stargazers:18Issues:0Issues:0

3dimagetoolkit

a framework for Medical Image Segmentation and Filtering

Language:C++License:NOASSERTIONStargazers:9Issues:0Issues:0

Sfm-python

三维重建算法Structure from Motion(Sfm)的python实现

Language:PythonStargazers:216Issues:0Issues:0

Vessel-Segmentation

Segmentation of vessel structures from photoacoustic images with reliability assessment

Language:MatlabLicense:GPL-3.0Stargazers:9Issues:0Issues:0

BRIEFnet

Code for MICCAI 2017 paper on binary sparse convolutions for semantic segmentation of medical images

Language:C++License:MITStargazers:10Issues:0Issues:0

FAST

A framework for high-performance medical image processing, neural network inference and visualization

Language:C++License:BSD-2-ClauseStargazers:436Issues:0Issues:0

Medical-image-processing-platform-based-on-VTK

基于vtk的医学图像处理平台,DICOM阅片,三维重建,模型处理

Language:C++Stargazers:26Issues:0Issues:0

Course-Table-ICS-Formatter

This project is designed to export your course table into ICS calendar file which is widely used in calendar apps on all of platform.

Language:JavaScriptLicense:Apache-2.0Stargazers:102Issues:0Issues:0