نتایج جستجو برای: medical images

تعداد نتایج: 836631  

Journal: :BIRDEM Medical Journal 2018

Introduction The diagnosis and separation of cancerous tumors in medical images require accuracy, experience, and time, and it has always posed itself as a major challenge to the radiologists and physicians. Materials and Methods We Received 290 medical images composed of 120 mammographic images, LJPEG format, scanned in gray-scale with 50 microns size, 110 MRI images including of T1-Wighted, T...

A Mostaar, M Tabatabaeefar N Yousefi Moteghaed,

Background: Nowadays, image de-noising plays a very important role in medical analysis applications and pre-processing step. Many filters were designed for image processing, assuming a specific noise distribution, so the images which are acquired by different medical imaging modalities must be out of the noise. Objectives: This study has focused on the sequence filters which are selected ...

Journal: :Journal of Japan Society for Fuzzy Theory and Intelligent Informatics 2005

Journal: :SAÜ Fen Bilimleri Enstitüsü Dergisi 2013

The objective of image fusion for medical images is to combine multiple images obtained from various sources into a single image suitable for better diagnosis. Most of the state-of-the-art image fusing technique is based on nonfuzzy sets, and the fused image so obtained lags with complementary information. Intuitionistic fuzzy sets (IFS) are determined to be more suitable for civilian, and medi...

Journal: :iranian journal of radiology 0
fateme panahi lorestan university of medical sciences, lorestan, iran; lorestan university of medical sciences, lorestan, iran mehrdad gholami md sera mayahi

conclusions according to the present study, the potential barriers to the implementation of pacs in hospitals is the lack of knowledge of the managers and employees of the benefits of pacs system (80%). before the implementation of pacs systems in hospitals it must be considered necessary background to increase knowledge of the workers and managers in this regard, short-term in-service training...

This study presents a method to reconstruct a high-resolution image using a deep convolution neural network. We propose a deep model, entitled Deep Block Super Resolution (DBSR), by fusing the output features of a deep convolutional network and a shallow convolutional network. In this way, our model benefits from high frequency and low frequency features extracted from deep and shallow networks...

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