0000000000516228

AUTHOR

S.c. Cheran

showing 5 related works from this author

Preprocessing methods for nodule detection in lung CT

2005

Abstract The use of automatic systems in the analysis of medical images has proven to be very useful to radiologists, especially in the framework of screening programs, in which radiologists make their first diagnosis on the basis of images only, most of those corresponding to healthy patients, and have to distinguish pathological findings from non-pathological ones at an early stage. In particular, we are developing preprocessing methods to be applied for pulmonary nodule Computer Aided Detection in low-dose lung Multi Slice CT (computed tomography) images.

low-dose lung MSCTNodule detectionmedicine.medical_specialtylung nodules detectionmedicine.diagnostic_testbusiness.industryComputed tomographyGeneral MedicineComputer aided detectionlow-dose lung MSCT; lung nodules detectionMulti slice ctLow dose lung MSCTPulmonary noduleScreening programsMedicinePreprocessorlung nodule detectionRadiologyStage (cooking)businessInternational Congress Series
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Detection and classification of microcalcifications clusters in digitized mammograms

2005

In the present paper we discuss a new approach for the detection of microcalcification clusters, based on neural networks and developed as part of the MAGIC-5 project, an INFN-funded program which aims at the development and implementation of CAD algorithms in a GRID-based distributed environment. The proposed approach has as its roots the desire to maximize the rejection of background during the analytical pre-processing stage, in order to train and test the neural network with as clean as possible a sample and therefore maximize its performance. The algorithm is composed of three modules: the image pre-processing, the feature extraction component and the Backpropagation Neural Network mod…

Connected componentNEURAL-NETWORKArtificial neural networkbusiness.industryComputer scienceFeature extractionCADGridGrayscaleBackpropagationMedical ImagingTransformation (function)Computer aided diagnosiDigital imagingComputer visionImage analysiArtificial intelligencebusinessMammography
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Mammogram Segmentation by Contour Searching and Mass Lesions Classification with Neural Network

2006

The mammography is the most effective procedure for an early diagnosis of the breast cancer. In this paper, an algorithm for detecting masses in mammographic images will be presented. The database consists of 3762 digital images acquired in several hospitals belonging to the MAGIC-5 collaboration (Medical Applications on a Grid Infrastructure Connection). A reduction of the whole image's area under investigation is achieved through a segmentation process, by means of a ROI Hunter algorithm, without loss of meaningful information. In the following classification step, feature extraction plays a fundamental role: some features give geometrical information, other ones provide shape parameters.…

FIS/07 Fisica applicata (a beni culturali ambientali biologia e medicina)Nuclear and High Energy Physicsneural networkComputer sciencemammographyFeature extractionImage processingDigital imageBreast cancerComputer aided diagnosimedicineMammographySegmentationElectrical and Electronic Engineeringmedicine.diagnostic_testContextual image classificationbusiness.industryPattern recognitionImage segmentationneural networksimage processingNuclear Energy and EngineeringDigital imagingComputer-aided diagnosisImage analysiArtificial intelligencebusinessMammography
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GPCALMA: A Grid-based tool for mammographic screening

2005

The next generation of High Energy Physics (HEP) experiments requires a GRID approach to a distributed computing system and the associated data management: the key concept is the Virtual Organisation (VO), a group of distributed users with a common goal and the will to share their resources. A similar approach is being applied to a group of Hospitals which joined the GPCALMA project (Grid Platform for Computer Assisted Library for MAmmography), which will allow common screening programs for early diagnosis of breast and, in the future, lung cancer. HEP techniques come into play in writing the application code, which makes use of neural networks for the image analysis and proved to be useful…

Service (systems architecture)InternationalityDatabases FactualMedical Records Systems ComputerizedTeleradiologyVirtual organizationComputer scienceGrid; Mammogram; Screening; Virtual organizationFOS: Physical sciencesBreast NeoplasmsHealth InformaticsTeleradiologycomputer.software_genregridSet (abstract data type)User-Computer InterfaceHealth Information ManagementmammogramHumansDiagnosis Computer-AssistedProgram DevelopmentAdvanced and Specialized NursingInternetbusiness.industryscreeningGridPhysics - Medical PhysicsEuropeSystems IntegrationRadiology Information SystemsItalyKey (cryptography)Database Management SystemsSystem integrationFemaleThe InternetMedical Physics (physics.med-ph)Data miningvirtual organizationbusinesscomputerAlgorithmsMammography
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MAGIC-5: an Italian mammographic database of digitised images for research

2008

The implementation of a database of digitised mammograms is discussed. The digitised images were collected beginning in 1999 by a community of physicists in collaboration with radiologists in several Italian hospitals as a first step in developing and implementing a computer-aided detection (CAD) system. All 3,369 mammograms were collected from 967 patients and classified according to lesion type and morphology, breast tissue and pathology type. A dedicated graphical user interface was developed to visualise and process mammograms to support the medical diagnosis directly on a high-resolution screen. The database has been the starting point for developing other medical imaging applications,…

AdultLesion typeDatabases Factualmammographic databaseBreast NeoplasmsCADcomputer.software_genreSensitivity and SpecificityDatabaseMedical imagingHumansMedicineMammographyRadiology Nuclear Medicine and imagingGridMedical image processingMedical diagnosisAgedRetrospective StudiesGraphical user interfacecomputer assisted detectionDatabasePoint (typography)medicine.diagnostic_testbusiness.industryMagic (programming)General MedicineMiddle Agedimage processingRadiographic Image EnhancementItalyRadiographic Image Interpretation Computer-AssistedFemaleTomography X-Ray Computedbusinessdatabase; mammography; medical image processing; gridcomputerMammographyLa radiologia medica
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