Publication | Closed Access
Computer aided diagnosis system for lung cancer based on helical CT images
24
Citations
8
References
1996
Year
Unknown Venue
EngineeringDigital PathologyDiagnosisPathologyDiagnostic ImagingImage AnalysisData SciencePattern RecognitionTumor CandidatesEarly StageRadiologyDiagnosis SystemMedical ImagingMedical Image ComputingLung CancerComputer VisionRadiomicsMultiple Pulmonary NoduleBiomedical ImagingHelical Ct ImagesComputer-aided DiagnosisMedicineMedical Image Analysis
In this paper we describe a computer assisted automatic diagnosis system for lung cancer that detects tumor candidates at an early stage from helical computerised tomographic (CT) images. This automation of the process reduces the time complexity and increases the diagnosis confidence. Our algorithm consists of an analysis part and a diagnosis part. In the analysis part, we extract the lung and pulmonary blood vessel regions and analyze the features of these regions using image processing techniques. In the diagnosis part, we define diagnosis rules based on these features, and detect tumor candidates using these rules. We have applied our algorithm to 450 patient's data for mass screening. The results show that our algorithm detected lung cancer candidates successfully.
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