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Locating blood vessels in retinal images by piecewise threshold probing of a matched filter response

IEEE Transactions on Medical Imaging · 2000 · Vol. 19(3) · pp. 203–210
A.D. HooverValentina L. KouznetsovaMichael H. Goldbaum

Abstract

We describe an automated method to locate and outline blood vessels in images of the ocular fundus. Such a tool should prove useful to eye care specialists for purposes of patient screening, treatment evaluation, and clinical study. Our method differs from previously known methods in that it uses local and global vessel features cooperatively to segment the vessel network. We evaluate our method using hand-labeled ground truth segmentations of 20 images. A plot of the operating characteristic shows that our method reduces false positives by as much as 15 times over basic thresholding of a matched filter response (MFR), at up to a 75% true positive rate. For a baseline, we also compared the ground truth against a second hand-labeling, yielding a 90% true positive and a 4% false positive detection rate, on average. These numbers suggest there is still room for a 15% true positive rate improvement, with the same false positive rate, over our method. We are making all our images and hand labelings publicly available for interested researchers to use in evaluating related methods.

Retinal Imaging and AnalysisGlaucoma and retinal disordersMedical Image Segmentation TechniquesFalse positive paradoxThresholdingFalse positive rateGround truthArtificial intelligenceFilter (signal processing)Computer scienceComputer visionFundus (uterus)Pattern recognition (psychology)

MeSH terms

AlgorithmsHumansImage Processing, Computer-AssistedMagnetic Resonance ImagingRetinaRetinal DiseasesRetinal VesselsReproducibility of Results
Citations
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References
Detection of blood vessels in retinal images using two-dimensional matched filters
IEEE Transactions on Medical Imaging · 1989 · 1,665 citations
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