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5篇 您的检索式:作者名="Majda D"
    题名 作者 年代 出处 被引量
1Synthesis,thermal and electrical properties of Li1+δMn2-δO-4 prepared by a sol-gel method显示文摘Dziembaj R Molenda M Majda D 2003Solid State Ionics2003,157,14:1
2Temperature programmed desorption of n-hexane and n-heptane from MFI and FAU zeolites显示文摘MAKOWSKI W MAJDA D 2007J Porous Mater2007,14,:1
3Synthesis and characterisation of sulphided lithium manganese spinels LiMn2O4-ySy prepared by sol-gel method显示文摘MOLENDA M DZIEMBAJ R MAJDA D DUDEK M 2005Solid State Ionics2005,176,:1
4A simple one-dimen- sional model for the three-dimensional vorticity equation 显示文摘Constantin P Lax P D Majda A J 1985Comm Pure Appl Math1985,,38:1
5Evaluation of a deep learning supported remote diagnosis model for identification of diabetic retinopathy using wide-field Optomap显示文摘Background:We test a deep learning(DL)supported remote diagnosis approach to detect diabetic retinopathy(DR)and other referable retinal pathologies using ultra-wide-field(UWF)Optomap.Methods:Prospective,non-randomized study involving diabetic patients seen at endocrinology clinics.Non-expert imagers were trained to obtain non-dilated images using UWF Primary.Images were graded by two retina specialists and classified as DR or incidental retinal findings.Cohen’s kappa was used to test the agreement between the remote diagnosis and the gold standard exam.A novel DL model was trained to identify the presence or absence of referable pathology,and sensitivity,specificity and area under the receiver operator characteristics curve(AUROC)were used to assess its performance.Results:A total of 265 patients were enrolled,of which 241 patients were imaged(433 eyes).The mean age was 50±17 years,45%of patients were female,34%had a diagnosis of diabetes mellitus type 1,and 66%of type 2.The average Hemoglobin A1c was 8.8±2.3%,and 81%were on Insulin.Of the 433 images,404(93%)were gradable,64 patients(27%)were referred to a retina specialist,and 46(19%)were referred to comprehensive ophthalmologist for a referable retinal pathology on remote diagnosis.Cohen’s kappa was 0.58,indicating moderate agreement.Our DL algorithm achieved an accuracy of 82.8%(95%CI:80.3-85.2%),a sensitivity of 81.0%(95%CI:78.5-83.6%),specificity of 73.5%(95%CI:70.6-76.3%),and AUROC of 81.0%(95%CI:78.5-83.6%).Conclusions:UWF Primary can be used in the non-ophthalmology setting to screen for referable retinal pathology and can be successfully supported by an automated algorithm for image classification.Terry Lee Mingzhe Hu Qitong Gao Joshua Amason Durga Borkar David D’Alessio Michael Canos Afreen Shariff Miroslav Pajic Majda Hadziahmetovic 2022Annals of Eye Science2022,,2:0
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