IEEE Transactions on Biomedical Engineering

  0018-9294

  1558-2531

  Mỹ

Cơ quản chủ quản:  IEEE-INST ELECTRICAL ELECTRONICS ENGINEERS INC , IEEE Computer Society

Lĩnh vực:
Biomedical Engineering

Phân tích ảnh hưởng

Thông tin về tạp chí

 

Basic and applied papers dealing with biomedical engineering. Papers range from engineering development in methods and techniques with biomedical applications to experimental and clinical investigations with engineering contributions.

Các bài báo tiêu biểu

A New Instrument for Continuous Measurement of Tissue Blood Flow by Light Beating Spectroscopy
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Gert Nilsson, Torsten Tenland, P Å Öberg
Comparison of machine learning and traditional classifiers in glaucoma diagnosis
Tập 49 Số 9 - Trang 963-974 - 2002
Kwokleung Chan, Te-Won Lee, P.A. Sample, M.H. Goldbaum, R.N. Weinreb, T.J. Sejnowski
Glaucoma is a progressive optic neuropathy with characteristic structural changes in the optic nerve head reflected in the visual field. The visual-field sensitivity test is commonly used in a clinical setting to evaluate glaucoma. Standard automated perimetry (SAP) is a common computerized visual-field test whose output is amenable to machine learning. We compared the performance of a number of machine learning algorithms with STATPAC indexes mean deviation, pattern standard deviation, and corrected pattern standard deviation. The machine learning algorithms studied included multilayer perceptron (MLP), support vector machine (SVM), and linear (LDA) and quadratic discriminant analysis (QDA), Parzen window, mixture of Gaussian (MOG), and mixture of generalized Gaussian (MGG). MLP and SVM are classifiers that work directly on the decision boundary and fall under the discriminative paradigm. Generative classifiers, which first model the data probability density and then perform classification via Bayes' rule, usually give deeper insight into the structure of the data space. We have applied MOG, MGG, LDA, QDA, and Parzen window to the classification of glaucoma from SAP. Performance of the various classifiers was compared by the areas under their receiver operating characteristic curves and by sensitivities (true-positive rates) at chosen specificities (true-negative rates). The machine-learning-type classifiers showed improved performance over the best indexes from STATPAC. Forward-selection and backward-elimination methodology further improved the classification rate and also has the potential to reduce testing time by diminishing the number of visual-field location measurements.
#Machine learning #Support vector machines #Support vector machine classification #Optical receivers #Optical sensors #Machine learning algorithms #Linear discriminant analysis #Magnetic heads #Automatic testing #Multilayer perceptrons
Elastic Registration of Biological Images Using Vector-Spline Regularization
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Dielectric properties of breast carcinoma and the surrounding tissues
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60-Hz Ventricular Fibrillation and Pump Failure Thresholds Versus Electrode Area
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Compression of Multidimensional Biomedical Signals With Spatial and Temporal Codebook-Excited Linear Prediction
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On EMG Signal Compression With Recurrent Patterns
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