Classification of brain tumours using short echo time 1H MR spectra

被引:133
作者
Devos, A
Lukas, L
Suykens, JAK
Vanhamme, L
Tate, AR
Howe, FA
Majós, C
Moreno-Torres, A
van der Graaf, M
Arús, C
Van Huffel, S
机构
[1] Katholieke Univ Leuven, SCD, SISTA, Dept Elect Engn, B-3001 Louvain, Belgium
[2] Inst Child Hlth, Dept Paediat Epidemiol & Biostat, London WC1N 1EH, England
[3] St George Hosp, Sch Med, Dept Biochem & Immunol, CRUK,Biomed Magnet Resonance Res Grp, London SW17 0RE, England
[4] CSU Bellvitge, IDI, Hosp Llobregat, Barcelona 08907, Spain
[5] Ctr Diagnost Pedralbes, Unitat Esplugues, Esplugas de Llobregat 08950, Spain
[6] Univ Nijmegen, Ctr Med, Dept Radiol, NL-6500 HB Nijmegen, Netherlands
[7] Univ Autonoma Barcelona, Dept Bioquim & Biol Mol, Unitat Ciencies, Cerdanyola Del Valles 08193, Spain
关键词
brain tumour classification; short echo time MRS; linear discriminant analysis; least squares support vector machines;
D O I
10.1016/j.jmr.2004.06.010
中图分类号
Q5 [生物化学];
学科分类号
071010 ; 081704 ;
摘要
The purpose was to objectively compare the application of several techniques and the use of several input features for brain tumour classification using Magnetic Resonance Spectroscopy (MRS). Short echo time H-1 MRS signals from patients with glioblastomas (n = 87), meningiomas (n = 57), metastases (n = 39), and astrocytomas grade 11 (n = 22) were provided by six centres in the European Union funded INTERPRET project. Linear discriminant analysis, least squares support vector machines (LS-SVM) with a linear kernel and LS-SVM with radial basis function kernel were applied and evaluated over 100 stratified random splittings of the dataset into training and test sets. The area under the receiver operating characteristic curve (AUC) was used to measure the performance of binary classifiers, while the percentage of correct classifications was used to evaluate the multiclass classifiers. The influence of several factors on the classification performance has been tested: L2- vs. water normalization, magnitude vs. real spectra and baseline correction. The effect of input feature reduction was also investigated by using only the selected frequency regions containing the most discriminatory information, and peak integrated values. Using L2-normalized complete spectra the automated binary classifiers reached a mean test AUC of more than 0.95, except for glioblastomas vs. metastases. Similar results were obtained for all classification techniques and input features except for water normalized spectra, where classification performance was lower. This indicates that data acquisition and processing can be simplified for classification purposes, excluding the need for separate water signal acquisition, baseline correction or phasing. (C) 2004 Elsevier Inc. All rights reserved.
引用
收藏
页码:164 / 175
页数:12
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