Optimizing the fMRI data-processing pipeline using prediction and reproducibility performance metrics: I. A preliminary group analysis
We argue that published results demonstrate that new insights into human brain function may be obscured by poor and/or limited choices in the data-processing pipeline, and review the work on performance metrics for optimizing pipelines: prediction, reproducibility, and related empirical Receiver Ope...
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Published in | NeuroImage (Orlando, Fla.) Vol. 23; pp. S196 - S207 |
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Main Authors | , , , , , , |
Format | Journal Article |
Language | English |
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Elsevier Inc
2004
Elsevier Limited |
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Abstract | We argue that published results demonstrate that new insights into human brain function may be obscured by poor and/or limited choices in the data-processing pipeline, and review the work on performance metrics for optimizing pipelines: prediction, reproducibility, and related empirical Receiver Operating Characteristic (ROC) curve metrics. Using the NPAIRS split-half resampling framework for estimating prediction/reproducibility metrics (Strother et al., 2002), we illustrate its use by testing the relative importance of selected pipeline components (interpolation, in-plane spatial smoothing, temporal detrending, and between-subject alignment) in a group analysis of BOLD-fMRI scans from 16 subjects performing a block-design, parametric-static-force task. Large-scale brain networks were detected using a multivariate linear discriminant analysis (canonical variates analysis, CVA) that was tuned to fit the data. We found that tuning the CVA model and spatial smoothing were the most important processing parameters. Temporal detrending was essential to remove low-frequency, reproducing time trends; the number of cosine basis functions for detrending was optimized by assuming that separate epochs of baseline scans have constant, equal means, and this assumption was assessed with prediction metrics. Higher-order polynomial warps compared to affine alignment had only a minor impact on the performance metrics. We found that both prediction and reproducibility metrics were required for optimizing the pipeline and give somewhat different results. Moreover, the parameter settings of components in the pipeline interact so that the current practice of reporting the optimization of components tested in relative isolation is unlikely to lead to fully optimized processing pipelines. |
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AbstractList | We argue that published results demonstrate that new insights into human brain function may be obscured by poor and/or limited choices in the data-processing pipeline, and review the work on performance metrics for optimizing pipelines: prediction, reproducibility, and related empirical Receiver Operating Characteristic (ROC) curve metrics. Using the NPAIRS split-half resampling framework for estimating prediction/reproducibility metrics (Strother et al., 2002), we illustrate its use by testing the relative importance of selected pipeline components (interpolation, in-plane spatial smoothing, temporal detrending, and between-subject alignment) in a group analysis of BOLD-fMRI scans from 16 subjects performing a block-design, parametric-static-force task. Large-scale brain networks were detected using a multivariate linear discriminant analysis (canonical variates analysis, CVA) that was tuned to fit the data. We found that tuning the CVA model and spatial smoothing were the most important processing parameters. Temporal detrending was essential to remove low-frequency, reproducing time trends; the number of cosine basis functions for detrending was optimized by assuming that separate epochs of baseline scans have constant, equal means, and this assumption was assessed with prediction metrics. Higher-order polynomial warps compared to affine alignment had only a minor impact on the performance metrics. We found that both prediction and reproducibility metrics were required for optimizing the pipeline and give somewhat different results. Moreover, the parameter settings of components in the pipeline interact so that the current practice of reporting the optimization of components tested in relative isolation is unlikely to lead to fully optimized processing pipelines. |
Author | Zhang, Jin Pulapura, Sujit La Conte, Stephen Anderson, Jon Strother, Stephen Kai Hansen, Lars Rottenberg, David |
Author_xml | – sequence: 1 givenname: Stephen surname: Strother fullname: Strother, Stephen email: steve@neurovia.umn.edu organization: Radiology Department, University of Minnesota, United States – sequence: 2 givenname: Stephen surname: La Conte fullname: La Conte, Stephen organization: Biomedical Engineering, University of Minnesota, United States – sequence: 3 givenname: Lars surname: Kai Hansen fullname: Kai Hansen, Lars organization: Informatics and Mathematical Modeling, Technical University of Denmark, Denmark – sequence: 4 givenname: Jon surname: Anderson fullname: Anderson, Jon organization: Neurology Departments, University of Minnesota and VA Medical Center, United States – sequence: 5 givenname: Jin surname: Zhang fullname: Zhang, Jin organization: Neurology Departments, University of Minnesota and VA Medical Center, United States – sequence: 6 givenname: Sujit surname: Pulapura fullname: Pulapura, Sujit organization: Neurology Departments, University of Minnesota and VA Medical Center, United States – sequence: 7 givenname: David surname: Rottenberg fullname: Rottenberg, David organization: Radiology Department, University of Minnesota, United States |
BackLink | https://www.ncbi.nlm.nih.gov/pubmed/15501090$$D View this record in MEDLINE/PubMed |
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SubjectTerms | Adult Bias Brain - physiology Cues Data analysis Feedback Female fMRI Humans Image Processing, Computer-Assisted Magnetic Resonance Imaging - statistics & numerical data Male Medical imaging Models, Statistical Noise Prediction Predictive Value of Tests Principal components analysis Reproducibility Reproducibility of Results Software Visual Perception - physiology |
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Title | Optimizing the fMRI data-processing pipeline using prediction and reproducibility performance metrics: I. A preliminary group analysis |
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