Merge branch 'master' of git.ffhartmann.de:Julius/semesterproject_lecture_eeg
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README.md
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README.md
@@ -6,7 +6,7 @@ The main files are 'preprocessing_and_cleaning.py', 'erp_analysis.py' and 'decod
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The files hold:
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- preprocessing_and_cleaning.py : Holds the pre-processing pipeline of the project. By executing the file all subjects are pre-processed. Subjects 001, 003, 014 are pre-processed with manually selected pre-processing information, all other subjects are pre-processed with the given pre-processing information. Pre-processed cleaned data is saved in the BIDS file structure as 'sub-XXX_task-N170_cleaned.fif' where XXX is the subject number.
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Details can be found in the comments of the code.
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- erp_analysis.py : Hold the code for the erp-analysis. Computes the peak-differences and t-tests for several experimental contrasts. Details can be found in the comments of the code.
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- erp_analysis.py : Holds the code for the erp-analysis. Computes the peak-differences and t-tests for several experimental contrasts. Details can be found in the comments of the code.
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- decoding_tf_analysis.py : Holds the code for the decoding and time-frequency analysis. Details can be found in the comments of the code.
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The folder 'utils' holds helper functions for some plots needed for the analysis and to load data, generate strings etc. and holds the code given in the lecture.
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@@ -15,3 +15,11 @@ The folder 'test' holds mostly unittests that test helper functions and one func
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For the code to work properly, the N170 dataset needs to be provided.
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When first running the analysis, it may take a while. After running it one time the data is cached, so that it can be reused if the analysis should be executed again. Be careful though, as a parameter has to be explicitly set in the code, so that the already computed data is used. This parameter is a boolean given to each analysis function which caches data.
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This code was created using Python 3.7 and the following libraries:
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- Matplotlib 3.3.3
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- MNE 0.22.0
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- MNE-Bids 0.6
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- Numpy 1.19.4
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- Scikit-Learn 0.23.2
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- Pandas 1.2.0
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- Scipy 1.5.4
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