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configuration.txt
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configuration.txt
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[data paths]
path_local = ./DRIVE_datasets_training_testing/
train_imgs_original = DRIVE_dataset_imgs_train.hdf5
train_groundTruth = DRIVE_dataset_groundTruth_train.hdf5
train_border_masks = DRIVE_dataset_borderMasks_train.hdf5
test_imgs_original = DRIVE_dataset_imgs_test.hdf5
test_groundTruth = DRIVE_dataset_groundTruth_test.hdf5
test_border_masks = DRIVE_dataset_borderMasks_test.hdf5
[experiment name]
name = test
[data attributes]
#Dimensions of the patches extracted from the full images
patch_height = 48
patch_width = 48
[training settings]
#number of total patches:
N_subimgs = 19000
#if patches are extracted only inside the field of view:
inside_FOV = False
#Number of training epochs
N_epochs = 200
batch_size = 32
#if running with nohup
nohup = False
[testing settings]
#Choose the model to test: best==epoch with min loss, last==last epoch
best_last = best
#number of full images for the test (max 20)
full_images_to_test = 20
#How many original-groundTruth-prediction images are visualized in each image
N_group_visual = 1
#Compute average in the prediction, improve results but require more patches to be predicted
average_mode = True
#Only if average_mode==True. Stride for patch extraction, lower value require more patches to be predicted
stride_height = 5
stride_width = 5
#if running with nohup
nohup = False