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Migrate to PyTorch #117
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Migrate to PyTorch #117
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The linear AE is faster than the convolutional one and produces almost the same results. One big issue was the torch.relu(x) on the AE output. This completely wrecked the results. Now it's almost indistinguishable from the TensorFlow implementation.
MMDet expects bboxes as Numpy datatype which is only possible if the annotations are stored as pickle file.
This produced a much better detector performance, possibly because of more negative examples and objects not always being in the image canter.
JpegCompression is deprecated.
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This implements the novelty detection in PyTorch and the object detection with MMDetection.
Resolves #96
Resolves #64
References #91 and #92 as the novelty detection now works with large images.
Maybe #28 and #73 cen be resolved here, too.
Upgrade information:
The
MAIA_AVAILABLE_BYTES
env variable was removed. Instead, the object detection training batch size can be set directly withMAIA_MMDET_TRAIN_BATCH_SIZE
.The
COCO_MODEL_URL
env variable was removed. UseMAIA_BACKBONE_MODEL_URL
for the PyTorch backbone file andMAIA_MODEL_URL
fir the MMDetection checkpoint file.The training scheme is no longer configurable. Instead of iteration-based training (which still was called "epochs" before), training runs for a fixed number of 12 epochs now (which is the default training config for many MMdet object detectors and worked well in tests).
What's previously been called "instance segmentation" is now correctly called "object detection".