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This script outputs the metrics of each batch of 128 images, but I have added the computation of the mean of these metrics in order to have a global evaluation of the model.
I also propose an improvement over #25 where the model and dataset names are passed as arguments when calling the function. This way, we don't need to modify the script for every new evaluation.
python eval_detection_fscore.py model_name dataset_name weights_file path_to_images
The only reason why I changed the way the model is built when distinguishing between yolo and tiny yolo is so it's easier to add more models in a future (just add another elif model_name == ...), but it's not a relevant change, the result is the same.