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zhang-tao-whu avatar zhang-tao-whu commented on July 26, 2024

The testing process generates a json file containing the score, label, and segmentation results in RLE encoding format for each instance of each image. But the test requires information about the test set (without annotations), similar to the json file read in during the coco dataset testing. So you need to prepare a json file in the same format as coco to tell the network which images need to be tested, and this json file contains the necessary information such as the path to the image.

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yeshwanth95 avatar yeshwanth95 commented on July 26, 2024

Thanks for the response @zhang-tao-whu. I have realised that I need to create a similar json file for my test set. I was hoping there would be a way to predict without this json on images from different datasets, similar to how the visualise.py script does this. But for the moment, I've managed to implement a hacky workaround. So closing for now.

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