temporal-shift-module
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Acc1 about training HMDB51 pretrained on Imagenet
I use the code(also the script for ucf) train the HMDB51 datasets and the resnet50 pretrained on imagenet. Finally I got 51% top1 Acc, is that reasonable? I just want to know whether i got a reasomable results. Thank you very much
this is my command
python -u main.py hmdb51 RGB --arch resnet50 --num_segments 8 --gd 20 --lr 0.001 --lr_steps 10 20 --epochs 25 --batch-size 8 -j 8 --dropout 0.8 --consensus_type=avg --eval-freq=1 --shift --shift_div=8 --shift_place=blockres > log.log
same here, maximum 51% acc for 50 epochs at [20, 40] decay.
@VanChilly I think the result are obtained by a pre-trained model from K400 then finetune on HMDB
same here, maximum 51% acc for 50 epochs at [20, 40] decay.
So, it's clear that the result is reasonable for HMDB pre-trained on ImageNet. 👍
@VanChilly I think the result are obtained by a pre-trained model from K400 then finetune on HMDB
Yeah, the author mentioned that in the paper. Thank you.