Comments (4)
It's here. It's not great - actually doesn't seem to be a good way of doing it. That's because there is so much inconsistency between these networks. Adabins vs SGDepth vs MiDaS etc.. MiDaS does a great job separating out the features but using the other networks as a way to scale to absolute depth for MiDaS probably isn't the right way forward.
from merged_depth.
Thanks for your prompt response. What would you suggest to perform such task (relative from MiDaS to absolute)?
from merged_depth.
There is no universal answer, I think. I don't have a good answer yet :(
The reality is that I'm getting different enough results from each of these networks that it really depends on your use-case (indoor vs outdoor for example) - if you pick a model that you're happy (e.g., some large but accurate resnet model), you could use such a model to scale up MiDaS and then use MiDaS as your absolute depth predictor.
Here's an example: Do you care about sky or not? Models based on KITTI are probably OK for autonomous driving but are pretty useless for any other usecase since it gets everything except road features completely wrong (sky for example). I wouldn't use that to scale MiDaS for a use-case that's predominantly indoor.
from merged_depth.
Thank you
from merged_depth.
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from merged_depth.