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-rw-r--r--README.md7
1 files changed, 4 insertions, 3 deletions
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@@ -30,7 +30,6 @@ make generate
## Train
-
Use, modify, or create a new experiment found at `training/conf/experiment/`.
To run an experiment we first need to enter the virtual env by running:
@@ -52,15 +51,17 @@ Create a picture of the network and place it here
Ideas of mine that did not work unfortunately:
+* Efficientnet was apparently a terrible choice of an encoder
+ - A ConvNext module heavily copied from lucidrains [x-unet](https://github.com/lucidrains/x-unet)
+
* Use VQVAE to create pre-train a good latent representation
- Tests with various compressions did not show any performance increase compared to training directly e2e, more like decrease to be honest
- This is very unfortunate as I really hoped that this idea would work :(
- I still really like this idea, and I might not have given up just yet...
-
* Axial Transformer Encoder
- Added a lot of extra parameters with no gain in performance
- - Cool idea, but on a single GPU, nah... not worth it!
+ - Cool idea, but on a single GPU
* Word Pieces
- Might have worked better, but liked the idea of single character recognition more.