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I recently ran the test script for EmoNet on the small version dataset provided by AffectNet (291,651 images, 8 labels, cropped and resized to 224x224). However, the results I obtained were significantly lower than expected.
I'm reaching out to confirm if this is typical performance for this version of AffectNet or if there are any adjustments I might consider to improve the results.
Should the expression_correct label also be applied to that to improve results? If so, any way I can access or generate this label for it?
Thanks for your help!
The text was updated successfully, but these errors were encountered:
Hi,
I recently ran the test script for EmoNet on the small version dataset provided by AffectNet (291,651 images, 8 labels, cropped and resized to 224x224). However, the results I obtained were significantly lower than expected.
I'm reaching out to confirm if this is typical performance for this version of AffectNet or if there are any adjustments I might consider to improve the results.
Should the expression_correct label also be applied to that to improve results? If so, any way I can access or generate this label for it?
Thanks for your help!
The text was updated successfully, but these errors were encountered: