1. According to the initial paper, there should be a parameter named δ. But I can't find such argument in TensorFlow AdagradOptimizer construtor.

  2. There is an argument named initial_accumulator_value, it is suggested to set as 0, but TensorFlow uses 0.1 as default. It is proper for me to set it as 0?

Thank you so much for your time!


closed as too broad by Mitch Wheat, Rob, Al Sweigart, Nicktar, June7 Mar 16 '18 at 9:14

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initial_accumulator_value is indeed the \delta and it should not be initialized to 0. A value of 0.01 is more appropriate but the default of 0.1 is fine.

Btw, if you are in the business of playing with optimizers, authors of Adagrad have a new optimizer https://arxiv.org/abs/1802.09568 that performs considerably better than existing ones. It's TF implementation should be released fairly soon, Q2 2018.

  • Hi iga, thanks for the information. But I still don't get it. I have learned that initial gradient accumulation vector should be initialized to 0. And \delta should be initialized to a tiny number. And I actually found that this chapter says that \delta and initial gradient accumulation vector are rolled into initial_accumulator_value in TensorFlow implementation. – Garrett Apr 2 '18 at 7:03
  • Is it the same if I initialize initial_accumulator_value to a tiny number? – Garrett Apr 2 '18 at 7:03
  • I am not sure. You can check the code: github.com/tensorflow/tensorflow/blob/…. accum is the initial_accumulator_value. You can see it being passed down as is in here: github.com/tensorflow/tensorflow/blob/… – iga Apr 2 '18 at 20:43
  • Thanks for posting about that new optimizer. I've been experimenting with it, very preliminary but seems very promising. Are there any other reviews/testimonials about the shampoo optimizer? Can't seem to find too many people using it – SantoshGupta7 Oct 26 '18 at 5:41
  • I am sure some researchers are using it but don't know of any large systematic comparison. It should be fairly easy to just try it on your model and see how it performs. – iga Oct 26 '18 at 16:43

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