Understanding Iterations, Convergence, and Hardware Impact on Robyn Model Performance #937
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Hello, Robyn Community! I've been experimenting with Robyn for a while now, and I've observed some intriguing behaviors and outcomes based on iterations, convergence, and hardware configurations. I would love to get insights from the community and developers on a few points to understand the underlying mechanics better and optimize my use of Robyn. Here are my observations and questions:
I appreciate any insights or experiences you could share regarding these points. Understanding these dynamics could greatly enhance how we utilize Robyn for marketing mix modeling and ensure we're leveraging computational resources efficiently. Thank you all in advance for your contributions! |
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Replies: 2 comments 1 reply
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@gufengzhou I'm Just checking to see if you had a chance to look into this. |
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My experience is that increasing number of trials and iterations in most cases does very little in finding better fitting models. I have noticed that the biggest factor is seed. So I usually run Robyn with low number of trials and iterations but I run many seeds in order to explore the search space more diversely. |
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Hi, sorry for the late reply. The discussion section here is indeed not as closely monitored as issues or the FB group.
For your convergence questions, it's very difficult to predict convergence time, which is not only a Robyn challenge, but Nevergrad and actually many optimisation packages also don't provide convergence prediction. The practical reason is that it varies a lot from dataset to dataset. Therefore, if you see one dataset converges at 5k already over difference trials, you can actually confidently reduce it to around 5k. There's no auto-stop function neither. As of divergence with higher iteration, to be honest I haven't seen this so far and this shouldn't happen, at least no…