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[Algorithm] Simpler IQL example #998

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Merged
merged 83 commits into from
Dec 14, 2023
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BY571
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@BY571 BY571 commented Mar 28, 2023

Description

Rewrites the IQL online example and adds an offline training example for IQL.

Motivation and Context

Updates the online IQL example similar to #967. Fixes the "correct_for_frame_skip" function for the nested config and adds a simple offline IQL example.

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  • Bug fix (non-breaking change which fixes an issue)
  • New feature (non-breaking change which adds core functionality)
  • Breaking change (fix or feature that would cause existing functionality to change)
  • Documentation (update in the documentation)
  • Example (update in the folder of examples)

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  • I have updated the tests accordingly (required for a bug fix or a new feature).
  • I have updated the documentation accordingly.

@facebook-github-bot facebook-github-bot added the CLA Signed This label is managed by the Facebook bot. Authors need to sign the CLA before a PR can be reviewed. label Mar 28, 2023
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LGTM! Thanks for this!
Can you merge main into this?
I will try to launch them once you do!

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vmoens commented Jun 15, 2023

@BY571 I forgot: Can you add the scripts in the tests too?

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BY571 commented Jun 15, 2023

Updated online and added offline example tests for IQL and also added them for CQL as they were still missing.
Also had to do some fixes here and there.

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Wonderful, thanks a mil!
Just a couple of housekeeping comments



def make_offline_replay_buffer(rb_cfg):
data = D4RLExperienceReplay(
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in our examples, we could default to the version that does not require the d4rl library, wdyt?
It's pretty annoying to install and the dataset works without it.

pred_q2: NestedKey = "pred_q2"
priority: NestedKey = "td_error"
cql_q1_loss: NestedKey = "cql_q1_loss"
cql_q2_loss: NestedKey = "cql_q2_loss"
priority: NestedKey = "td_error"
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duplicate


td_error = abs(q_pred - target_value)
alpha_prime = torch.clamp(self.log_alpha_prime.exp(), min=0.0, max=1000000.0)
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is 1000000.0 a magic number? What is the purpose of this clamp (to understand how we can code this in a more grounded way)?
No need to clamp an exp to 0 below, we can just do clamp_max

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Indeed the number seems quite random, I took it directly from the official implementation 1.
As far as I could see it in some tests the alpha_prime value can become quite big I guess this is just to make sure its not exploding. But I'll have a look at the paper if they mention something more specific.

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Good one minor thing to edit and we're good I think

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Awesome let's proceed!

@vmoens vmoens merged commit bc4a72f into pytorch:main Dec 14, 2023
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3 participants