Model parallel transformers in Jax and Haiku

Overview

Mesh Transformer Jax

A haiku library using the new(ly documented) xmap operator in Jax for model parallelism of transformers.

See enwik8_example.py for an example of using this to implement an autoregressive language model.

Benchmarks

On a TPU v3-8 (see tpuv38_example.py):

~2.7B model

Initialized in 121.842s
Total parameters: 2722382080
Compiled in 49.0534s
it: 0, loss: 20.311113357543945
<snip>
it: 90, loss: 3.987450361251831
100 steps in 109.385s
effective flops (not including attn): 2.4466e+14

~4.8B model

Initialized in 101.016s
Total parameters: 4836720896
Compiled in 52.7404s
it: 0, loss: 4.632925987243652
<snip>
it: 40, loss: 3.2406811714172363
50 steps in 102.559s
effective flops (not including attn): 2.31803e+14

10B model

Initialized in 152.762s
Total parameters: 10073579776
Compiled in 92.6539s
it: 0, loss: 5.3125
<snip>
it: 40, loss: 3.65625
50 steps in 100.235s
effective flops (not including attn): 2.46988e+14

TODO

  • disentangle heads and shards
  • test/benchmark on TPU
  • implement gradient checkpointing
  • fix initialization
  • mixed precision
  • shard activations instead of replicating
Owner
Ben Wang
Ben Wang
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