apcl
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A Lossless Syntax Tree Generator with Zero-shot Error Correction

  • We follow jam's pretraining procedure and use the same data to pretrain except we also use srcml to pretrain the models.
  • In the finetuning stage, we finetune our models for 3 epochs.
  • Our GitHub repo contains the code for reproduction using the same data.

Pretrained model parameters

Hyperparameter Description Value
e embedding dimensions 1024
L number of layers 24
h attention heads 16
c block size / context length 256
b batch size 4
a accumulation steps 32
r learning rate 3e-5
y weight decay 1e-5
iter iterations 570000

Model files

Filename Description
ckpt.pt A model file for finetuning
ckpt_base.pt A model file for generating syntax tree with the error correction in zero-shot setting
ckpt_finetune.pt A model finetuned with the syntatic error dataset
  • Note that you can adjust the batch size and accumulation steps based on your GPU memory. But, the batch size * accumulation steps should be 128.
  • If you finetune your models with multiple GPUs, you can turn down accumulation steps. For example, if you finetune with 2 GPUs, you will need to half the accumulation steps.
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