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h2o-danube2 with ChatML template

This model was first fine-tuned with BAdam on migtissera/Synthia-v1.3 using LLama-Factory.

Quants

Big ups, mradermacher!

Template

<|im_start|>system
{{system}}<|im_end|>
<|im_start|>user
{{instruction}}<|im_end|>
<|im_start|>assistant
{{response}}<|im_end|>

BAdam config

### model
model_name_or_path: danube2-base-chatml

### method
stage: sft
do_train: true
finetuning_type: full
use_badam: true
badam_switch_mode: ascending
badam_switch_interval: 50
badam_verbose: 1
badam_start_block: 16
seed: 1080

### dataset
dataset: synthia
template: hermes_chatml
cutoff_len: 8192
overwrite_cache: false
preprocessing_num_workers: 12

### output
output_dir: synthia-chatml-badam
logging_steps: 5
save_steps: 1
save_strategy: epoch
plot_loss: true
overwrite_output_dir: false

### train
per_device_train_batch_size: 2
gradient_accumulation_steps: 8
learning_rate: 0.00001
num_train_epochs: 1
lr_scheduler_type: constant_with_warmup
warmup_ratio: 0.01
bf16: true
flash_attn: fa2

### eval
val_size: 0.01
per_device_eval_batch_size: 1
eval_strategy: steps
eval_steps: 1000

BAdam training results

Training Loss Epoch Step Validation Loss
0.7895 0.1360 1000 0.7205
0.7153 0.2720 2000 0.7015
0.7024 0.4080 3000 0.7024
0.752 0.5440 4000 0.6977
0.727 0.6800 5000 0.6922
0.6616 0.8160 6000 0.6922
0.7628 0.9519 7000 0.6913
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