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dyang415/mixtral-pb
mixtral-pb is a machine learning model from dyang415. Use it for the machine learning task on the model card, and read the license before you ship it in a product. It is set up for peft. The card lists the license as apache-2.0.
should probably proofread and complete it, then remove this comment. --
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From the Hugging Face model README
axolotl version: 0.4.0
base_model: mistralai/Mixtral-8x7B-Instruct-v0.1
model_type: AutoModelForCausalLM
tokenizer_type: LlamaTokenizer
trust_remote_code: true
load_in_8bit: false
load_in_4bit: true
strict: false
chat_template: inst
datasets:
- path: ./data/pablo_processed.jsonl
type: sharegpt
conversation: mistral
# - path: ./data/tool_used_training.jsonl
# type: sharegpt
# conversation: mistral
# - path: ./data/tool_not_used_training.jsonl
# type: sharegpt
# conversation: mistral
# - path: ./data/no_tools_training.jsonl
# type: sharegpt
# conversation: mistral
hub_model_id: dyang415/mixtral-pb
dataset_prepared_path: last_run_prepared
val_set_size: 0.0
output_dir: ../mixtral-pb
model_config:
output_router_logits: true
adapter: qlora
lora_model_dir:
sequence_len: 16384
sample_packing: true
pad_to_sequence_len: true
lora_r: 8
lora_alpha: 16
lora_dropout: 0.05
lora_target_modules:
- q_proj
- k_proj
- v_proj
- o_proj
# wandb_project: function-call
# wandb_name: mixtral-instruct-lora--v1
# wandb_log_model: end
# hub_model_id: dyang415/mixtral-lora-v0
gradient_accumulation_steps: 2
micro_batch_size: 1
num_epochs: 10
optimizer: paged_adamw_8bit
lr_scheduler: cosine
learning_rate: 0.0002
train_on_inputs: false
group_by_length: false
bf16: true
fp16: false
tf32: false
gradient_checkpointing: true
logging_steps: 1
flash_attention: true
loss_watchdog_threshold: 5.0
loss_watchdog_patience: 3
warmup_steps: 10
evals_per_epoch: 4
eval_table_size:
eval_max_new_tokens: 128
saves_per_epoch: 1
debug:
weight_decay: 0.0
fsdp:
fsdp_config:
</details><br>
This model is a fine-tuned version of mistralai/Mixtral-8x7B-Instruct-v0.1 on the None dataset.
More information needed
More information needed
More information needed
The following bitsandbytes quantization config was used during training:
The following hyperparameters were used during training: