Upload folder using huggingface_hub
Browse files- config.json +27 -0
- l3step1.json +6 -0
- l3step1.toml +114 -0
- model-00001-of-00005.safetensors +3 -0
- model-00002-of-00005.safetensors +3 -0
- model-00003-of-00005.safetensors +3 -0
- model-00004-of-00005.safetensors +3 -0
- model-00005-of-00005.safetensors +3 -0
- model.safetensors.index.json +370 -0
- special_tokens_map.json +23 -0
- tokenizer.json +0 -0
- tokenizer_config.json +0 -0
config.json
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{
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"_name_or_path": "./Mistral-Nemo-Instruct-2407",
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"architectures": [
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"MistralForCausalLM"
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],
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"attention_dropout": 0.0,
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"bos_token_id": 1,
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"eos_token_id": 2,
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"head_dim": 128,
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"hidden_act": "silu",
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"hidden_size": 5120,
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"initializer_range": 0.02,
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"intermediate_size": 14336,
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"max_position_embeddings": 1024000,
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"model_type": "mistral",
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"num_attention_heads": 32,
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"num_hidden_layers": 40,
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"num_key_value_heads": 8,
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"rms_norm_eps": 1e-05,
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"rope_theta": 1000000.0,
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"sliding_window": null,
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"tie_word_embeddings": false,
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"torch_dtype": "float16",
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"transformers_version": "4.44.0.dev0",
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"use_cache": true,
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"vocab_size": 131072
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}
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l3step1.json
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{
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"train_micro_batch_size_per_gpu": 16,
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"gradient_accumulation_steps": 4,
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"gradient_clipping": 1.0,
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"steps_per_print": 1
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}
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l3step1.toml
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# Paths
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model = './mnstage2'
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output_dir = './MNI-stage3'
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# Lora configuration
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# can use full_fine_tune=true and load_in_4bit=false to train the whole model instead of a LoRA
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full_fine_tune = true
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load_in_4bit = false
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# lora_rank = 8
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# lora_alpha = 256
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# lora_dropout = 0.05
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# Train only specific modules. This is passed to the parameter of the same name in the LoraConfig.
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# If not set, adapt all linear modules.
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# Note, this ALSO affects full fine tuning. In that case, if this is set, only weights containing one
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# of these keys as substring will have requires_grad.
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# target_modules = ['q_proj', 'k_proj', 'v_proj', 'o_proj']
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# can specify layers to adapt with LoRA if you want
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#layers_to_transform = '16:31'
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# for Mixtral, set the load balancing coefficient
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#load_balancing_loss_coef = 0.02
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# Optimization configuration
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epochs = 5
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lr_scheduler = 'constant' # can also be 'constant'
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warmup_steps = 1
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# might be useful if resuming from a checkpoint and you want to change the LR and force it to something
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#force_constant_lr = 5e-5
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# hard clamp the magnitude of the LoRA weights
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#scale_weight_norms = 1.0
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# dynamic batch size, targeting this many tokens per batch, per device
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# if set, completely ignores the batch size in the deepspeed JSON config file
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# can be thought of as a replacement for sample packing
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batch_size_tokens = 4096
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# Performance settings
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pipeline_stages = 4 # number of pipeline parallel stages, must evenly divide the number of GPUs you launch the script with
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logging_steps = 1 # how often to log in Tensorboard
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eval_steps = 100000
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save_steps = 200000
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checkpoint_every_n_minutes = 960
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eval_before_first_step = true # do an eval before any training happens
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bnb_compute_dtype = 'bfloat16'
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lora_weight_dtype = 'bfloat16'
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# Can have the saved weights be different dtype. Don't need to set this. Could be useful for
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# training in float32 but saving with float16.
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#save_dtype = 'bfloat16'
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use_double_quant = false
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# sort examples by length before dividing them into batches
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# this makes all examples in a batch approximately the same length, to minimize padding
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# the batches are still shuffled after that
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# you should probably always have this set to true
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group_by_length = true
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activation_checkpointing = true
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# Keep MLP weights on system RAM until they are needed. Can save a ton of VRAM with a
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# moderate hit to performance. If using an MoE model, this can also be an integer, in
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# which case only that many experts are offloaded (tradeoff between VRAM and speed).
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# offload_mlp_to_cpu = true
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# Resume a prior run
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# if true, we attempt to resume training from the most recent directory inside output_dir (the directory names are timestamps)
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# so, to resume, just run the exact same command but set this to true first
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resume_from_checkpoint = false
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# Loading the optimizer states seems to cause some kind of unavoidable VRAM memory leak.
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# It's very small, only about 0.2 GB in cases I've seen. But if you are very close to the
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# limit, it can cause resuming from checkpoint to OOM. As a last resort, you can uncomment
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# this to not load the optimizer states and hopefully the resumption won't OOM.
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#load_optimizer_states = false
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# Dataset configuration
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# How to combine multiple datasets if you have more than one.
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# Can be 'concatenate' or 'interleave'. Will be 'concatenate' if not set.
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dataset_combination_mode = 'interleave'
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# When to stop interleaving datasets when using mode 'interleave'. Either 'first_exhausted' or 'all_exhausted'.
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# Default if not set: 'first_exhausted'
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dataset_interleave_stopping_strategy = 'all_exhausted'
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# Can set this lower than training, so we don't drop as many examples when trying to make equal-sized batches.
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# Default if not set: same as training GAS.
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eval_gradient_accumulation_steps = 1
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[optimizer]
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# AdamW or AdamW8bit
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type = 'AdamW8bit'
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lr = 3e-6
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beta1 = 0.9
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beta2 = 0.99
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weight_decay = 0.1
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[[datasets]]
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# Arbitrary name, used only for separately logging eval metrics. Will be dataset0, dataset1, etc if not set.
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name = 'alpaca'
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dataset_type = 'textfile'
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dataset_path = 'nucorpus.json'
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sequence_len = 512
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eval_size = 0.02
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# Relative sampling weight, when using combination mode 'interleave'. Will be 1 if not set.
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sample_weight = 1
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# In addition to using eval_size which splits off some of the dataset, we can have completely separate datasets for eval.
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# This can be useful if you're training on raw text data, so that the eval set remains completely fixed, even if
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# you change training sequence_len, etc.
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# This is just an example, typically you wouldn't have this overlap a training dataset.
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# [[eval_datasets]]
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# name = 'capybara'
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# dataset_type = 'axolotl'
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# dataset_path = 'examples/capybara.yml'
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# sequence_len = 2048
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model-00001-of-00005.safetensors
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version https://git-lfs.github.com/spec/v1
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oid sha256:b459f0c73924e7f4769b4ee33336db8263d785b67f3edcd6e9a4a8db0c9fd12e
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size 4970444368
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model-00002-of-00005.safetensors
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version https://git-lfs.github.com/spec/v1
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oid sha256:064c6047ede455f504972dfe580ebb89dc981e6b8a9e7c9446e6090c017b7f87
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size 4949408352
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model-00003-of-00005.safetensors
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version https://git-lfs.github.com/spec/v1
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oid sha256:a4663614b420a55a1046cf70738f42dd01097257f557073542340652c8099f77
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size 4907529408
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model-00004-of-00005.safetensors
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version https://git-lfs.github.com/spec/v1
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oid sha256:6f5c735806209c6dfcf4c4d39475cd4bad33cd98796706ef03a14e11b7a5fd96
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size 4865553584
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model-00005-of-00005.safetensors
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version https://git-lfs.github.com/spec/v1
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oid sha256:062260b5e627054397e952019db6dac07e794c23386fb3fbbdd3ef223b1b0132
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size 4802671384
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model.safetensors.index.json
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{
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"metadata": {
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"total_size": 24495564800
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},
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"weight_map": {
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"lm_head.weight": "model-00004-of-00005.safetensors",
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tokenizer.json
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tokenizer_config.json
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