Upload ASVDLlamaForCausalLM
Browse files- config.json +69 -0
- configuration_asvd_llama.py +167 -0
- generation_config.json +10 -0
- model-00001-of-00003.safetensors +3 -0
- model-00002-of-00003.safetensors +3 -0
- model-00003-of-00003.safetensors +3 -0
- model.safetensors.index.json +334 -0
- modeling_asvd_llama.py +43 -0
config.json
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{
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"_name_or_path": "huggingface_repos/Llama-2-7b-hf-asvd95",
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"architectures": [
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"ASVDLlamaForCausalLM"
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],
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"attention_bias": false,
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"auto_map": {
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"AutoConfig": "configuration_asvd_llama.ASVDLlamaConfig",
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"AutoModelForCausalLM": "modeling_asvd_llama.ASVDLlamaForCausalLM"
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},
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"bos_token_id": 1,
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"eos_token_id": 2,
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"hidden_act": "silu",
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"hidden_size": 4096,
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"initializer_range": 0.02,
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"intermediate_size": 11008,
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"max_position_embeddings": 4096,
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"model_type": "llama",
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"num_attention_heads": 32,
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"num_hidden_layers": 32,
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"num_key_value_heads": 32,
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"pretraining_tp": 1,
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"rms_norm_eps": 1e-05,
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"rope_scaling": null,
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"rope_theta": 10000.0,
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"tie_word_embeddings": false,
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"torch_dtype": "float16",
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"transformers_version": "4.35.2",
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"truncation_ranks": {
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"model.layers.0.mlp.down_proj": 2686,
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"model.layers.0.mlp.gate_proj": 1791,
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"model.layers.0.mlp.up_proj": 2089,
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"model.layers.0.self_attn.k_proj": 204,
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"model.layers.0.self_attn.o_proj": 1433,
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"model.layers.0.self_attn.q_proj": 204,
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"model.layers.0.self_attn.v_proj": 614,
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"model.layers.1.mlp.gate_proj": 2388,
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"model.layers.1.self_attn.k_proj": 614,
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"model.layers.1.self_attn.o_proj": 1843,
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"model.layers.1.self_attn.q_proj": 204,
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"model.layers.1.self_attn.v_proj": 1228,
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"model.layers.11.self_attn.q_proj": 409,
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"model.layers.12.mlp.gate_proj": 2089,
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"model.layers.12.mlp.up_proj": 1791,
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"model.layers.12.self_attn.q_proj": 819,
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"model.layers.14.self_attn.q_proj": 1843,
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"model.layers.16.self_attn.k_proj": 1024,
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"model.layers.16.self_attn.q_proj": 1024,
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"model.layers.17.self_attn.k_proj": 1843,
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"model.layers.18.self_attn.q_proj": 1843,
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"model.layers.20.self_attn.k_proj": 409,
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"model.layers.20.self_attn.q_proj": 614,
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"model.layers.24.mlp.gate_proj": 2686,
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"model.layers.24.mlp.up_proj": 2686,
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"model.layers.24.self_attn.k_proj": 204,
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"model.layers.24.self_attn.o_proj": 1638,
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"model.layers.24.self_attn.q_proj": 204,
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"model.layers.26.self_attn.k_proj": 1433,
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"model.layers.27.self_attn.k_proj": 1024,
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"model.layers.27.self_attn.q_proj": 1228,
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"model.layers.29.self_attn.q_proj": 1638,
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"model.layers.3.self_attn.k_proj": 614,
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"model.layers.6.self_attn.k_proj": 1228,
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"model.layers.7.self_attn.k_proj": 1638,
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"model.layers.7.self_attn.q_proj": 1843
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},
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"use_cache": true,
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"vocab_size": 32000
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}
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configuration_asvd_llama.py
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from transformers.configuration_utils import PretrainedConfig
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from transformers.utils import logging
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logger = logging.get_logger(__name__)
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class ASVDLlamaConfig(PretrainedConfig):
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r"""
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This is the configuration class to store the configuration of a [`LlamaModel`]. It is used to instantiate an LLaMA
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model according to the specified arguments, defining the model architecture. Instantiating a configuration with the
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defaults will yield a similar configuration to that of the LLaMA-7B.
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Configuration objects inherit from [`PretrainedConfig`] and can be used to control the model outputs. Read the
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documentation from [`PretrainedConfig`] for more information.
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Args:
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vocab_size (`int`, *optional*, defaults to 32000):
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Vocabulary size of the LLaMA model. Defines the number of different tokens that can be represented by the
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`inputs_ids` passed when calling [`LlamaModel`]
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hidden_size (`int`, *optional*, defaults to 4096):
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Dimension of the hidden representations.
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intermediate_size (`int`, *optional*, defaults to 11008):
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Dimension of the MLP representations.
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num_hidden_layers (`int`, *optional*, defaults to 32):
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Number of hidden layers in the Transformer decoder.
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num_attention_heads (`int`, *optional*, defaults to 32):
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Number of attention heads for each attention layer in the Transformer decoder.
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num_key_value_heads (`int`, *optional*):
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This is the number of key_value heads that should be used to implement Grouped Query Attention. If
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`num_key_value_heads=num_attention_heads`, the model will use Multi Head Attention (MHA), if
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`num_key_value_heads=1 the model will use Multi Query Attention (MQA) otherwise GQA is used. When
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converting a multi-head checkpoint to a GQA checkpoint, each group key and value head should be constructed
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by meanpooling all the original heads within that group. For more details checkout [this
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paper](https://arxiv.org/pdf/2305.13245.pdf). If it is not specified, will default to
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`num_attention_heads`.
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hidden_act (`str` or `function`, *optional*, defaults to `"silu"`):
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The non-linear activation function (function or string) in the decoder.
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max_position_embeddings (`int`, *optional*, defaults to 2048):
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The maximum sequence length that this model might ever be used with. Llama 1 supports up to 2048 tokens,
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Llama 2 up to 4096, CodeLlama up to 16384.
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initializer_range (`float`, *optional*, defaults to 0.02):
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The standard deviation of the truncated_normal_initializer for initializing all weight matrices.
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rms_norm_eps (`float`, *optional*, defaults to 1e-06):
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The epsilon used by the rms normalization layers.
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use_cache (`bool`, *optional*, defaults to `True`):
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Whether or not the model should return the last key/values attentions (not used by all models). Only
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relevant if `config.is_decoder=True`.
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pad_token_id (`int`, *optional*):
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Padding token id.
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bos_token_id (`int`, *optional*, defaults to 1):
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Beginning of stream token id.
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eos_token_id (`int`, *optional*, defaults to 2):
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End of stream token id.
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pretraining_tp (`int`, *optional*, defaults to 1):
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Experimental feature. Tensor parallelism rank used during pretraining. Please refer to [this
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document](https://huggingface.co/docs/transformers/parallelism) to understand more about it. This value is
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necessary to ensure exact reproducibility of the pretraining results. Please refer to [this
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issue](https://github.com/pytorch/pytorch/issues/76232).
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tie_word_embeddings (`bool`, *optional*, defaults to `False`):
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Whether to tie weight embeddings
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rope_theta (`float`, *optional*, defaults to 10000.0):
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The base period of the RoPE embeddings.
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rope_scaling (`Dict`, *optional*):
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Dictionary containing the scaling configuration for the RoPE embeddings. Currently supports two scaling
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strategies: linear and dynamic. Their scaling factor must be a float greater than 1. The expected format is
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`{"type": strategy name, "factor": scaling factor}`. When using this flag, don't update
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`max_position_embeddings` to the expected new maximum. See the following thread for more information on how
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these scaling strategies behave:
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https://www.reddit.com/r/LocalLLaMA/comments/14mrgpr/dynamically_scaled_rope_further_increases/. This is an
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experimental feature, subject to breaking API changes in future versions.
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attention_bias (`bool`, defaults to `False`, *optional*, defaults to `False`):
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Whether to use a bias in the query, key, value and output projection layers during self-attention.
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```python
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>>> from transformers import LlamaModel, LlamaConfig
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>>> # Initializing a LLaMA llama-7b style configuration
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>>> configuration = LlamaConfig()
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>>> # Initializing a model from the llama-7b style configuration
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>>> model = LlamaModel(configuration)
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>>> # Accessing the model configuration
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>>> configuration = model.config
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```"""
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model_type = "llama"
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keys_to_ignore_at_inference = ["past_key_values"]
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def __init__(
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self,
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vocab_size=32000,
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hidden_size=4096,
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intermediate_size=11008,
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num_hidden_layers=32,
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num_attention_heads=32,
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num_key_value_heads=None,
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hidden_act="silu",
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max_position_embeddings=2048,
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initializer_range=0.02,
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rms_norm_eps=1e-6,
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use_cache=True,
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pad_token_id=None,
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bos_token_id=1,
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eos_token_id=2,
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pretraining_tp=1,
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tie_word_embeddings=False,
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rope_theta=10000.0,
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rope_scaling=None,
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attention_bias=False,
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truncation_ranks=None,
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**kwargs,
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):
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self.vocab_size = vocab_size
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self.max_position_embeddings = max_position_embeddings
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self.hidden_size = hidden_size
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self.intermediate_size = intermediate_size
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self.num_hidden_layers = num_hidden_layers
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self.num_attention_heads = num_attention_heads
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# for backward compatibility
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if num_key_value_heads is None:
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num_key_value_heads = num_attention_heads
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self.num_key_value_heads = num_key_value_heads
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self.hidden_act = hidden_act
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self.initializer_range = initializer_range
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self.rms_norm_eps = rms_norm_eps
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self.pretraining_tp = pretraining_tp
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self.use_cache = use_cache
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self.rope_theta = rope_theta
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self.rope_scaling = rope_scaling
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self._rope_scaling_validation()
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self.attention_bias = attention_bias
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super().__init__(
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pad_token_id=pad_token_id,
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bos_token_id=bos_token_id,
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eos_token_id=eos_token_id,
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tie_word_embeddings=tie_word_embeddings,
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**kwargs,
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)
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# for avsd
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self.truncation_ranks = truncation_ranks
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def _rope_scaling_validation(self):
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"""
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Validate the `rope_scaling` configuration.
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"""
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if self.rope_scaling is None:
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return
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if not isinstance(self.rope_scaling, dict) or len(self.rope_scaling) != 2:
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raise ValueError(
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"`rope_scaling` must be a dictionary with with two fields, `type` and `factor`, "
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f"got {self.rope_scaling}"
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)
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rope_scaling_type = self.rope_scaling.get("type", None)
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rope_scaling_factor = self.rope_scaling.get("factor", None)
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if rope_scaling_type is None or rope_scaling_type not in ["linear", "dynamic"]:
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raise ValueError(
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f"`rope_scaling`'s type field must be one of ['linear', 'dynamic'], got {rope_scaling_type}"
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)
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if rope_scaling_factor is None or not isinstance(rope_scaling_factor, float) or rope_scaling_factor <= 1.0:
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raise ValueError(f"`rope_scaling`'s factor field must be a float > 1, got {rope_scaling_factor}")
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generation_config.json
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{
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"bos_token_id": 1,
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"do_sample": true,
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"eos_token_id": 2,
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"max_length": 4096,
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"pad_token_id": 0,
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"temperature": 0.6,
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"top_p": 0.9,
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"transformers_version": "4.35.2"
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}
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model-00001-of-00003.safetensors
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version https://git-lfs.github.com/spec/v1
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oid sha256:094d026d754a35e7760c73c8c2eb43071929a17b91075cc2a478bcdcd916bcb7
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size 4982636336
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model-00002-of-00003.safetensors
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version https://git-lfs.github.com/spec/v1
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oid sha256:4bd76239e8cccec4b7732b1c21658f1fcb1d946ee720e8e6955dc28a7669c695
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size 4941859984
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model-00003-of-00003.safetensors
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version https://git-lfs.github.com/spec/v1
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oid sha256:ee7dc49eeebca74ba0ba767d86e913655d57bef799ebe4d67c343f0b38a6035f
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size 2914303352
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model.safetensors.index.json
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"model.layers.9.mlp.down_proj.weight": "model-00001-of-00003.safetensors",
|
325 |
+
"model.layers.9.mlp.gate_proj.weight": "model-00001-of-00003.safetensors",
|
326 |
+
"model.layers.9.mlp.up_proj.weight": "model-00001-of-00003.safetensors",
|
327 |
+
"model.layers.9.post_attention_layernorm.weight": "model-00001-of-00003.safetensors",
|
328 |
+
"model.layers.9.self_attn.k_proj.weight": "model-00001-of-00003.safetensors",
|
329 |
+
"model.layers.9.self_attn.o_proj.weight": "model-00001-of-00003.safetensors",
|
330 |
+
"model.layers.9.self_attn.q_proj.weight": "model-00001-of-00003.safetensors",
|
331 |
+
"model.layers.9.self_attn.v_proj.weight": "model-00001-of-00003.safetensors",
|
332 |
+
"model.norm.weight": "model-00003-of-00003.safetensors"
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333 |
+
}
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334 |
+
}
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modeling_asvd_llama.py
ADDED
@@ -0,0 +1,43 @@
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1 |
+
from transformers import LlamaForCausalLM
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2 |
+
from .configuration_asvd_llama import ASVDLlamaConfig
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3 |
+
import torch.nn as nn
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4 |
+
|
5 |
+
class ASVDLinear(nn.Module):
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6 |
+
def __init__(self, in_features, out_features, rank, bias=True):
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7 |
+
super().__init__()
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8 |
+
self.BLinear = nn.Linear(in_features, rank, bias=False)
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9 |
+
self.ALinear = nn.Linear(rank, out_features, bias=bias)
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10 |
+
|
11 |
+
def forward(self, input):
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12 |
+
return self.ALinear(self.BLinear(input))
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13 |
+
|
14 |
+
class ASVDLlamaForCausalLM(LlamaForCausalLM):
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15 |
+
config_class = ASVDLlamaConfig
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16 |
+
def __init__(self, config:ASVDLlamaConfig):
|
17 |
+
super().__init__(config)
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18 |
+
self.truncation_ranks=config.truncation_ranks
|
19 |
+
|
20 |
+
full_name_dict = {module: name for name, module in self.named_modules()}
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21 |
+
linear_info = {}
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22 |
+
modules = [self]
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23 |
+
while len(modules) > 0:
|
24 |
+
submodule = modules.pop()
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25 |
+
for name, raw_linear in submodule.named_children():
|
26 |
+
if isinstance(raw_linear, nn.Linear):
|
27 |
+
full_name = full_name_dict[raw_linear]
|
28 |
+
linear_info[raw_linear] = {
|
29 |
+
"father": submodule,
|
30 |
+
"name": name,
|
31 |
+
"full_name": full_name,
|
32 |
+
}
|
33 |
+
else:
|
34 |
+
modules.append(raw_linear)
|
35 |
+
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36 |
+
|
37 |
+
for name,module in self.named_modules():
|
38 |
+
if name in self.truncation_ranks:
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39 |
+
info=linear_info[module]
|
40 |
+
new_layer=ASVDLinear(module.in_features,module.out_features,self.truncation_ranks[name],bias=module.bias is not None)
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41 |
+
setattr(info["father"], info["name"], new_layer)
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42 |
+
|
43 |
+
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