Upload fine-tuned model with vector memory layer
Browse files- added_tokens.json +13 -0
- architecture.py +144 -0
- chat_template.jinja +8 -0
- config.json +34 -0
- generation_config.json +7 -0
- model-00001-of-00002.safetensors +3 -0
- model-00002-of-00002.safetensors +3 -0
- model.safetensors.index.json +237 -0
- special_tokens_map.json +30 -0
- tokenizer.json +0 -0
- tokenizer.model +3 -0
- tokenizer_config.json +131 -0
added_tokens.json
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{
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"<|assistant|>": 32001,
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"<|endoftext|>": 32000,
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"<|end|>": 32007,
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"<|placeholder1|>": 32002,
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"<|placeholder2|>": 32003,
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"<|placeholder3|>": 32004,
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"<|placeholder4|>": 32005,
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"<|placeholder5|>": 32008,
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"<|placeholder6|>": 32009,
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"<|system|>": 32006,
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"<|user|>": 32010
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}
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architecture.py
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# --- START OF FILE architecture.py ---
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import torch
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import torch.nn as nn
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import torch.nn.functional as F
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from transformers import Phi3Config, Phi3ForCausalLM
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from typing import Optional, Dict
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# --- BUILDING BLOCK 1: VectorMemoryHead (No changes needed here, it inherits dtype correctly) ---
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class VectorMemoryHead(nn.Module):
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def __init__(self, hidden_dim: int, num_memory_slots: int, num_heads: int, ff_dim: int, device=None, dtype=None):
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super().__init__()
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self.hidden_dim = hidden_dim
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self.num_memory_slots = num_memory_slots
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encoder_layer = nn.TransformerEncoderLayer(
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d_model=hidden_dim, nhead=num_heads, dim_feedforward=ff_dim, dropout=0.1, batch_first=True,
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device=device, dtype=dtype
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)
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self.encoder = nn.TransformerEncoder(encoder_layer, num_layers=1)
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self.memory_queries = nn.Parameter(torch.randn(1, num_memory_slots, hidden_dim, device=device, dtype=dtype))
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self.memory_attention = nn.MultiheadAttention(
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embed_dim=hidden_dim, num_heads=num_heads, dropout=0.1, batch_first=True,
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device=device, dtype=dtype
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)
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self.memory_layernorm = nn.LayerNorm(hidden_dim, device=device, dtype=dtype)
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self.decoder_attention = nn.MultiheadAttention(
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embed_dim=hidden_dim, num_heads=num_heads, dropout=0.1, batch_first=True,
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device=device, dtype=dtype
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)
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self.decoder_layernorm = nn.LayerNorm(hidden_dim, device=device, dtype=dtype)
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self.decoder_ffn = nn.Sequential(
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nn.Linear(hidden_dim, ff_dim, device=device, dtype=dtype),
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nn.ReLU(),
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nn.Linear(ff_dim, hidden_dim, device=device, dtype=dtype)
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)
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def forward(self, memory_input_sequence: torch.Tensor):
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batch_size = memory_input_sequence.shape[0]
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encoded_vectors = self.encoder(memory_input_sequence)
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queries = self.memory_queries.expand(batch_size, -1, -1)
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compressed_memory, _ = self.memory_attention(query=queries, key=encoded_vectors, value=encoded_vectors)
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compressed_memory = self.memory_layernorm(compressed_memory + queries)
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reconstructed, _ = self.decoder_attention(query=encoded_vectors, key=compressed_memory, value=compressed_memory)
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reconstructed_vectors = self.decoder_layernorm(reconstructed + encoded_vectors)
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reconstructed_vectors = self.decoder_ffn(reconstructed_vectors)
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return compressed_memory, reconstructed_vectors
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# --- BUILDING BLOCK 2: The Custom Layer (With Iterative Self-Correction) ---
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class GCVectorMemoryLayer(nn.Module):
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def __init__(self, original_layer: nn.Linear, global_input_dim: int,
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memory_dim: int, num_memory_slots: int, memory_num_heads: int,
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global_state_storage: Dict):
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super().__init__()
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self.input_dim = original_layer.in_features
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self.output_dim = original_layer.out_features
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self.memory_dim = memory_dim
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self.global_state_storage = global_state_storage
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self.linear = original_layer
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device, dtype = self.linear.weight.device, self.linear.weight.dtype
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# This part is correct: initialize with the correct dtype
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self.local_state_proj = nn.Linear(self.input_dim, memory_dim, device=device, dtype=dtype)
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self.global_state_proj = nn.Linear(global_input_dim, memory_dim, device=device, dtype=dtype)
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self.memory_head = VectorMemoryHead(
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hidden_dim=memory_dim, num_memory_slots=num_memory_slots,
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num_heads=memory_num_heads, ff_dim=memory_dim * 2, device=device, dtype=dtype
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)
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self.correction_head = nn.Linear(memory_dim, 2 * self.output_dim, device=device, dtype=dtype)
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# --- NEW: Parameter for iterative self-correction ---
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# This can be changed at inference time to apply the correction multiple times.
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# Default is 1 to match training behavior.
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self.num_correction_passes: int = 1
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self.last_corrected_activation: Optional[torch.Tensor] = None
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self.last_additive_correction: Optional[torch.Tensor] = None
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self.last_memory_input: Optional[torch.Tensor] = None
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self.last_reconstructed_from_memory: Optional[torch.Tensor] = None
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def forward(self, x: torch.Tensor):
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base_output = self.linear(x)
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# If no global state is available or correction is disabled, return base output.
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if 'embeds' not in self.global_state_storage or self.num_correction_passes < 1:
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return base_output
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global_embeds = self.global_state_storage['embeds']
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if global_embeds.shape[1] != x.shape[1]: global_embeds = global_embeds[:, -x.shape[1]:, :]
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B, S, _ = x.shape
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with torch.enable_grad():
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# --- 1. Calculate the correction signal ONCE ---
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proj_local = self.local_state_proj(x)
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proj_global = self.global_state_proj(global_embeds)
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memory_input = torch.stack([proj_global, proj_local], dim=2)
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memory_input_flat = memory_input.view(B * S, 2, self.memory_dim)
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compressed_mem_flat, recon_flat = self.memory_head(memory_input_flat)
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aggregated_thought_flat = compressed_mem_flat.mean(dim=1)
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aggregated_thought = aggregated_thought_flat.view(B, S, self.memory_dim)
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raw_correction = self.correction_head(aggregated_thought)
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gate, value = torch.chunk(raw_correction, 2, dim=-1)
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# --- 2. Iteratively apply the correction signal ---
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corrected_activation = base_output
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for _ in range(self.num_correction_passes):
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corrected_activation = corrected_activation * torch.sigmoid(gate.to(x.dtype)) + value.to(x.dtype)
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# During training, store the final activation and the original correction signal
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# for loss calculation.
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if self.training:
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self.last_corrected_activation = corrected_activation
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self.last_additive_correction = value # The 'value' is the core additive signal
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self.last_memory_input = memory_input_flat
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self.last_reconstructed_from_memory = recon_flat
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return corrected_activation
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# --- BUILDING BLOCK 3: The Full Custom Model ---
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class Phi3WithVectorMemoryForCausalLM(Phi3ForCausalLM):
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def __init__(self, config):
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super().__init__(config)
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self.global_state_storage = {}
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self.target_layer_path = "model.layers.15.mlp.gate_up_proj"
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self.model.embed_tokens.register_forward_hook(
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lambda module, input, output: self.global_state_storage.update({'embeds': output.detach()})
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)
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try:
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original_layer = self.get_submodule(self.target_layer_path)
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custom_layer = GCVectorMemoryLayer(
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original_layer=original_layer, global_input_dim=config.hidden_size,
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memory_dim=64, num_memory_slots=8, memory_num_heads=4,
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global_state_storage=self.global_state_storage
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)
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parent_path = ".".join(self.target_layer_path.split('.')[:-1])
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child_name = self.target_layer_path.split('.')[-1]
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setattr(self.get_submodule(parent_path), child_name, custom_layer)
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print(f"Successfully replaced '{self.target_layer_path}' with GCVectorMemoryLayer.")
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except AttributeError:
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print(f"Could not find target layer '{self.target_layer_path}'. Model remains unmodified.")
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# --- END OF FILE architecture.py ---
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chat_template.jinja
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{% for message in messages %}{% if message['role'] == 'system' %}{{'<|system|>
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' + message['content'] + '<|end|>
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'}}{% elif message['role'] == 'user' %}{{'<|user|>
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' + message['content'] + '<|end|>
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'}}{% elif message['role'] == 'assistant' %}{{'<|assistant|>
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' + message['content'] + '<|end|>
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'}}{% endif %}{% endfor %}{% if add_generation_prompt %}{{ '<|assistant|>
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' }}{% else %}{{ eos_token }}{% endif %}
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config.json
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{
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"architectures": [
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"Phi3ForCausalLM"
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],
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"attention_bias": false,
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"attention_dropout": 0.0,
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"auto_map": {
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"AutoModelForCausalLM": "architecture.Phi3WithVectorMemoryForCausalLM"
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},
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"bos_token_id": 1,
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"embd_pdrop": 0.0,
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"eos_token_id": 32000,
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"hidden_act": "silu",
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"hidden_size": 3072,
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"initializer_range": 0.02,
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"intermediate_size": 8192,
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"max_position_embeddings": 4096,
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"model_type": "phi3",
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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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"original_max_position_embeddings": 4096,
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"pad_token_id": 32000,
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"resid_pdrop": 0.0,
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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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"sliding_window": 2047,
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"tie_word_embeddings": false,
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"torch_dtype": "bfloat16",
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"transformers_version": "4.52.4",
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"use_cache": true,
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"vocab_size": 32064
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}
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generation_config.json
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{
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"_from_model_config": true,
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"bos_token_id": 1,
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4 |
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"eos_token_id": 32000,
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"pad_token_id": 32000,
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"transformers_version": "4.52.4"
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}
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model-00001-of-00002.safetensors
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version https://git-lfs.github.com/spec/v1
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oid sha256:73c7d81226836583408bd6d5c9dc170c8190b92563d1d3d4dfd1ddbcb645ec31
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size 4977709096
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model-00002-of-00002.safetensors
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version https://git-lfs.github.com/spec/v1
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oid sha256:3f311787aa136e858556caa8543015161edcad85ba81b6a36072443d7fa73c87
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+
size 2669692552
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model.safetensors.index.json
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