Spark-X2.5-4B / modeling_spark.py
dongjiang1989's picture
Initial release of Spark-X2.5-4B
ea14618
Raw
History Blame Contribute Delete
19.4 kB
import math
import torch
import torch.nn.functional as F
from torch import nn
from transformers.activations import ACT2FN
from transformers.cache_utils import Cache, DynamicCache
from transformers.generation import GenerationMixin
from transformers.masking_utils import create_causal_mask, create_sliding_window_causal_mask
from transformers.modeling_outputs import (
BaseModelOutputWithPast,
CausalLMOutputWithPast,
)
from transformers.modeling_utils import PreTrainedModel
from transformers.processing_utils import Unpack
from transformers.pytorch_utils import ALL_LAYERNORM_LAYERS
from transformers.utils import TransformersKwargs, can_return_tuple, logging
from .configuration_spark import Spark2_5Config
logger = logging.get_logger(__name__)
_CONFIG_FOR_DOC = "Spark2_5Config"
def rotate_half(x):
x1 = x[..., : x.shape[-1] // 2]
x2 = x[..., x.shape[-1] // 2 :]
return torch.cat((-x2, x1), dim=-1)
def compute_rope_cos_sin(positions, head_dim, rope_theta, partial_rotary_factor=1.0, device="cpu"):
rope_head_dim = int(head_dim * partial_rotary_factor)
inv_freq = 1.0 / (rope_theta ** (torch.arange(0, rope_head_dim, 2, dtype=torch.int64).to(device="cpu", dtype=torch.float) / rope_head_dim))
inv_freq = inv_freq.to(device)
t = positions.to(device=device, dtype=torch.float32)
freqs = torch.outer(t, inv_freq)
freqs = torch.cat([freqs, freqs], dim=-1)
cos = freqs.cos()
sin = freqs.sin()
return cos, sin
def apply_rotary_pos_emb(x, cos, sin):
rope_head_dim = cos.shape[-1]
x_f32 = x.float()
if x_f32.shape[-1] > rope_head_dim:
x_rot = x_f32[..., :rope_head_dim]
x_pass = x_f32[..., rope_head_dim:]
c = cos.unsqueeze(0).unsqueeze(0)
s = sin.unsqueeze(0).unsqueeze(0)
x_rot = x_rot * c + rotate_half(x_rot) * s
result = torch.cat([x_rot, x_pass], dim=-1)
else:
c = cos.unsqueeze(0).unsqueeze(0)
s = sin.unsqueeze(0).unsqueeze(0)
result = x_f32 * c + rotate_half(x_f32) * s
return result.to(x.dtype)
def repeat_kv(hidden_states: torch.Tensor, n_rep: int) -> torch.Tensor:
batch, num_key_value_heads, slen, head_dim = hidden_states.shape
if n_rep == 1:
return hidden_states
hidden_states = hidden_states[:, :, None, :, :].expand(batch, num_key_value_heads, n_rep, slen, head_dim)
return hidden_states.reshape(batch, num_key_value_heads * n_rep, slen, head_dim)
def eager_attention_forward(
module: nn.Module,
query: torch.Tensor,
key: torch.Tensor,
value: torch.Tensor,
attention_mask: torch.Tensor | None = None,
scaling: float | None = None,
dropout: float = 0.0,
**kwargs: Unpack[TransformersKwargs],
):
key = repeat_kv(key, module.num_key_value_groups)
value = repeat_kv(value, module.num_key_value_groups)
if scaling is None:
scaling = 1.0 / math.sqrt(query.shape[-1])
attn_weights = torch.matmul(query, key.transpose(2, 3)) * scaling
if attention_mask is not None:
causal_mask = attention_mask[:, :, :, : key.shape[-2]]
attn_weights = attn_weights + causal_mask
attn_weights = attn_weights - attn_weights.max(dim=-1, keepdim=True).values
attn_weights = F.softmax(attn_weights, dim=-1, dtype=torch.float32).to(query.dtype)
attn_weights = nn.functional.dropout(attn_weights, p=dropout, training=module.training)
attn_output = torch.matmul(attn_weights, value)
return attn_output, attn_weights
class Spark2_5RMSNorm(nn.Module):
def __init__(self, hidden_size, eps=1e-6):
super().__init__()
self.weight = nn.Parameter(torch.ones(hidden_size))
self.variance_epsilon = eps
def forward(self, hidden_states):
input_dtype = hidden_states.dtype
hidden_states = hidden_states.to(torch.float32)
variance = hidden_states.pow(2).mean(-1, keepdim=True)
hidden_states = hidden_states * torch.rsqrt(variance + self.variance_epsilon)
return (self.weight.float() * hidden_states).to(input_dtype)
def extra_repr(self):
return f"{tuple(self.weight.shape)}, eps={self.variance_epsilon}"
ALL_LAYERNORM_LAYERS.append(Spark2_5RMSNorm)
class Spark2_5MLP(nn.Module):
def __init__(self, config):
super().__init__()
self.config = config
self.hidden_size = config.hidden_size
self.intermediate_size = config.intermediate_size
self.gate_proj = nn.Linear(self.hidden_size, self.intermediate_size, bias=config.mlp_bias)
self.up_proj = nn.Linear(self.hidden_size, self.intermediate_size, bias=config.mlp_bias)
self.down_proj = nn.Linear(self.intermediate_size, self.hidden_size, bias=config.mlp_bias)
if config.hidden_act != "gelu":
raise ValueError(f"只支持hidden_act='gelu',当前传入:{config.hidden_act}")
self.act_fn = ACT2FN[config.hidden_act]
def forward(self, x):
return self.down_proj(self.act_fn(self.gate_proj(x)) * self.up_proj(x))
class Spark2_5Attention(nn.Module):
def __init__(self, config: Spark2_5Config, layer_idx: int | None = None):
super().__init__()
self.config = config
self.layer_idx = layer_idx
self.attention_dropout = config.attention_dropout
self.hidden_size = config.hidden_size
self.num_heads = config.num_attention_heads
self.head_dim = config.head_dim
self.num_key_value_heads = config.num_key_value_heads
self.num_key_value_groups = self.num_heads // self.num_key_value_heads
self.scaling = 1.0 / math.sqrt(self.head_dim)
self.headwise_attn_output_gate = config.headwise_attn_output_gate
self.gate_attn_act_mode = config.gate_attn_act_mode
self.q_dim = self.num_heads * self.head_dim
self.kv_dim = self.num_key_value_heads * self.head_dim
qkv_out_dim = self.q_dim + 2 * self.kv_dim
self.q_k_v_proj = nn.Linear(self.hidden_size, qkv_out_dim, bias=config.attention_bias)
self.g_proj = nn.Linear(self.hidden_size, self.num_heads, bias=config.attention_bias) if self.headwise_attn_output_gate else None
self.out_proj = nn.Linear(self.num_heads * self.head_dim, self.hidden_size, bias=config.attention_bias)
self.sliding_window = None
def forward(
self,
hidden_states: torch.Tensor,
position_embeddings: tuple[torch.Tensor, torch.Tensor],
attention_mask: torch.Tensor | None = None,
past_key_values: Cache | None = None,
cache_position: torch.LongTensor | None = None,
**kwargs: Unpack[TransformersKwargs],
) -> tuple[torch.Tensor, torch.Tensor]:
input_shape = hidden_states.shape[:-1]
bsz, seq_len = input_shape
qkv = self.q_k_v_proj(hidden_states)
q = qkv[..., :self.q_dim]
k = qkv[..., self.q_dim:self.q_dim + self.kv_dim]
v = qkv[..., self.q_dim + self.kv_dim:]
gate_score = self.g_proj(hidden_states) if self.g_proj is not None else None
q = q.view(bsz, seq_len, self.num_heads, self.head_dim).transpose(1, 2)
k = k.view(bsz, seq_len, self.num_key_value_heads, self.head_dim).transpose(1, 2)
v = v.view(bsz, seq_len, self.num_key_value_heads, self.head_dim).transpose(1, 2)
if gate_score is not None:
gate_score = gate_score.view(bsz, seq_len, self.num_heads, 1).transpose(1, 2)
cos, sin = position_embeddings
q = apply_rotary_pos_emb(q, cos, sin)
k = apply_rotary_pos_emb(k, cos, sin)
if past_key_values is not None:
cache_kwargs = {"sin": sin, "cos": cos, "cache_position": cache_position}
k, v = past_key_values.update(k, v, self.layer_idx, cache_kwargs)
attn_output, attn_weights = eager_attention_forward(
self, q, k, v,
attention_mask=attention_mask,
scaling=self.scaling,
dropout=self.attention_dropout if self.training else 0.0,
)
if gate_score is not None:
if self.gate_attn_act_mode == "sigmoid":
gate = torch.sigmoid(gate_score.float())
elif self.gate_attn_act_mode == "silu":
gate = F.silu(gate_score.float())
else:
raise ValueError(f"Unsupported gate_attn_act_mode: {self.gate_attn_act_mode}")
gate = gate.to(attn_output.dtype)
attn_output = attn_output * gate
attn_output = attn_output.transpose(1, 2).contiguous().view(bsz, seq_len, -1)
attn_output = self.out_proj(attn_output)
return attn_output, attn_weights
class Spark2_5DecoderLayer(nn.Module):
def __init__(self, config: Spark2_5Config, layer_idx: int):
super().__init__()
self.hidden_size = config.hidden_size
self.self_attn = Spark2_5Attention(config=config, layer_idx=layer_idx)
self.mlp = Spark2_5MLP(config)
self.input_layernorm = Spark2_5RMSNorm(config.hidden_size, eps=config.rms_norm_eps)
self.post_attention_layernorm = Spark2_5RMSNorm(config.hidden_size, eps=config.rms_norm_eps)
self.layer_type = config.layer_types[layer_idx] if layer_idx < len(config.layer_types) else "full_attention"
if self.layer_type == "sliding_attention" and config.sliding_window is not None:
self.self_attn.sliding_window = config.sliding_window
else:
self.self_attn.sliding_window = None
self.self_attn.partial_rotary_factor = config.get_partial_rotary_factor(self.layer_type)
def forward(
self,
hidden_states: torch.Tensor,
position_embeddings: tuple[torch.Tensor, torch.Tensor],
attention_mask: torch.Tensor | None = None,
past_key_values: Cache | None = None,
cache_position: torch.LongTensor | None = None,
position_ids: torch.LongTensor | None = None,
**kwargs: Unpack[TransformersKwargs]
) -> torch.Tensor:
residual = hidden_states
hidden_states = self.input_layernorm(hidden_states)
hidden_states = hidden_states.to(self.mlp.gate_proj.weight.dtype)
hidden_states, _ = self.self_attn(
hidden_states=hidden_states,
position_embeddings=position_embeddings,
attention_mask=attention_mask,
past_key_values=past_key_values,
cache_position=cache_position,
position_ids=position_ids,
)
hidden_states = residual + hidden_states
residual = hidden_states
hidden_states = self.post_attention_layernorm(hidden_states)
hidden_states = hidden_states.to(self.mlp.gate_proj.weight.dtype)
hidden_states = self.mlp(hidden_states)
hidden_states = residual + hidden_states
return hidden_states
class Spark2_5PreTrainedModel(PreTrainedModel):
config_class = Spark2_5Config
base_model_prefix = "model"
supports_gradient_checkpointing = True
_no_split_modules = ["Spark2_5DecoderLayer"] # noqa: RUF012
_skip_keys_device_placement = ["past_key_values"] # noqa: RUF012
def _init_weights(self, module):
std = self.config.initializer_range
if isinstance(module, nn.Linear):
module.weight.data.normal_(mean=0.0, std=std)
if module.bias is not None:
module.bias.data.zero_()
elif isinstance(module, nn.Embedding):
module.weight.data.normal_(mean=0.0, std=std)
if module.padding_idx is not None:
module.weight.data[module.padding_idx].zero_()
class Spark2_5Model(Spark2_5PreTrainedModel):
def __init__(self, config: Spark2_5Config):
super().__init__(config)
self.padding_idx = config.pad_token_id
self.vocab_size = config.vocab_size
self.embedding = nn.Embedding(config.vocab_size, config.hidden_size, self.padding_idx)
self.layers = nn.ModuleList(
[Spark2_5DecoderLayer(config, layer_idx) for layer_idx in range(config.num_hidden_layers)]
)
self.norm = Spark2_5RMSNorm(config.hidden_size, eps=config.rms_norm_eps)
self.gradient_checkpointing = False
self.has_sliding_layers = "sliding_attention" in config.layer_types
self.post_init()
def get_input_embeddings(self):
return self.embedding
def set_input_embeddings(self, value):
self.embedding = value
def forward(
self,
input_ids: torch.LongTensor = None,
attention_mask: torch.Tensor | None = None,
position_ids: torch.LongTensor | None = None,
past_key_values: Cache | list[torch.FloatTensor] | None = None,
inputs_embeds: torch.FloatTensor | None = None,
use_cache: bool | None = None,
cache_position: torch.LongTensor | None = None,
token_type_ids: torch.LongTensor | None = None,
**kwargs: Unpack[TransformersKwargs],
) -> BaseModelOutputWithPast:
use_cache = use_cache if use_cache is not None else self.config.use_cache
if (input_ids is None) ^ (inputs_embeds is not None):
raise ValueError(
"You cannot specify both input_ids and inputs_embeds at the same time, and must specify either one"
)
if self.gradient_checkpointing and self.training and use_cache:
logger.warning_once(
"`use_cache=True` is incompatible with gradient checkpointing. Setting `use_cache=False`."
)
use_cache = False
if inputs_embeds is None:
inputs_embeds = self.embedding(input_ids)
if use_cache and past_key_values is None:
past_key_values = DynamicCache(config=self.config)
if cache_position is None:
past_seen_tokens = past_key_values.get_seq_length() if past_key_values is not None else 0
cache_position = torch.arange(
past_seen_tokens, past_seen_tokens + inputs_embeds.shape[1], device=inputs_embeds.device
)
if position_ids is None:
position_ids = cache_position.unsqueeze(0)
if not isinstance(attention_mask, dict):
mask_kwargs = {
"config": self.config,
"input_embeds": inputs_embeds,
"attention_mask": attention_mask,
"cache_position": cache_position,
"past_key_values": past_key_values,
"position_ids": position_ids,
}
causal_mask_mapping = {
"full_attention": create_causal_mask(**mask_kwargs),
}
if self.has_sliding_layers:
causal_mask_mapping["sliding_attention"] = create_sliding_window_causal_mask(**mask_kwargs)
else:
causal_mask_mapping = attention_mask
hidden_states = inputs_embeds.float()
device = hidden_states.device
dtype = self.embedding.weight.dtype
head_dim = self.config.head_dim
rope_cache = {}
for lt in set(self.config.layer_types):
rope_theta = self.config.get_rope_theta(lt)
prf = self.config.get_partial_rotary_factor(lt)
cos, sin = compute_rope_cos_sin(cache_position, head_dim, rope_theta, partial_rotary_factor=prf, device=device)
rope_cache[lt] = (cos, sin)
for decoder_layer in self.layers:
layer_type = decoder_layer.layer_type
position_embeddings = rope_cache.get(layer_type, rope_cache.get("full_attention"))
layer_attention_mask = causal_mask_mapping.get(layer_type, causal_mask_mapping.get("full_attention"))
if self.gradient_checkpointing and self.training:
layer_outputs = self._gradient_checkpointing_func(
decoder_layer.__call__,
hidden_states,
position_embeddings,
layer_attention_mask,
)
hidden_states = layer_outputs[0] if isinstance(layer_outputs, tuple) else layer_outputs
else:
hidden_states = decoder_layer(
hidden_states,
position_embeddings=position_embeddings,
attention_mask=layer_attention_mask,
past_key_values=past_key_values,
cache_position=cache_position,
position_ids=position_ids,
)
hidden_states = self.norm(hidden_states)
hidden_states = hidden_states.to(dtype)
return BaseModelOutputWithPast(
last_hidden_state=hidden_states,
past_key_values=past_key_values if use_cache else None,
)
class Spark2_5ForCausalLM(Spark2_5PreTrainedModel, GenerationMixin):
_tied_weights_keys = ["lm_head.weight"] # noqa: RUF012
def __init__(self, config):
super().__init__(config)
self.model = Spark2_5Model(config)
self.vocab_size = config.vocab_size
self.lm_head = nn.Linear(config.hidden_size, config.vocab_size, bias=False)
self.post_init()
def get_input_embeddings(self):
return self.model.embedding
def set_input_embeddings(self, value):
self.model.embedding = value
def get_output_embeddings(self):
return self.lm_head
def set_output_embeddings(self, new_embeddings):
self.lm_head = new_embeddings
def set_decoder(self, decoder):
self.model = decoder
def get_decoder(self):
return self.model
@can_return_tuple
def forward(
self,
input_ids: torch.LongTensor = None,
attention_mask: torch.Tensor | None = None,
position_ids: torch.LongTensor | None = None,
past_key_values: Cache | list[torch.FloatTensor] | None = None,
inputs_embeds: torch.FloatTensor | None = None,
labels: torch.LongTensor | None = None,
use_cache: bool | None = None,
cache_position: torch.LongTensor | None = None,
logits_to_keep: int = 0,
token_type_ids: torch.LongTensor | None = None,
**kwargs: Unpack[TransformersKwargs],
) -> CausalLMOutputWithPast:
outputs: BaseModelOutputWithPast = self.model(
input_ids=input_ids,
attention_mask=attention_mask,
position_ids=position_ids,
past_key_values=past_key_values,
inputs_embeds=inputs_embeds,
use_cache=use_cache,
cache_position=cache_position,
)
hidden_states = outputs.last_hidden_state
slice_indices = slice(-logits_to_keep, None) if isinstance(logits_to_keep, int) else logits_to_keep
hidden_states = hidden_states[:, slice_indices, :]
if self.config.tie_word_embeddings:
embed_weight = self.model.embedding.weight
logits = F.linear(hidden_states, embed_weight)
else:
logits = self.lm_head(hidden_states)
loss = None
if labels is not None:
loss = self.loss_function(logits=logits, labels=labels, vocab_size=self.config.vocab_size, **kwargs)
return CausalLMOutputWithPast(
loss=loss,
logits=logits,
past_key_values=outputs.past_key_values,
hidden_states=outputs.hidden_states,
attentions=outputs.attentions,
)
__all__ = ["Spark2_5Config", "Spark2_5ForCausalLM", "Spark2_5Model"]