enable fp4 fused mlp and qkv (#10531)
* enable fp4 fused mlp and qkv * update qwen * update qwen2
This commit is contained in:
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9367db7f2b
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8 changed files with 42 additions and 35 deletions
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@ -41,6 +41,7 @@ from ipex_llm.transformers.models.utils import apply_rotary_pos_emb_cache_freq_x
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from ipex_llm.transformers.models.utils import mlp_fusion_check, GELU
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from ipex_llm.transformers.models.utils import is_enough_kv_cache_room_4_36, rotate_half
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from ipex_llm.transformers.low_bit_linear import SYM_INT4, FP8E5
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from ipex_llm.transformers.models.utils import decoding_fast_path_qtype_check
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KV_CACHE_ALLOC_BLOCK_LENGTH = 256
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@ -74,8 +75,8 @@ def should_use_fuse_rope(self, hidden_states, position_ids):
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return use_fuse_rope
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def use_decoding_fast_path(q_type, use_fuse_rope, enough_kv_room, bs):
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return q_type in [SYM_INT4, FP8E5] and \
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def use_decoding_fast_path(proj, use_fuse_rope, enough_kv_room, bs):
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return decoding_fast_path_qtype_check(proj) and \
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use_fuse_rope and enough_kv_room and bs == 1
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@ -137,7 +138,7 @@ def gemma_attention_forward(
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use_fuse_rope = should_use_fuse_rope(self, hidden_states, position_ids)
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enough_kv_room = is_enough_kv_cache_room_4_36(past_key_value, self.layer_idx)
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decoding_fast_path = use_decoding_fast_path(self.q_proj.qtype,
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decoding_fast_path = use_decoding_fast_path(self.q_proj,
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use_fuse_rope,
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enough_kv_room,
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bsz * q_len)
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@ -50,7 +50,7 @@ from ipex_llm.transformers.models.utils import use_flash_attention, use_esimd_sd
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from ipex_llm.transformers.models.utils import mlp_fusion_check, fp16_fusion_check
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from transformers.modeling_outputs import BaseModelOutputWithPast
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from transformers.models.llama.modeling_llama import LlamaModel
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from ipex_llm.transformers.low_bit_linear import SYM_INT4, FP8E5, IQ2_XXS
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from ipex_llm.transformers.low_bit_linear import SYM_INT4, FP8E5, IQ2_XXS, FP4
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from ipex_llm.ggml.quantize import ggml_tensor_qtype
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from ipex_llm.utils.common import invalidInputError
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@ -64,6 +64,12 @@ from transformers import logging
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logger = logging.get_logger(__name__)
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def llama_decoding_fast_path_qtype_check(proj):
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# IQ2_XXS only can be used in Llama-like model
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qtype = getattr(proj, "qtype", None)
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return qtype in [SYM_INT4, FP8E5, IQ2_XXS, FP4]
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def repeat_kv(hidden_states: torch.Tensor, n_rep: int) -> torch.Tensor:
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"""
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This is the equivalent of torch.repeat_interleave(x, dim=1, repeats=n_rep). The hidden states
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@ -329,8 +335,7 @@ def llama_attention_forward_4_31_quantized(
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use_fuse_rope = should_use_fuse_rope(self, hidden_states, position_ids)
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enough_kv_room = is_enough_kv_cache_room_4_31(past_key_value, seq_len=q_len)
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qtype = getattr(self.q_proj, "qtype", None)
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qtype_check = qtype in [SYM_INT4, FP8E5, IQ2_XXS]
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qtype_check = llama_decoding_fast_path_qtype_check(self.q_proj)
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no_tp = not self.config.pretraining_tp > 1
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decoding_fast_path = (no_tp and qtype_check and use_fuse_rope
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and enough_kv_room and bsz * q_len == 1)
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@ -463,8 +468,7 @@ def llama_attention_forward_4_31_original(
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use_fuse_rope = should_use_fuse_rope(self, hidden_states, position_ids)
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enough_kv_room = is_enough_kv_cache_room_4_31(past_key_value, seq_len=q_len)
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qtype = getattr(self.q_proj, "qtype", None)
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qtype_check = qtype in [SYM_INT4, FP8E5, IQ2_XXS]
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qtype_check = llama_decoding_fast_path_qtype_check(self.q_proj)
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no_tp = not self.config.pretraining_tp > 1
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decoding_fast_path = (no_tp and qtype_check and use_fuse_rope and
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enough_kv_room and bsz * q_len == 1)
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@ -692,8 +696,7 @@ def llama_attention_selective_batching_forward_4_31(
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# TODO: decoding fast path
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use_fuse_rope = should_use_fuse_rope(self, hidden_states, position_ids)
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enough_kv_room = past_key_value is not None and is_enough_kv_cache_room_4_31(past_key_value[0])
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qtype = getattr(self.q_proj, "qtype", None)
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qtype_check = qtype in [SYM_INT4, FP8E5, IQ2_XXS]
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qtype_check = llama_decoding_fast_path_qtype_check(self.q_proj)
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no_tp = not self.config.pretraining_tp > 1
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decoding_fast_path = (no_tp and qtype_check and use_fuse_rope and
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bsz * q_len == 1)
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@ -911,8 +914,7 @@ def llama_attention_forward_4_36_quantized(
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device = hidden_states.device
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use_fuse_rope = should_use_fuse_rope(self, hidden_states, position_ids)
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enough_kv_room = is_enough_kv_cache_room_4_36(past_key_value, self.layer_idx, seq_len=q_len)
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qtype = getattr(self.q_proj, "qtype", None)
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qtype_check = qtype in [SYM_INT4, FP8E5]
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qtype_check = llama_decoding_fast_path_qtype_check(self.q_proj)
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no_tp = not self.config.pretraining_tp > 1
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decoding_fast_path = (no_tp and qtype_check and use_fuse_rope
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and enough_kv_room and bsz * q_len == 1)
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@ -1093,8 +1095,7 @@ def llama_attention_forward_4_36_original(
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use_fuse_rope = should_use_fuse_rope(self, hidden_states, position_ids)
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enough_kv_room = is_enough_kv_cache_room_4_36(past_key_value, self.layer_idx, seq_len=q_len)
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qtype = getattr(self.q_proj, "qtype", None)
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qtype_check = qtype in [SYM_INT4, FP8E5, IQ2_XXS]
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qtype_check = llama_decoding_fast_path_qtype_check(self.q_proj)
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no_tp = not self.config.pretraining_tp > 1
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decoding_fast_path = (no_tp and qtype_check and use_fuse_rope and
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enough_kv_room and bsz * q_len == 1)
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@ -53,6 +53,7 @@ from ipex_llm.transformers.models.utils import is_enough_kv_cache_room_4_31, \
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is_enough_kv_cache_room_4_36
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from ipex_llm.transformers.low_bit_linear import SYM_INT4, FP8E5, IQ2_XXS
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from ipex_llm.transformers.models.utils import use_flash_attention, use_esimd_sdp
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from ipex_llm.transformers.models.llama import llama_decoding_fast_path_qtype_check
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try:
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from transformers.cache_utils import Cache
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except ImportError:
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@ -81,8 +82,8 @@ def should_use_fuse_rope(self, hidden_states, position_ids):
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return use_fuse_rope
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def use_decoding_fast_path(q_type, use_fuse_rope, enough_kv_room, bs):
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return q_type in [SYM_INT4, FP8E5, IQ2_XXS] and \
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def use_decoding_fast_path(proj, use_fuse_rope, enough_kv_room, bs):
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return llama_decoding_fast_path_qtype_check(proj) and \
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use_fuse_rope and enough_kv_room and bs == 1
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@ -200,7 +201,7 @@ def mistral_attention_forward_quantized(
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use_fuse_rope = should_use_fuse_rope(self, hidden_states, position_ids)
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enough_kv_room = is_enough_kv_cache_room_4_31(past_key_value)
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decoding_fast_path = use_decoding_fast_path(self.q_proj.qtype,
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decoding_fast_path = use_decoding_fast_path(self.q_proj,
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use_fuse_rope,
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enough_kv_room,
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bsz * q_len)
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@ -375,7 +376,7 @@ def mistral_attention_forward_original(
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use_fuse_rope = should_use_fuse_rope(self, hidden_states, position_ids)
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enough_kv_room = is_enough_kv_cache_room_4_31(past_key_value)
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decoding_fast_path = use_decoding_fast_path(self.q_proj.qtype,
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decoding_fast_path = use_decoding_fast_path(self.q_proj,
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use_fuse_rope,
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enough_kv_room,
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bsz * q_len)
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@ -551,7 +552,7 @@ def mistral_attention_forward_4_36_quantized(
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use_fuse_rope = should_use_fuse_rope(self, hidden_states, position_ids)
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enough_kv_room = is_enough_kv_cache_room_4_36(past_key_value, self.layer_idx, seq_len=q_len)
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decoding_fast_path = use_decoding_fast_path(self.q_proj.qtype,
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decoding_fast_path = use_decoding_fast_path(self.q_proj,
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use_fuse_rope,
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enough_kv_room,
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bsz * q_len)
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@ -731,7 +732,7 @@ def mistral_attention_forward_4_36_original(
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use_fuse_rope = should_use_fuse_rope(self, hidden_states, position_ids)
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enough_kv_room = is_enough_kv_cache_room_4_36(past_key_value, self.layer_idx)
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decoding_fast_path = use_decoding_fast_path(self.q_proj.qtype,
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decoding_fast_path = use_decoding_fast_path(self.q_proj,
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use_fuse_rope,
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enough_kv_room,
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bsz * q_len)
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@ -155,7 +155,7 @@ def mixtral_attention_forward(
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use_fuse_rope = should_use_fuse_rope(self, hidden_states, position_ids)
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enough_kv_room = is_enough_kv_cache_room_4_36(past_key_value, self.layer_idx)
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decoding_fast_path = use_decoding_fast_path(self.q_proj.qtype,
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decoding_fast_path = use_decoding_fast_path(self.q_proj,
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use_fuse_rope,
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enough_kv_room,
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bsz * q_len)
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@ -43,6 +43,7 @@ from ipex_llm.transformers.models.utils import rotate_half, SILU
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from ipex_llm.transformers.models.utils import mlp_fusion_check
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from ipex_llm.transformers.models.utils import apply_rotary_pos_emb_cache_freq_xpu
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from ipex_llm.transformers.models.utils import use_flash_attention, use_esimd_sdp
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from ipex_llm.transformers.models.utils import decoding_fast_path_qtype_check
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from ipex_llm.utils.common import invalidInputError, invalidOperationError
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from ipex_llm.ggml.quantize import ggml_tensor_qtype
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from transformers.modeling_outputs import BaseModelOutputWithPast
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@ -137,7 +138,8 @@ def qwen_attention_forward_original(
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original_dtype = hidden_states.dtype
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use_fuse_rope = should_use_fuse_rope(self, hidden_states)
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decoding_fast_path = (use_fuse_rope and bsz * q_len == 1)
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qtype_check = decoding_fast_path_qtype_check(self.q_proj)
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decoding_fast_path = (qtype_check and use_fuse_rope and bsz * q_len == 1)
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if decoding_fast_path:
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hidden_states = hidden_states.view(1, -1)
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cache_k, cache_v = layer_past[0], layer_past[1]
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@ -332,7 +334,8 @@ def qwen_attention_forward_quantized(
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device = hidden_states.device
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use_fuse_rope = should_use_fuse_rope(self, hidden_states)
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# TODO: use when decoding_fast_path = (use_fuse_rope and bsz * q_len == 1)
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# qtype_check = decoding_fast_path_qtype_check(self.q_proj)
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# TODO: use when decoding_fast_path = (qtype_check and use_fuse_rope and bsz * q_len == 1)
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decoding_fast_path = False
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if decoding_fast_path:
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hidden_states = hidden_states.view(1, -1)
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@ -57,6 +57,7 @@ from transformers.models.qwen2.modeling_qwen2 import Qwen2Model, apply_rotary_po
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from transformers.models.qwen2.modeling_qwen2 import _prepare_4d_causal_attention_mask_for_sdpa
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from transformers.models.qwen2.modeling_qwen2 import _prepare_4d_causal_attention_mask
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from transformers.modeling_outputs import BaseModelOutputWithPast
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from ipex_llm.transformers.models.utils import decoding_fast_path_qtype_check
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try:
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from transformers.cache_utils import Cache, DynamicCache
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@ -431,8 +432,7 @@ def qwen2_attention_forward_origin(
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device = hidden_states.device
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enough_kv_room = is_enough_kv_cache_room_4_36(past_key_value, self.layer_idx)
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qtype = getattr(self.q_proj, "qtype", None)
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qtype_check = qtype in [SYM_INT4, FP8E5]
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qtype_check = decoding_fast_path_qtype_check(self.q_proj)
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decoding_fast_path = (qtype_check and use_fuse_rope
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and enough_kv_room and bsz * q_len == 1)
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if decoding_fast_path:
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@ -601,8 +601,7 @@ def qwen2_sdpa_attention_forward(
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device = hidden_states.device
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enough_kv_room = is_enough_kv_cache_room_4_36(past_key_value, self.layer_idx)
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qtype = getattr(self.q_proj, "qtype", None)
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qtype_check = qtype in [SYM_INT4, FP8E5]
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qtype_check = decoding_fast_path_qtype_check(self.q_proj)
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decoding_fast_path = (qtype_check and use_fuse_rope
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and enough_kv_room and bsz * q_len == 1)
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if decoding_fast_path:
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@ -19,18 +19,20 @@ import torch
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from ipex_llm.utils.common import invalidInputError
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from ipex_llm.ggml.quantize import ggml_tensor_qtype
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from ipex_llm.transformers.utils import get_ipex_version, get_xpu_device_type
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from ipex_llm.transformers.low_bit_linear import SYM_INT4, SYM_INT8, FP8E5, IQ2_XXS, FP4, FP8E4
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FP8_KV_ALLOC_LENGTH = 512
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SYM_INT4 = ggml_tensor_qtype["sym_int4"]
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SYM_INT8 = ggml_tensor_qtype["sym_int8"]
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FP8E4 = ggml_tensor_qtype["fp8_e4m3"]
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FP8E5 = ggml_tensor_qtype["fp8_e5m2"]
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# used in fused mlp forward
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SILU = 0
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GELU = 1
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def decoding_fast_path_qtype_check(proj):
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qtype = getattr(proj, "qtype", None)
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return qtype in [SYM_INT4, FP8E5, FP4]
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def init_kv_cache(batch_size, num_heads, head_dim, current_length, max_length, dtype, device):
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key_cache_storage = torch.empty(batch_size, num_heads,
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max_length, head_dim,
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@ -335,8 +337,7 @@ def mlp_fusion_check(x, qtype, training):
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return False
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if x.device.type != 'xpu':
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return False
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if qtype not in [ggml_tensor_qtype["sym_int4"], ggml_tensor_qtype["fp8_e5m2"],
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ggml_tensor_qtype["gguf_iq2_xxs"]]:
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if qtype not in [SYM_INT4, FP8E5, FP4, IQ2_XXS]:
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return False
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if training or x.requires_grad:
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return False
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@ -36,12 +36,13 @@ from ipex_llm.transformers.models.utils import init_fp8_kv_cache, append_fp8_kv_
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restore_fp8_kv_cache, use_quantize_kv_cache
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from ipex_llm.transformers.models.utils import is_enough_kv_cache_room_4_31, SILU
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from ipex_llm.transformers.low_bit_linear import SYM_INT4, FP8E5
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from ipex_llm.transformers.models.utils import decoding_fast_path_qtype_check
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KV_CACHE_ALLOC_BLOCK_LENGTH = 256
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def use_decoding_fast_path(q_type, use_fuse_rope, enough_kv_room, bs):
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return q_type in [SYM_INT4, FP8E5] and \
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def use_decoding_fast_path(proj, use_fuse_rope, enough_kv_room, bs):
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return decoding_fast_path_qtype_check(proj) and \
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use_fuse_rope and enough_kv_room and bs == 1
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