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import numpy as np
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import pytest
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import torch
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from packaging import version
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from colossalai.inference.utils import get_alibi_slopes
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from colossalai.kernel.triton import flash_decoding_attention
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from colossalai.utils import get_current_device
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from tests.test_infer.test_kernels.triton.kernel_utils import (
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convert_kv_unpad_to_padded,
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create_attention_mask,
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generate_caches_and_block_tables_v2,
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generate_caches_and_block_tables_v3,
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torch_attn_ref,
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)
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from tests.test_infer.test_kernels.triton.test_context_attn_unpad import generate_alibi_mask
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try:
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import triton # noqa
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HAS_TRITON = True
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except ImportError:
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HAS_TRITON = False
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print("please install triton from https://github.com/openai/triton")
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TRITON_CUDA_SUPPORT = version.parse(torch.version.cuda) > version.parse("11.4")
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HEAD_DIM = 128
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def numpy_allclose(x, y, rtol, atol):
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x_numpy = x.detach().cpu().numpy()
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y_numpy = y.detach().cpu().numpy()
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np.testing.assert_allclose(x_numpy, y_numpy, rtol=rtol, atol=atol)
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def prepare_data(
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bsz: int,
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num_attn_heads: int,
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num_kv_heads: int,
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head_dim: int,
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same_context_len: bool,
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q_len: int,
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max_kv_seq_len: int,
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dtype=torch.float16,
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device="cuda",
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):
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# Use the provided maximum sequence length for each sequence when testing with teh same context length,
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# otherwise generate random context lengths.
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# returns
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# q [bsz, num_attn_heads, q_len, head_dim]
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# k_unpad/v_unpad [num_tokens, num_kv_heads, head_dim]
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kv_lengths = (
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torch.tensor([max_kv_seq_len for _ in range(bsz)], dtype=torch.int32, device=device)
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if same_context_len
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else torch.randint(low=1, high=max_kv_seq_len, size=(bsz,), dtype=torch.int32, device=device)
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)
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num_tokens = torch.sum(kv_lengths).item()
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q_size = (bsz, q_len, num_attn_heads, head_dim)
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q = torch.empty(size=q_size, dtype=dtype, device=device).normal_(mean=0.0, std=0.5).transpose(1, 2)
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kv_size = (num_tokens, 2 * num_kv_heads, head_dim)
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kv_unpad = torch.empty(size=kv_size, dtype=dtype, device=device).normal_(mean=0.0, std=0.5)
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k_unpad, v_unpad = torch.split(kv_unpad, [num_kv_heads, num_kv_heads], dim=-2)
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return q, k_unpad, v_unpad, kv_lengths
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@pytest.mark.skipif(not (HAS_TRITON and TRITON_CUDA_SUPPORT), reason="requires triton")
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@pytest.mark.parametrize("bsz", [7, 16])
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@pytest.mark.parametrize("block_size", [16, 32])
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@pytest.mark.parametrize("max_num_blocks_per_seq", [8, 16])
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@pytest.mark.parametrize("num_attn_heads", [16])
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@pytest.mark.parametrize("kv_group_num", [1, 4])
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@pytest.mark.parametrize("same_context_len", [True, False])
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@pytest.mark.parametrize("q_len", [1, 5])
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@pytest.mark.parametrize("use_alibi_slopes", [True, False])
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@pytest.mark.parametrize("use_new_kcache_layout", [True, False])
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def test_flash_decoding(
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bsz: int,
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block_size: int,
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max_num_blocks_per_seq: int,
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num_attn_heads: int,
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kv_group_num: int,
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same_context_len: bool,
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q_len: int,
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use_alibi_slopes: bool,
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use_new_kcache_layout: bool,
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):
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if use_new_kcache_layout and use_alibi_slopes:
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# TODO(yuanheng-zhao): Since the alibi kernel is pretty similar to the original one,
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# the code (alibi kernel) will be refactored later to avoid code duplication, when
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# the whole triton flow with new k cache layout has been supported and tested.
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# And tests for the alibi kernel using new kcache layout will be added then.
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pytest.skip("Alibi kernel does not support new kcache layout yet.")
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torch.manual_seed(123)
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torch.cuda.empty_cache()
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torch.cuda.synchronize()
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torch.cuda.reset_peak_memory_stats()
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num_kv_heads = num_attn_heads // kv_group_num
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assert isinstance(num_kv_heads, int) and num_kv_heads > 0, "Invalid number of kv heads."
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max_seq_len = block_size * max_num_blocks_per_seq
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dtype = torch.float32
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device = get_current_device()
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if use_alibi_slopes:
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alibi_slopes = get_alibi_slopes(num_attn_heads, device)
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# Currently, alibi flash decoding does not support q_len>1.
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q_len = 1
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else:
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alibi_slopes = None
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q, k_unpad, v_unpad, kv_lengths = prepare_data(
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bsz, num_attn_heads, num_kv_heads, HEAD_DIM, same_context_len, q_len, max_seq_len, dtype, device
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)
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# The maximum sequence length in the batch (if context lengths randomly generated)
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max_kv_len_in_b = kv_lengths.max().item()
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k_torch = convert_kv_unpad_to_padded(k_unpad, kv_lengths, bsz, max_kv_len_in_b)
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v_torch = convert_kv_unpad_to_padded(v_unpad, kv_lengths, bsz, max_kv_len_in_b)
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attention_mask = create_attention_mask(kv_lengths, bsz, q_len, max_kv_len_in_b, q.device)
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if use_alibi_slopes:
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alibi_mask = generate_alibi_mask(alibi_slopes, num_attn_heads, max_kv_len_in_b, q.device)
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attention_mask = attention_mask + alibi_mask
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if q_len == 1:
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if len(attention_mask.size()) == 4:
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attention_mask = attention_mask[:, :, -1:, :]
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else:
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attention_mask = attention_mask[:, -1:, :]
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out_torch = torch_attn_ref(
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q, k_torch, v_torch, attention_mask, bsz, q_len, max_kv_len_in_b, num_attn_heads, num_kv_heads, HEAD_DIM
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)
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if use_new_kcache_layout:
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k_cache, v_cache, block_tables = generate_caches_and_block_tables_v3(
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k_unpad, v_unpad, kv_lengths, bsz, max_num_blocks_per_seq, block_size, dtype, device
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)
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else:
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k_cache, v_cache, block_tables = generate_caches_and_block_tables_v2(
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k_unpad, v_unpad, kv_lengths, bsz, max_num_blocks_per_seq, block_size, dtype, device
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)
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block_tables = block_tables.to(device=device)
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# The maximum block length splitted on kv should be the kv cache block size
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kv_max_split_num = (max_kv_len_in_b + block_size - 1) // block_size
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output = torch.empty((bsz * q_len, num_attn_heads, HEAD_DIM), dtype=q.dtype, device=q.device)
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mid_output = torch.empty(
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size=(bsz * q_len, num_attn_heads, kv_max_split_num, HEAD_DIM), dtype=torch.float32, device=q.device
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)
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mid_output_lse = torch.empty(
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size=(bsz * q_len, num_attn_heads, kv_max_split_num), dtype=torch.float32, device=q.device
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)
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sm_scale = 1.0 / (HEAD_DIM**0.5)
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# Here we use different methods to hide the q_len dimension,
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# refer to attention forward function in modeling.
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if q_len > 1:
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q = q.transpose(1, 2).contiguous() # [bsz, q_len, num_heads, head_dim]
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q = q.view(-1, q.size(-2), q.size(-1)) # [bsz * q_len, num_heads, head_dim]
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else:
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q = q.squeeze(2)
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assert q.shape == (bsz * q_len, num_attn_heads, HEAD_DIM)
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out_triton = flash_decoding_attention(
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q,
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k_cache,
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v_cache,
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kv_lengths,
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block_tables,
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block_size,
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max_kv_len_in_b,
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output,
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mid_output,
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mid_output_lse,
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alibi_slopes=alibi_slopes,
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sm_scale=sm_scale,
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kv_group_num=kv_group_num,
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q_len=q_len,
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use_new_kcache_layout=use_new_kcache_layout,
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) # [bsz * q_len, num_heads, head_dim]
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assert out_torch.shape == out_triton.shape
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rtol = 1e-4
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# After the shape becomes larger, some data elements are too small, leading to excessively large relative errors.
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if use_alibi_slopes:
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rtol = 100
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numpy_allclose(out_torch, out_triton, atol=1e-3, rtol=rtol)
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if __name__ == "__main__":
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test_flash_decoding(16, 32, 32, 16, 1, True, 1, use_alibi_slopes=False, use_new_kcache_layout=True)
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