enable aiter_biased_grouped_topk kernel (#7423)
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@@ -30,6 +30,7 @@ from sglang.srt.managers.expert_location_dispatch import (
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from sglang.srt.managers.schedule_batch import global_server_args_dict
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from sglang.srt.utils import (
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cpu_has_amx_support,
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get_bool_env_var,
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get_compiler_backend,
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is_cpu,
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is_cuda,
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@@ -38,6 +39,7 @@ from sglang.srt.utils import (
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_is_cuda = is_cuda()
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_is_hip = is_hip()
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_use_aiter = get_bool_env_var("SGLANG_USE_AITER") and _is_hip
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_is_cpu_amx_available = cpu_has_amx_support()
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_is_cpu = is_cpu()
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@@ -46,6 +48,11 @@ if _is_cuda:
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if _is_cuda or _is_hip:
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from sgl_kernel import topk_softmax
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if _use_aiter:
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try:
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from aiter import biased_grouped_topk as aiter_biased_grouped_topk
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except ImportError:
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raise ImportError("aiter is required when SGLANG_USE_AITER is set to True")
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def fused_topk_torch_native(
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@@ -347,6 +354,25 @@ def biased_grouped_topk_gpu(
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topk_ids, expert_location_dispatch_info, num_token_non_padded
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)
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return topk_weights, topk_ids
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elif _use_aiter:
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token = gating_output.shape[0]
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device = gating_output.device
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assert (
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hidden_states.shape[0] == gating_output.shape[0]
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), f"Number of tokens mismatch: hidden_states.shape[0] = {hidden_states.shape[0]}, gating_output.shape[0] = {gating_output.shape[0]}"
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topk_weights = torch.empty((token, topk), dtype=torch.float32, device=device)
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topk_ids = torch.empty((token, topk), dtype=torch.int32, device=device)
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aiter_biased_grouped_topk(
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gating_output,
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correction_bias,
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topk_weights,
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topk_ids,
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num_expert_group,
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topk_group,
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renormalize,
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routed_scaling_factor,
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)
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return topk_weights, topk_ids
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else:
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biased_grouped_topk_fn = (
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torch.compile(
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@@ -421,7 +421,7 @@ class CudaGraphRunner:
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empty_cache=False,
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)
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capture_range.set_description(
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f"Capturing batches ({avail_mem=:.2f} GB)"
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f"Capturing batches ({bs=} {avail_mem=:.2f} GB)"
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)
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with patch_model(
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@@ -388,7 +388,8 @@ class DeepseekV2MoE(nn.Module):
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final_hidden_states = self.experts(
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hidden_states=hidden_states, router_logits=router_logits
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)
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if not _is_cuda:
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if not _is_cuda and not _use_aiter:
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# fused in biased_grouped_topk so we can skip here
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final_hidden_states *= self.routed_scaling_factor
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if shared_output is not None:
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final_hidden_states = final_hidden_states + shared_output
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