codegen_cuda.cc 102 KB
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/*!
 * \file target/codegen.cc
 */

#include "codegen_cuda.h"
#include <tvm/arith/analyzer.h>
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#include <tvm/ffi/function.h>
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#include <tvm/tir/index_map.h>
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#include <tvm/tir/op.h>

#include <cmath>
#include <string>
#include <utility>
#include <vector>

#include "../op/builtin.h"
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#include "./ptx.h"
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#include "arith/pattern_match.h"
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namespace tvm {
namespace codegen {
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using namespace tvm::tl::codegen;
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struct CUDAMath {
  std::string operator()(DataType t, std::string name) const {
    if (t.is_float()) {
      switch (t.bits()) {
      case 64:
        return name;
      case 32:
        return name + 'f';
      case 16: {
        if (name == "fabs") {
          return "__habs";
        } else if (name == "round") {
          return "hrint";
        } else {
          return "h" + name;
        }
      }
      default:
        return "";
      }
    } else if (t.is_bfloat16()) {
      if (name == "fabs") {
        return "__habs";
      } else if (name == "round") {
        return "hrint";
      } else {
        return "h" + name;
      }
    } else if (t.is_int() || t.is_uint()) {
      switch (t.bits()) {
      case 32:
        return "__" + name;
      case 64:
        return "__" + name + "ll";
      default:
        return "";
      }
    }
    return "";
  }
};

struct CUDAFastMath : public CUDAMath {
  std::string operator()(DataType t, std::string name) const {
    if (t.is_float() && t.bits() == 32) {
      return "__" + name + 'f';
    } else {
      return CUDAMath::operator()(t, name);
    }
    return "";
  }
};

struct CUDAFastMathTan : public CUDAMath {
  std::string operator()(DataType t, std::string name) const {
    if (t.is_float()) {
      switch (t.bits()) {
      case 64:
        return name;
      // `__tanf` seems to produce some values too deviant from numpy tan
      // version. So, let's use just `tanf` instead.
      case 32:
        return name + 'f';
      case 16:
        return 'h' + name;
      default:
        return "";
      }
    }
    return "";
  }
};

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struct CUDAIEEEMath {
  std::string operator()(DataType t, std::string name,
                         std::string rounding_mode) const {
    if (t.is_float() && t.bits() == 32) {
      return "__" + name + "_" + rounding_mode;
    } else if (t.is_float() && t.bits() == 64) {
      return "__d" + name + "_" + rounding_mode;
    }
    return "";
  }
};

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static std::string GetFP8Type(DataType type) {
  std::stringstream stream;
  int32_t lanes = type.lanes();
  std::string vec;
  if (type.is_scalar()) {
    vec = "";
  } else if (lanes == 2) {
    vec = "_2";
  } else if (lanes == 4) {
    vec = "_4";
  } else if (lanes == 8) {
    vec = "_8";
  } else if (lanes == 16) {
    vec = "_16";
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  } else if (lanes == 32) {
    vec = "_32";
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  } else {
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    LOG(FATAL)
        << "Only support scalar and vector types of width (2, 4, 8, 16, 32) "
           "for FP8";
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  }
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  if (type.is_float8_e4m3fn() || type.is_float8_e4m3fnuz() ||
      type.is_float8_e4m3()) {
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    stream << "fp8_e4" << vec << "_t";
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  } else if (type.is_float8_e5m2() || type.is_float8_e5m2fnuz() ||
             type.is_float8_e5m2()) {
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    stream << "fp8_e5" << vec << "_t";
  } else {
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    LOG(FATAL) << "Unsupported FP8 type in CUDA codegen but got " << type;
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  }
  return stream.str();
}

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std::string GetFP6Type(DataType type) {
  std::stringstream stream;
  int32_t lanes = type.lanes();
  std::string vec;
  if (type.is_scalar()) {
    vec = "";
  } else if (lanes == 2) {
    vec = "x2";
  } else if (lanes == 4) {
    vec = "x4";
  } else if (lanes == 8) {
    vec = "x8";
  } else if (lanes == 16) {
    vec = "x16";
  } else {
    LOG(FATAL)
        << "Only support scalar and vector types of width (2, 4) for FP6";
  }
  stream << "__nv_fp6";
  std::string suffix;
  if (type.code() == DataType::kFloat6_e2m3fn) {
    suffix = "_e2m3";
  } else if (type.code() == DataType::kFloat6_e3m2fn) {
    suffix = "_e3m2";
  } else {
    LOG(FATAL) << "Unsupported FP6 type in CUDA codegen";
  }
  stream << vec << suffix;
  return stream.str();
}

std::string GetFP4Type(DataType type) {
  std::stringstream stream;
  int32_t lanes = type.lanes();
  std::string vec;
  if (type.is_scalar()) {
    vec = "";
  } else if (lanes == 2) {
    vec = "x2";
  } else if (lanes == 4) {
    vec = "x4";
  } else if (lanes == 8) {
    vec = "x8";
  } else if (lanes == 16) {
    vec = "x16";
  } else {
    LOG(FATAL)
        << "Only support scalar and vector types of width (2, 4) for FP4";
  }
  stream << "__nv_fp4";
  std::string suffix;
  if (type.code() == DataType::kFloat4_e2m1fn) {
    suffix = "_e2m1";
  } else {
    LOG(FATAL) << "Unsupported FP4 type in CUDA codegen";
  }
  stream << vec << suffix;
  return stream.str();
}

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CodeGenTileLangCUDA::CodeGenTileLangCUDA() {
  restrict_keyword_ = "__restrict__";
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  vid_global_barrier_state_ =
      name_supply_->FreshName(runtime::symbol::tvm_global_barrier_state);
  vid_global_barrier_expect_ = name_supply_->FreshName("__barrier_expect");
  ICHECK_EQ(vid_global_barrier_state_,
            runtime::symbol::tvm_global_barrier_state);
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}
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void CodeGenTileLangCUDA::PrintFuncPrefix(std::ostream &os) {
  os << "extern \"C\" __global__ ";
}
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class LaunchConfigExtractor : public tir::StmtVisitor {
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private:
  void VisitStmt_(const AttrStmtNode *op) final {
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    if (op->attr_key == tir::attr::thread_extent) {
      IterVar iv = Downcast<IterVar>(op->node);
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      if (iv->var->name_hint == "threadIdx.x" ||
          iv->thread_tag == "threadIdx.x") {
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        threadIdx_x_ext = op->value;
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      } else if (iv->var->name_hint == "threadIdx.y" ||
                 iv->thread_tag == "threadIdx.y") {
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        threadIdx_y_ext = op->value;
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      } else if (iv->var->name_hint == "threadIdx.z" ||
                 iv->thread_tag == "threadIdx.z") {
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        threadIdx_z_ext = op->value;
      }
    }
    StmtVisitor::VisitStmt_(op);
  }

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public:
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  PrimExpr threadIdx_x_ext = Integer(1);
  PrimExpr threadIdx_y_ext = Integer(1);
  PrimExpr threadIdx_z_ext = Integer(1);
};

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void CodeGenTileLangCUDA::PrintExtraAttrs(const PrimFunc &f) {
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  LaunchConfigExtractor extractor;
  extractor(f->body);
  arith::Analyzer analyzer;
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  PrimExpr threadIdx_ext =
      analyzer.Simplify(extractor.threadIdx_x_ext * extractor.threadIdx_y_ext *
                        extractor.threadIdx_z_ext);
  if (const IntImmNode *const threadIdx_ext_int =
          threadIdx_ext.as<IntImmNode>()) {
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    if (threadIdx_ext_int->value == 1) {
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      // unable to extract the number of threads per block, hence directly
      // return
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      return;
    }
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    stream << " __launch_bounds__(" << threadIdx_ext_int->value << ", 1)";
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  }
}

std::string CodeGenTileLangCUDA::Finish() {
  if (need_mma_h_) {
    decl_stream << "#include <mma.h>\n";
  }
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  if (enable_fp8_) {
    decl_stream << "#include <tl_templates/cuda/cuda_fp8.h>\n";
  }

  if (need_math_constants_h_) {
    decl_stream << "#include <math_constants.h>\n";
  }

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  if (need_cooperative_groups_) {
    decl_stream << "#include <cooperative_groups.h>\n";
  }

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  decl_stream << "#include <tl_templates/cuda/gemm.h>\n";
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  if (enable_sparse_gemm_) {
    decl_stream << "#include <tl_templates/cuda/gemm_sp.h>\n";
  }
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  decl_stream << "#include <tl_templates/cuda/copy.h>\n";
  decl_stream << "#include <tl_templates/cuda/reduce.h>\n";
  decl_stream << "#include <tl_templates/cuda/ldsm.h>\n";
  decl_stream << "#include <tl_templates/cuda/threadblock_swizzle.h>\n";
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  decl_stream << "#include <tl_templates/cuda/debug.h>\n";
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  decl_stream << "#ifdef ENABLE_BF16\n";
  decl_stream << "#include <tl_templates/cuda/cuda_bf16_fallbacks.cuh>\n";
  decl_stream << "#endif\n";
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  if (need_global_barrier_) {
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    decl_stream << "__device__ unsigned " << vid_global_barrier_state_
                << " = 0;\n";
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  }
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  decl_stream << "\n";
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  return CodeGenC::Finish();
}

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void CodeGenTileLangCUDA::VisitStmt_(const tir::ForNode *op) {
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  if (op->kind == tir::ForKind::kUnrolled) {
    PrintIndent();
    stream << "#pragma unroll\n";
  }
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  std::string extent =
      PrintExpr(arith::Analyzer().Simplify(op->extent + op->min));
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  PrintIndent();
  std::string vid = AllocVarID(op->loop_var.get());
  std::string start = PrintExpr(op->min);
  stream << "for (";
  PrintType(op->loop_var.dtype(), stream);
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  stream << ' ' << vid << " = " << start << "; " << vid << " < " << extent
         << "; ++" << vid << ") {\n";
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  int for_scope = BeginScope();
  PrintStmt(op->body);
  this->EndScope(for_scope);
  PrintIndent();
  stream << "}\n";
}

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void CodeGenTileLangCUDA::BindThreadIndex(const IterVar &iv) {
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  ICHECK(!var_idmap_.count(iv->var.get()));
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  var_idmap_[iv->var.get()] =
      CastFromTo(iv->thread_tag, DataType::UInt(32), iv->var.dtype());
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}

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void CodeGenTileLangCUDA::PrintType(DataType t, std::ostream &os) { // NOLINT(*)
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  int lanes = t.lanes();
  if (t.is_handle()) {
    ICHECK(t.is_scalar()) << "do not yet support vector types";
    os << "void*";
    return;
  }

  if (t.is_void()) {
    os << "void";
    return;
  }

  if (t == tl::cuTensorMapType()) {
    os << "CUtensorMap";
    return;
  }

  bool fail = false;
  if (t.is_float()) {
    switch (t.bits()) {
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    case 16:
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      enable_fp16_ = true;
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      if (t.is_scalar()) {
        os << "half_t";
      } else if (lanes <= 8) {
        // Emit CUDA code to access fp16 vector elements.
        //
        // half4 is stored as uint2
        //
        // h4.x is emitted as *(half2*)(&(u2.x)).x
        // h4.y is emitted as *(half2*)(&(u2.x)).y
        // h4.z is emitted as *(half2*)(&(u2.y)).x
        // h4.w is emitted as *(half2*)(&(u2.y)).y
        //
        ICHECK_EQ(lanes % 2, 0) << "only support even lane for half type";
        os << "uint" << lanes / 2;
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      } else if (lanes <= 16) {
        ICHECK_EQ(lanes % 4, 0) << "only support (mod 4 = 0) lanes for half "
                                   "type of more than 8 lanes";
        os << "ulonglong" << lanes / 4;
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      } else {
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        fail = true;
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      }
      break;
    case 32:
      if (lanes <= 4) {
        os << "float";
      } else if (lanes <= 8) {
        // Emit CUDA code to access fp32 vector elements for 4 < lanes <= 8.
        //
        // float8 is stored as ulonglong4
        //
        // f8.v1 is emitted as *(float2*)(&(ul4.x)).x
        // f8.v2 is emitted as *(float2*)(&(ul4.x)).y
        //
        ICHECK_EQ(lanes % 2, 0)
            << "only support even lane for float type with lanes > 4";
        os << "ulonglong" << lanes / 2;
      } else {
        fail = true;
      }
      break;
    case 64:
      os << "double";
      break;
    default:
      fail = true;
      break;
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    }
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    if (!fail && (t.is_scalar() || t.bits() == 16))
      return;
    if (!fail && (lanes > 4 && lanes <= 8 && t.bits() == 32))
      return;
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    if (!fail && (lanes >= 2 && lanes <= 4)) {
      os << lanes;
      return;
    }
  } else if (t.is_bfloat16()) {
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    enable_bf16_ = true;
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    if (t.is_scalar()) {
      os << "bfloat16_t";
    } else if (lanes <= 8) {
      ICHECK_EQ(lanes % 2, 0) << "only support even lane for half type";
      os << "uint" << lanes / 2;
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    } else if (lanes <= 16) {
      ICHECK_EQ(lanes % 4, 0) << "only support (mod 4 = 0) lanes for half type "
                                 "of more than 8 lanes";
      os << "ulonglong" << lanes / 4;
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    } else {
      fail = true;
    }
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    if (!fail)
      return;
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  } else if (t.is_float8()) {
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    enable_fp8_ = true;
    os << GetFP8Type(t);
    return;
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  } else if (t.is_float6()) {
    enable_fp6_ = true;
    if (t.lanes() <= 4) {
      os << GetFP6Type(t);
    }
    return;
  } else if (t.is_float4()) {
    enable_fp4_ = true;
    if (t.lanes() <= 4) {
      os << GetFP4Type(t);
    }
    return;
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  } else if (t == DataType::Bool()) {
    os << "bool";
    return;
  } else if (t.is_vector_bool()) {
    // CUDA does not support bool vectors.
    // Use ushort vectors to represent instead.
    int n = t.lanes();
    if (n <= 4) {
      os << "ushort" << n;
      return;
    }
  } else if (t.is_uint() || t.is_int()) {
    if (t.is_uint()) {
      os << "u";
    }
    switch (t.bits()) {
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    case 1: {
      if (t.is_scalar()) {
        os << "int";
        return;
      } else if (t.lanes() == 8) {
        os << "int8_t";
        return;
      } else if (t.lanes() == 16) {
        os << "int16_t";
        return;
      } else if (t.lanes() == 32) {
        os << "int";
        return;
      } else {
        LOG(FATAL) << "Cannot convert type " << t << " to CUDA type!";
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      }
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    }
    case 4: {
      if (t.is_scalar()) {
        os << "int";
        return;
      } else if (t.lanes() == 4) {
        os << "int16_t";
        return;
      } else if (t.lanes() == 8) {
        // directly 8 4-bit int in integer.
        os << "int";
        return;
      } else if (t.lanes() == 16) {
        os << "int2";
        return;
      } else if (t.lanes() == 32) {
        os << "int4";
        return;
      } else if (t.lanes() == 64) {
        os << "int8";
        return;
      } else {
        LOG(FATAL) << "Cannot convert type " << t << " to CUDA type!";
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      }
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    }
    case 8: {
      if (t.lanes() == 4) {
        // directly 4 8 bit int in integer.
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        enable_int8_ = true;
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        // We use int for int8x4 instead of char4 because using char4 is
        // likely to produce extra instructions to pack four int8 elements
        // into 32-bit data.
        os << "int";
        return;
      } else if (t.lanes() == 8) {
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        enable_int8_ = true;
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        os << "int2";
        return;
      } else if (t.lanes() == 16) {
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        enable_int8_ = true;
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        os << "int4";
        return;
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      } else if (t.lanes() == 32) {
        enable_int8_ = true;
        os << "longlong4";
        return;
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      } else if (!t.is_uint() && t.is_scalar()) {
        os << "signed char";
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        break;
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      } else {
        os << "char";
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        break;
      }
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    }
    case 16: {
      if (t.is_scalar()) {
        os << "short";
      } else if (t.lanes() <= 4) {
        os << "short" << lanes;
      } else if (t.lanes() <= 8) {
        // Emit CUDA code to access int16 vector elements.
        //
        // short4 is stored as int2
        //
        // s4.x is emitted as *(short2*)(&(i2.x)).x
        // s4.y is emitted as *(short2*)(&(i2.x)).y
        // s4.z is emitted as *(short2*)(&(i2.y)).x
        // s4.w is emitted as *(short2*)(&(i2.y)).y
        //
        ICHECK_EQ(t.lanes() % 2, 0)
            << "only support even lane for shorT type with lanes > 4";
        os << "int" << t.lanes() / 2;
      } else {
        fail = true;
      }
      if (!fail) {
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        return;
      }
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      break;
    }
    case 32: {
      if (t.is_scalar()) {
        os << "int";
      } else if (t.lanes() <= 4) {
        os << "int" << t.lanes();
      } else if (t.lanes() <= 8) {
        // Emit CUDA code to access int32 vector elements for 4 < lanes <= 8.
        //
        // int8 is stored as longlong4
        //
        // i8.v1 is emitted as *(int2*)(&(l4.x)).x
        // i8.v2 is emitted as *(int2*)(&(l4.x)).y
        //
        ICHECK_EQ(lanes % 2, 0)
            << "only support even lane for int32 type with lanes > 4";
        os << "longlong" << lanes / 2;
      } else {
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        fail = true;
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      }
      if (!fail) {
        return;
      }
      break;
    }
    case 64: {
      if (t.is_scalar()) {
        os << "int64_t";
      } else if (t.lanes() == 2) {
        os << "longlong2";
      } else if (t.lanes() == 3) {
        os << "longlong3";
      } else if (t.lanes() == 4) {
        os << "longlong4";
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      } else {
        fail = true;
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      }
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      if (!fail) {
        return;
      }
      break;
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    }
    default:
      fail = true;
      break;
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    }
    if (!fail && lanes == 1) {
      return;
    }
    if (!fail && (lanes >= 2 && lanes <= 4)) {
      os << lanes;
      return;
    }
  }
  LOG(FATAL) << "Cannot convert type " << t << " to CUDA type";
}

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void CodeGenTileLangCUDA::PrintVecBinaryOp(const std::string &op, DataType t,
                                           PrimExpr lhs, PrimExpr rhs,
                                           std::ostream &os) { // NOLINT(*)
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  // Declare the result.
  std::string sret = name_supply_->FreshName("_");
  this->PrintIndent();
  this->PrintType(t, stream);
  stream << ' ' << sret << ";\n";
  int ssa_scope = BeginScope();
  {
    // Unpack into individual ops.
    std::string vlhs = SSAGetID(PrintExpr(lhs), lhs.dtype());
    std::string vrhs = SSAGetID(PrintExpr(rhs), rhs.dtype());

    for (int i = 0, lanes = t.lanes(); i < lanes; ++i) {
      std::ostringstream value_temp;
      if (isalpha(op[0])) {
        value_temp << op << "(";
        PrintVecElemLoad(vlhs, lhs.dtype(), i, value_temp);
        value_temp << ", ";
        PrintVecElemLoad(vrhs, rhs.dtype(), i, value_temp);
        value_temp << ")";
      } else {
        value_temp << "(";
        PrintVecElemLoad(vlhs, lhs.dtype(), i, value_temp);
        value_temp << op;
        PrintVecElemLoad(vrhs, rhs.dtype(), i, value_temp);
        value_temp << ")";
      }
      PrintVecElemStore(sret, t, i, value_temp.str());
    }
  }
  EndScope(ssa_scope);
  os << sret;
}

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void CodeGenTileLangCUDA::PrintVecElemLoad(const std::string &vec, DataType t,
                                           int i,
                                           std::ostream &os) { // NOLINT(*)
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  if (t.is_scalar()) {
    os << vec;
    return;
  }

  static const char access[] = {'x', 'y', 'z', 'w'};
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  ICHECK(i >= 0 && i < 256 / t.bits());
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  if (t.bits() == 8 && (t.is_int() || t.is_uint())) {
    std::string type_name = t.is_int() ? "char" : "unsigned char";
    if (t.lanes() == 2 || t.lanes() == 3) {
      os << vec << "." << access[i % t.lanes()];
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    } else if (t.lanes() <= 16) {
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      std::string ac = t.lanes() == 4 ? vec : (vec + "." + access[i / 4]);
      os << "((" << type_name << ")(" << ac << " >> " << i % 4 * 8 << "))";
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    } else {
      ICHECK(t.lanes() == 32);
      std::string ac = vec + "." + access[i / 8];
      os << "((" << type_name << ")(" << ac << " >> " << i % 8 * 8 << "))";
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    }
  } else if (t.is_float16()) {
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    if (t.lanes() <= 8) {
      os << "((half2*)(&(" << vec << "." << access[i / 2] << ")))->"
         << access[i % 2];
    } else {
      os << "(((half2*)(&(" << vec << "." << access[i / 4] << "))) + "
         << (i / 2 % 2) << ")->" << access[i % 2];
    }
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  } else if (t.is_bfloat16()) {
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    if (t.lanes() <= 8) {
      os << "((nv_bfloat162*)(&(" << vec << "." << access[i / 2] << ")))->"
         << access[i % 2];
    } else {
      os << "(((nv_bfloat162*)(&(" << vec << "." << access[i / 4] << "))) + "
         << (i / 2 % 2) << ")->" << access[i % 2];
    }
  } else if (t.is_float8()) {
    os << vec;
    // fp8_e5_32_t
    if (t.lanes() >= 32)
      os << "." << access[i / 16];
    // fp8_e5_16_t
    if (t.lanes() >= 16)
      os << "." << access[(i % 16) / 8];
    // fp8_e5_8_t
    if (t.lanes() >= 8)
      os << "." << access[(i % 8) / 4];
    // fp8_e5_4_t or fp8_e5_2_t
    os << "." << access[i % 4];
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  } else if (t.lanes() > 4 && t.lanes() <= 8) {
    std::string type_name;
    if (t.bits() == 16) {
      if (t.is_int()) {
        type_name = "short";
      } else if (t.is_uint()) {
        type_name = "ushort";
      }
    } else if (t.bits() == 32) {
      if (t.is_int()) {
        type_name = "int";
      } else if (t.is_uint()) {
        type_name = "uint";
      } else if (t.is_float()) {
        type_name = "float";
      }
    }
    ICHECK(!type_name.empty());
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    os << "((" << type_name << "2*)(&(" << vec << "." << access[i / 2]
       << ")))->" << access[i % 2];
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  } else {
    os << vec << "." << access[i];
  }
}

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void CodeGenTileLangCUDA::PrintVecElemStore(const std::string &vec, DataType t,
                                            int i, const std::string &value) {
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  this->PrintIndent();
  static const char access[] = {'x', 'y', 'z', 'w'};
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  ICHECK(i >= 0 && i < 256 / t.bits());
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  if (t.bits() == 8 && (t.is_int() || t.is_uint())) {
    if (t.lanes() == 2 || t.lanes() == 3) {
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      stream << vec << '.' << access[i % t.lanes()] << "="
             << "(" << value << ");\n";
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    } else if (t.lanes() <= 16) {
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      std::string ac = t.lanes() == 4 ? vec : (vec + "." + access[i / 4]);
      stream << ac << "=";
      // Do not read the first undef lane.
      if (i != 0) {
        stream << ac << " & ~(0x000000ff << " << i % 4 * 8 << ") |";
      }
      stream << "(" << value << " << " << i % 4 * 8 << ");\n";
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    } else {
      ICHECK(t.lanes() == 32);
      std::string ac = vec + "." + access[i / 8];
      stream << ac << "=";
      // Do not read the first undef lane.
      if (i != 0) {
        stream << ac << " & ~(0x000000ff << " << i % 8 * 8 << ") |";
      }
      stream << "(" << value << " << " << i % 8 * 8 << ");\n";
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    }
  } else if (t.is_float16()) {
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    if (t.lanes() <= 8) {
      stream << "((half2*)(&(" << vec << "." << access[i / 2] << ")))->"
             << access[i % 2] << " = " << value << ";\n";
    } else {
      stream << "(((half2*)(&(" << vec << "." << access[i / 4] << "))) + "
             << (i / 2 % 2) << ")->" << access[i % 2] << " = " << value
             << ";\n";
    }
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  } else if (t.is_bfloat16()) {
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    if (t.lanes() <= 8) {
      stream << "((nv_bfloat162*)(&(" << vec << "." << access[i / 2] << ")))->"
             << access[i % 2] << " = " << value << ";\n";
    } else {
      stream << "(((nv_bfloat162*)(&(" << vec << "." << access[i / 4]
             << "))) + " << (i / 2 % 2) << ")->" << access[i % 2] << " = "
             << value << ";\n";
    }
  } else if (t.is_float8()) {
    stream << vec;
    // fp8_e5_32_t
    if (t.lanes() >= 32)
      stream << "." << access[i / 16];
    // fp8_e5_16_t
    if (t.lanes() >= 16)
      stream << "." << access[(i % 16) / 8];
    // fp8_e5_8_t
    if (t.lanes() >= 8)
      stream << "." << access[(i % 8) / 4];
    // fp8_e5_4_t or fp8_e5_2_t
    stream << "." << access[i % 4] << " = " << value << ";\n";
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  } else if (t.lanes() > 4 && t.lanes() <= 8) {
    std::string type_name;
    if (t.bits() == 16) {
      if (t.is_int()) {
        type_name = "short";
      } else if (t.is_uint()) {
        type_name = "ushort";
      }
    } else if (t.bits() == 32) {
      if (t.is_int()) {
        type_name = "int";
      } else if (t.is_uint()) {
        type_name = "uint";
      } else if (t.is_float()) {
        type_name = "float";
      }
    }
    ICHECK(!type_name.empty());
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    stream << "((" << type_name << "2*)(&(" << vec << "." << access[i / 2]
           << ")))->" << access[i % 2] << " = " << value << ";\n";
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  } else {
    stream << vec << "." << access[i] << " = " << value << ";\n";
  }
}

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void CodeGenTileLangCUDA::PrintStorageSync(const CallNode *op) {
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  auto args = op->args;
  const std::string &sync = args[0].as<StringImmNode>()->value;
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  if (sync == "warp") {
    // DO nothing.
  } else if (sync == "shared" || sync == "shared.dyn") {
    this->PrintIndent();
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    if (args.size() == 1) {
      this->stream << "__syncthreads();\n";
    } else if (args.size() == 2) {
      auto barrier_id = args[1].as<IntImmNode>()->value;
      this->stream << "tl::__sync_thread_partial<" << barrier_id << ">();\n";
    } else if (args.size() == 3) {
      auto barrier_id = args[1].as<IntImmNode>()->value;
      auto thread_count = args[2].as<IntImmNode>()->value;
      this->stream << "tl::__sync_thread_partial<" << barrier_id << ", "
                   << thread_count << ">();\n";
    } else {
      LOG(FATAL) << "Invalid number of arguments for storage sync: "
                 << args.size();
    }
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  } else if (sync == "global") {
    if (!need_global_barrier_) {
      need_global_barrier_ = true;
    }
    // global synchronizer
    std::string is_load = PrintExpr(op->args[1]);
    std::string num_blocks = PrintExpr(op->args[2]);
    this->PrintIndent();
    // In theory only threadfence is needed
    // but we observed problems with only threadfence
    this->stream << "__threadfence_system();\n";
    this->PrintIndent();
    this->stream << "if (" << is_load << ") {\n";
    int wb = this->BeginScope();
    this->PrintIndent();
    this->stream << "atomicAdd(&" << vid_global_barrier_state_ << ", 1);\n";
    this->PrintIndent();
    std::string ptr = name_supply_->FreshName("pf");
    this->stream << "volatile unsigned* " << ptr << " = &"
                 << vid_global_barrier_state_ << ";\n";
    this->PrintIndent();
    this->stream << vid_global_barrier_expect_ << " += " << num_blocks << ";\n";
    this->PrintIndent();
    this->stream << "while (" << ptr << "[0] < " << vid_global_barrier_expect_
                 << ");\n";
    this->EndScope(wb);
    this->PrintIndent();
    this->stream << "}\n";
    this->PrintIndent();
    this->stream << "__syncthreads();\n";
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  }
}

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void CodeGenTileLangCUDA::PrintStorageScope(const std::string &scope,
                                            std::ostream &os) { // NOLINT(*)
  ICHECK_NE(scope, "global")
      << "Cannot allocate global memory when targeting CUDA. You must pass "
         "all global arrays as input instead";
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  if (scope == "shared" || scope == "shared.barrier") {
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    os << "__shared__ ";
  } else if (scope == "shared.dyn") {
    os << "extern __shared__ __align__(1024) ";
  }
}

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std::string CodeGenTileLangCUDA::CastFromTo(std::string value, DataType from,
                                            DataType target) {
  if (from == target)
    return value;
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  std::ostringstream os;
  os << "((";
  this->PrintType(target, os);
  os << ")";
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  if (from.is_float16() && (target.is_int() || target.is_uint()) &&
      target.bits() == 8) {
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    os << "(";
    if (target.is_uint()) {
      os << "u";
    }
    os << "int)";
  }
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  if ((from.is_float16() || from.is_bfloat16()) && target.is_float8()) {
    os << "(float)";
  }
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  os << value << ")";
  return os.str();
}

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void CodeGenTileLangCUDA::VisitExpr_(const CastNode *op, std::ostream &os) {
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  DataType from_ty = op->value.dtype();
  DataType target_ty = op->dtype;
  ICHECK_EQ(target_ty.lanes(), from_ty.lanes());

  // Emit simple C-style type conversion.
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  if (from_ty.is_scalar())
    return CodeGenC::VisitExpr_(op, os);
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  // We could emit make_float4 like calls, but the emitted code looks
  // too compact to read. Emit this as vectorized unary ops.
  std::string sret = name_supply_->FreshName("_");
  this->PrintIndent();
  this->PrintType(target_ty, stream);
  stream << ' ' << sret << ";\n";
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  std::string src = SSAGetID(PrintExpr(op->value), from_ty);

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  // Handle conversion between float16 and float32
  if (from_ty.is_float16() && target_ty.is_float()) {
    // Use __half22float2 for vectorized conversion (half2 -> float2)
    if (from_ty.lanes() == 2 && target_ty.lanes() == 2) {
      // half2 -> float2
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      PrintIndent();
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      stream << sret << " = __half22float2(*(half2*)(&(" << src << ")));\n";
      os << sret;
      return;
    } else if (from_ty.lanes() == 4 && target_ty.lanes() == 4) {
      // half4 -> float4
      PrintIndent();
      stream << "((float2*)(&" << sret << "))[0] = "
             << "__half22float2(*(half2*)(&(" << src << ")));\n";
      PrintIndent();
      stream << "((float2*)(&" << sret << "))[1] = "
             << "__half22float2(*((half2*)(&(" << src << "))+1));\n";
      os << sret;
      return;
    }
  } else if (from_ty.is_float() && target_ty.is_float16()) {
    // Use __float22half2_rn for vectorized conversion (float2 -> half2)
    if (from_ty.lanes() == 2 && target_ty.lanes() == 2) {
      // float2 -> half2
      PrintIndent();
      stream << "*(half2*)(&(" << sret << ")) = __float22half2_rn(*(float2*)(&("
             << src << ")));\n";
      os << sret;
      return;
    } else if (from_ty.lanes() == 4 && target_ty.lanes() == 4) {
      // float4 -> half4
      PrintIndent();
      stream << "((half2*)(&" << sret << "))[0] = "
             << "__float22half2_rn(*(float2*)(&(" << src << ")));\n";
      PrintIndent();
      stream << "((half2*)(&" << sret << "))[1] = "
             << "__float22half2_rn(*((float2*)(&(" << src << "))+1));\n";
      os << sret;
      return;
    }
  }

  // Handle conversion between bfloat16 and float32
  if (from_ty.is_bfloat16() && target_ty.is_float()) {
    // Use __bfloat1622float2 for vectorized conversion (bfloat162 -> float2)
    if (from_ty.lanes() == 2 && target_ty.lanes() == 2) {
      // bfloat162 -> float2
      PrintIndent();
      stream << sret
             << " = __bfloat1622float2(*reinterpret_cast<__nv_bfloat162*>(&("
             << src << ")));\n";
      os << sret;
      return;
    } else if (from_ty.lanes() == 4 && target_ty.lanes() == 4) {
      // bfloat162x2 -> float4
      PrintIndent();
      stream << "((float2*)(&" << sret << "))[0] = "
             << "__bfloat1622float2(*reinterpret_cast<__nv_bfloat162*>(&("
             << src << ")));\n";
      PrintIndent();
      stream << "((float2*)(&" << sret << "))[1] = "
             << "__bfloat1622float2(*(reinterpret_cast<__nv_bfloat162*>(&("
             << src << "))+1));\n";
      os << sret;
      return;
    }
  } else if (from_ty.is_float() && target_ty.is_bfloat16()) {
    // Use __float22bfloat162_rn for vectorized conversion (float2 -> bfloat162)
    if (from_ty.lanes() == 2 && target_ty.lanes() == 2) {
      // float2 -> bfloat162
      PrintIndent();
      stream << "*reinterpret_cast<__nv_bfloat162*>(&(" << sret
             << ")) = __float22bfloat162_rn(*(float2*)(&(" << src << ")));\n";
      os << sret;
      return;
    } else if (from_ty.lanes() == 4 && target_ty.lanes() == 4) {
      // float4 -> bfloat162x2
      PrintIndent();
      stream << "(reinterpret_cast<__nv_bfloat162*>(&" << sret << "))[0] = "
             << "__float22bfloat162_rn(*(float2*)(&(" << src << ")));\n";
      PrintIndent();
      stream << "(reinterpret_cast<__nv_bfloat162*>(&" << sret << "))[1] = "
             << "__float22bfloat162_rn(*((float2*)(&(" << src << "))+1));\n";
      os << sret;
      return;
    }
  }

  // Handle conversion from float32 to float8 (E4M3/E5M2)
  if (from_ty.is_float() &&
      (target_ty.is_float8_e4m3() || target_ty.is_float8_e5m2())) {
    // FP32 -> FP8: Use __nv_cvt_float2_to_fp8x2 for vectorized conversion
    // (float2 -> fp8x2)
    if (from_ty.lanes() == 2 && target_ty.lanes() == 2) {
      // float2 -> fp8x2
      PrintIndent();
      stream << "*reinterpret_cast<__nv_fp8x2_storage_t*>(&(" << sret
             << ")) = __nv_cvt_float2_to_fp8x2(*reinterpret_cast<float2*>(&("
             << src << ")), __NV_SATFINITE, "
             << (target_ty.is_float8_e4m3() ? "__NV_E4M3" : "__NV_E5M2")
             << ");\n";
      os << sret;
      return;
    } else if (from_ty.lanes() == 4 && target_ty.lanes() == 4) {
      // float4 -> fp8x4
      PrintIndent();
      stream << "((__nv_fp8x2_storage_t*)(&" << sret << "))[0] = "
             << "__nv_cvt_float2_to_fp8x2(*(float2*)(&(" << src
             << ")), __NV_SATFINITE, "
             << (target_ty.is_float8_e4m3() ? "__NV_E4M3" : "__NV_E5M2")
             << ");\n";
      PrintIndent();
      stream << "((__nv_fp8x2_storage_t*)(&" << sret << "))[1] = "
             << "__nv_cvt_float2_to_fp8x2(*((float2*)(&(" << src
             << "))+1), __NV_SATFINITE, "
             << (target_ty.is_float8_e4m3() ? "__NV_E4M3" : "__NV_E5M2")
             << ");\n";
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    }
  }
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  // Fallback: elementwise cast
  for (int i = 0, lanes = from_ty.lanes(); i < lanes; ++i) {
    std::ostringstream val;
    val << "(";
    PrintType(target_ty.element_of(), val);
    val << ")(";
    PrintVecElemLoad(src, from_ty, i, val);
    val << ")";
    PrintVecElemStore(sret, target_ty, i, val.str());
  }

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  os << sret;
}

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void CodeGenTileLangCUDA::PrintCallExtern(Type ret_type, String global_symbol,
                                          const Array<PrimExpr> &args,
                                          bool skip_first_arg,
                                          std::ostream &os) { // NOLINT(*)
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  DataType ret_dtype = GetRuntimeDataType(ret_type);
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  if (ret_dtype.is_fixed_length_vector()) {
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    //
    // Emit an unsupported vector call
    //
    // v = intrin_f((float4*)A[0], (float4*)B[0])
    //
    // as
    //
    // float4 __ret;
    // {
    //   float4 __arg0 = ((float4*)A)[0];
    //   float4 __arg1 = ((float4*)B)[0];
    //   __ret.x = intrin_f(__arg0.x, __arg1.x);
    //   __ret.y = intrin_f(__arg0.y, __arg1.y);
    //   __ret.z = intrin_f(__arg0.z, __arg1.z);
    //   __ret.w = intrin_f(__arg0.w, __arg1.w);
    // }
    // v = __ret;
    //
    // Declare the result vector.
    std::string sret = name_supply_->FreshName("_");
    this->PrintIndent();
    this->PrintType(ret_dtype, stream);
    stream << ' ' << sret << ";\n";
    {
      // Load arguments.
      std::vector<std::string> sargs;
      size_t arg_begin = static_cast<size_t>(skip_first_arg);
      for (size_t i = arg_begin; i < args.size(); ++i) {
        std::string val = SSAGetID(PrintExpr(args[i]), args[i].dtype());
        sargs.push_back(std::move(val));
      }

      // Emit a scalar call for each lane.
      for (int i = 0; i < ret_dtype.lanes(); ++i) {
        std::ostringstream scall;
        scall << global_symbol << "(";
        for (size_t j = 0; j < sargs.size(); ++j) {
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          if (j > 0)
            scall << ", ";
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          PrintVecElemLoad(sargs[j], args[arg_begin + j].dtype(), i, scall);
        }
        scall << ")";
        PrintVecElemStore(sret, ret_dtype, i, scall.str());
      }
    }
    os << sret;
  } else {
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    CodeGenC::PrintCallExtern(ret_type, global_symbol, args, skip_first_arg,
                              os);
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  }
}

// Print a reference expression to a buffer.
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std::string CodeGenTileLangCUDA::GetBufferRef(DataType t,
                                              const BufferNode *buffer,
                                              PrimExpr index) {
  const VarNode *buffer_var = buffer->data.get();
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  std::ostringstream os;
  std::string vid = GetVarID(buffer_var);
  std::string scope;
  if (alloc_storage_scope_.count(buffer_var)) {
    scope = alloc_storage_scope_.at(buffer_var);
  }
  // bool is_vol = IsVolatile(buffer_var);
  // always false for tl cutlass backend.
  bool is_vol = false;

  auto ptr_cast = [this, is_vol, scope](DataType pointed_to) {
    std::ostringstream ptr_os;
    ptr_os << "(";
    if (is_vol) {
      ptr_os << "volatile ";
    }
    if (!scope.empty() && IsScopePartOfType()) {
      PrintStorageScope(scope, ptr_os);
    }
    PrintType(pointed_to, ptr_os);
    ptr_os << "*)";
    return ptr_os.str();
  };

  DataType buffer_element_dtype = buffer->dtype;

  std::string buffer_str = vid;
  if (!HandleTypeMatch(buffer_var, buffer_element_dtype) || is_vol) {
    std::stringstream temp;
    temp << "(" << ptr_cast(buffer_element_dtype) << vid << ")";
    buffer_str = temp.str();
  }
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  if (scope.empty()) {
    scope = GetPtrStorageScope(buffer->data);
  }
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  if (scope == "local.var" || scope == "local.descriptor") {
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    os << vid;
    return os.str();
  }
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  std::string index_str = PrintExpr(index);
  if (t.bits() == 4 || (t.bits() == 1 && t.is_int())) {
    // This is a special case, because CodegenCUDA::PrintType()
    // returns "int" for bool and for 4-bit integers. In most cases,
    // we divide by the number of lanes to determine the index.
    // However, the backing type for scalar int4 and scalar bool is
    // int32.  Therefore, we need to divide by the ratio of their
    // sizes in that case.
    int div_factor = (t.lanes() == 1) ? (32 / t.bits()) : t.lanes();

    os << "*("
       << "(" << ptr_cast(t) << vid << ")"
       << " + " << index_str << " / " << div_factor << ")";
  } else if (t == buffer_element_dtype) {
    os << buffer_str << "[" << index_str << "]";
  } else {
    os << "*" << ptr_cast(t) << "(" << buffer_str << " + " << index_str << ")";
  }

  return os.str();
}

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std::string CodeGenTileLangCUDA::GetVecLoad(DataType t,
                                            const BufferNode *buffer,
                                            PrimExpr base) {
  const VarNode *buffer_var = buffer->data.get();
  std::string scope;
  if (alloc_storage_scope_.count(buffer_var)) {
    scope = alloc_storage_scope_.at(buffer_var);
  }
  if (scope.empty()) {
    scope = GetPtrStorageScope(buffer->data);
  }

  if (scope != "global" || t.bits() * t.lanes() <= 128) {
    return this->CodeGenC::GetVecLoad(t, buffer, base);
  }
  ICHECK_EQ(t.bits() * t.lanes(), 256)
      << "Unsupported vector load size: " << t.bits() * t.lanes();
  auto buffer_ref = this->GetBufferRef(t, buffer, base);
  std::ostringstream os;
  os << "tl::ld_global_256(&(" << buffer_ref << "))";
  return os.str();
}

void CodeGenTileLangCUDA::PrintVecStore(const BufferNode *buffer, DataType t,
                                        PrimExpr base,
                                        const std::string &value) {
  const VarNode *buffer_var = buffer->data.get();
  std::string scope;
  if (alloc_storage_scope_.count(buffer_var)) {
    scope = alloc_storage_scope_.at(buffer_var);
  }
  if (scope.empty()) {
    scope = GetPtrStorageScope(buffer->data);
  }

  if (scope != "global" || t.bits() * t.lanes() <= 128) {
    this->CodeGenC::PrintVecStore(buffer, t, base, value);
    return;
  }
  ICHECK_EQ(t.bits() * t.lanes(), 256)
      << "Unsupported vector load size: " << t.bits() * t.lanes();
  auto buffer_ref = this->GetBufferRef(t, buffer, base);
  this->PrintIndent();
  this->stream << "tl::st_global_256(&(" << buffer_ref << "), " << value
               << ");\n";
}

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/**
 * @brief Emit CUDA/TensorLib-specific code for a call expression.
 *
 * This visitor handles CallNode intrinsics and builtins that require emitting
 * CUDA/TL-specific code (inline PTX/ASM sequences, TensorLanguage runtime
 * calls, WMMA/TMA helpers, barriers, cp.async primitives, index-map based
 * stores, reinterpret/packing helpers, and various mma/ldmatrix patterns). The
 * function writes the generated code to the provided output stream and falls
 * back to the C codegen for unrecognized calls.
 *
 * The method recognizes and emits code for (non-exhaustive): cp.async and its
 * commit/wait variants, tma_load/store and im2col variants, ptX
 * ldmatrix/stmatrix helpers, mbarrier APIs, cooperative grid sync, WMMA/legacy
 * MMA intrinsics (fill/load/store/mma/bmma/ptx_mma/ptx_mma_sp), low-level PTX
 * asm helpers (ldg32, cp_async bulk/init/arrive/wait barriers), reinterpret
 * paths for special small-float encodings (e.g., float4 e2m1fn), tl::tl_gemm
 * and related external calls, and other TL runtime calls.
 *
 * Side effects:
 * - Emits to `os` and the internal codegen output stream.
 * - May set internal feature flags (e.g., need_cooperative_groups_,
 * need_mma_h_, need_cast_smem_ptr_to_int_, enable_sparse_gemm_).
 * - May open/close SSA scopes and mutate internal variable mappings.
 * - May call LOG(FATAL) / CHECK / ICHECK on invalid or unsupported argument
 *   patterns.
 *
 * @param op The call node to generate code for; the function inspects op->op
 *           and op->args to determine the appropriate emission.
 * @param os  Output stream to receive expression-level output when the caller
 *            expects an expression result (some paths write directly to the
 *            member stream instead).
 */
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void CodeGenTileLangCUDA::VisitExpr_(const CallNode *op, std::ostream &os) {
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  auto print_extern_call_stmt = [&](std::string name, size_t start = 0,
                                    size_t end = 0) {
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    // Cache context into a private ss, otherwise the let node may generate
    // within the function call arguments.
    std::ostringstream ss;

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    for (size_t i = start; i < op->args.size() - end; i++) {
      if (i > start)
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        ss << ", ";
      ss << this->PrintExpr(op->args[i]);
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    }
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    this->PrintIndent();
    this->stream << name << "(";
    this->stream << ss.str();
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    this->stream << ");\n";
  };
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  auto print_mbarrier_obj = [&](PrimExpr barrier_id) {
    std::ostringstream ss;
    if (barrier_id.as<IntImmNode>()) {
      // incase the barrier_id is an integer, we need to print the barrier_id as
      // an integer
      ss << mbarrier_name_ << "[" << barrier_id << "]";
    } else {
      // otherwise may be a T.get_mbarrier() call or BufferLoad Node
      // we need to print the barrier_id as a string
      ss << this->PrintExpr(barrier_id);
    }
    return ss.str();
  };
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  if (op->op.same_as(builtin::ptx_cp_async())) {
    std::string dst = this->PrintExpr(op->args[0]);
    std::string dst_offset = this->PrintExpr(op->args[1]);
    std::string src = this->PrintExpr(op->args[2]);
    std::string src_offset = this->PrintExpr(op->args[3]);
    std::string size = this->PrintExpr(op->args[4]);
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    // use size of argument list to indicate whether or not to use predicated
    // cp.async
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    if (op->args.size() == 5) {
      this->PrintIndent();
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      this->stream << "tl::cp_async_gs<" << size << ">(" << dst << "+"
                   << dst_offset << ", " << src << "+" << src_offset << ");\n";
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    } else {
      std::string condition = this->PrintExpr(op->args[5]);
      this->PrintIndent();
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      this->stream << "tl::cp_async_gs_conditional<" << size << ">(" << dst
                   << "+" << dst_offset << ", " << src << "+" << src_offset
                   << ", " << condition << ");\n";
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    }
  } else if (op->op.same_as(builtin::ptx_commit_group())) {
    print_extern_call_stmt("tl::cp_async_commit");
  } else if (op->op.same_as(builtin::ptx_wait_group())) {
    int n = Downcast<IntImm>(op->args[0])->value;
    std::string func_name = "tl::cp_async_wait<" + std::to_string(n) + ">";
    print_extern_call_stmt(func_name, 1);
  } else if (op->op.same_as(builtin::create_barriers())) {
    this->PrintIndent();
    int barrier_count = Downcast<IntImm>(op->args[0])->value;
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    auto mbarrier_storage_name = mbarrier_name_ + "_mem";
    this->stream << "__shared__ uint64_t " << mbarrier_storage_name << "["
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                 << barrier_count << "];\n";
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    this->PrintIndent();
    this->stream << "auto " << mbarrier_name_ << " = reinterpret_cast<"
                 << mbarrier_dtype_ << "*>(" << mbarrier_storage_name << ");\n";
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  } else if (op->op.same_as(tl::get_mbarrier())) {
1306
    ICHECK_EQ(op->args.size(), 1);
1307
    std::string barrier_id = this->PrintExpr(op->args[0]);
1308
    os << mbarrier_name_ + "[" + barrier_id + "]";
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  } else if (op->op.same_as(builtin::ptx_arrive_barrier())) {
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    if (op->args.size() == 1) {
      this->PrintIndent();
      auto mbarrier_obj = print_mbarrier_obj(op->args[0]);
      this->stream << mbarrier_obj << ".arrive();\n";
    } else if (op->args.size() == 3) {
      this->PrintIndent();
      auto mbarrier_obj = print_mbarrier_obj(op->args[0]);
      auto cta_id = this->PrintExpr(op->args[1]);
      auto pred = this->PrintExpr(op->args[2]);
      this->stream << mbarrier_obj << ".arrive(" << cta_id << ", " << pred
                   << ");\n";
    } else {
      LOG(FATAL) << "Invalid parameter  for tl::arrive_barrier "
                 << op->args.size();
    }
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  } else if (op->op.same_as(builtin::ptx_init_barrier_thread_count())) {
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    ICHECK_EQ(op->args.size(), 2);
    this->PrintIndent();
    auto mbarrier_obj = print_mbarrier_obj(op->args[0]);
    auto arrive_count = this->PrintExpr(op->args[1]);
    this->stream << mbarrier_obj << ".init(" << arrive_count << ");\n";
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  } else if (op->op.same_as(builtin::ptx_arrive_barrier_expect_tx())) {
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    if (op->args.size() == 2) {
      this->PrintIndent();
      auto mbarrier_obj = print_mbarrier_obj(op->args[0]);
      auto transaction_bytes = this->PrintExpr(op->args[1]);
      this->stream << mbarrier_obj << ".arrive_and_expect_tx("
                   << transaction_bytes << ");\n";
    } else if (op->args.size() == 4) {
      this->PrintIndent();
      auto mbarrier_obj = print_mbarrier_obj(op->args[0]);
      auto transaction_bytes = this->PrintExpr(op->args[1]);
      auto cta_id = this->PrintExpr(op->args[2]);
      auto pred = this->PrintExpr(op->args[3]);
      this->stream << mbarrier_obj << ".arrive_and_expect_tx("
                   << transaction_bytes << ", " << cta_id << ", " << pred
                   << ");\n";
    } else {
      LOG(FATAL) << "Invalid parameter  for tl::arrive_barrier_expect_tx "
                 << op->args.size();
    }
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  } else if (op->op.same_as(builtin::ptx_cp_async_barrier())) {
    print_extern_call_stmt("tl::mbarrier_cp_async_arrive");
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  } else if (op->op.same_as(tl::ptx_fence_barrier_init())) {
    print_extern_call_stmt("tl::fence_barrier_init");
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  } else if (op->op.same_as(tl::ptx_cp_async_barrier_noinc())) {
    print_extern_call_stmt("tl::mbarrier_cp_async_arrive_noinc");
1357
  } else if (op->op.same_as(tl::mbarrier_expect_tx())) {
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    ICHECK_EQ(op->args.size(), 2);
    this->PrintIndent();
    auto mbarrier_obj = print_mbarrier_obj(op->args[0]);
    auto transaction_bytes = this->PrintExpr(op->args[1]);
    this->stream << mbarrier_obj << ".expect_transaction(" << transaction_bytes
                 << ");\n";
1364
  } else if (op->op.same_as(tl::mbarrier_wait_parity())) {
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    ICHECK_EQ(op->args.size(), 2);
    this->PrintIndent();
    auto mbarrier_obj = print_mbarrier_obj(op->args[0]);
    auto phase = this->PrintExpr(op->args[1]);
    this->stream << mbarrier_obj << ".wait(" << phase << ");\n";
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  } else if (op->op.same_as(tl::ptx_init_tensor_memory())) {
    print_extern_call_stmt("tl::tmem_allocate");
  } else if (op->op.same_as(tl::ptx_deallocate_tensor_memory())) {
    print_extern_call_stmt("tl::tmem_deallocate");
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  } else if (op->op.same_as(tl::no_set_max_nreg())) {
    return;
1376
  } else if (op->op.same_as(tl::tma_load())) {
1377
    std::ostringstream ss;
1378
    ICHECK_GE(op->args.size(), 2);
1379
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    auto eviction_policy =
        this->eviction_policy_names_
            [op->args[op->args.size() - 1].as<IntImmNode>()->value];
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    // Simplify the code by using the default eviction policy
    if (eviction_policy != "EVICT_NORMAL") {
      ss << "tl::tma_load<tl::CacheHintSm90::" << eviction_policy << ">(";
    } else {
      ss << "tl::tma_load(";
    }
1388
    auto desc = op->args[0];
1389
    ss << this->PrintExpr(desc) << ", ";
1390
    ss << print_mbarrier_obj(op->args[1]) << ", ";
1391
    for (size_t i = 2; i < op->args.size() - 1; i++) {
1392
      if (i > 2)
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        ss << ", ";
      ss << this->PrintExpr(op->args[i]);
1395
    }
1396
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1398
    ss << ");\n";
    this->PrintIndent();
    this->stream << ss.str();
1399
  } else if (op->op.same_as(tl::tma_load_im2col())) {
1400
    std::stringstream ss;
1401
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1403
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1406
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    auto eviction_policy =
        this->eviction_policy_names_
            [op->args[op->args.size() - 1].as<IntImmNode>()->value];
    if (eviction_policy != "EVICT_NORMAL") {
      ss << "tl::tma_load_im2col<tl::CacheHintSm90::" << eviction_policy << ">";
    } else {
      ss << "tl::tma_load_im2col";
    }
1409
    print_extern_call_stmt(ss.str(), 0, 1);
1410
  } else if (op->op.same_as(tl::tma_store())) {
1411
    std::stringstream ss;
1412
1413
1414
1415
1416
    auto need_reduce = op->args[op->args.size() - 2].as<IntImmNode>()->value;
    if (need_reduce) {
      print_extern_call_stmt("tl::tma_store_add", 0, 2);
      return;
    }
1417
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1420
1421
1422
1423
1424
    auto eviction_policy =
        this->eviction_policy_names_
            [op->args[op->args.size() - 1].as<IntImmNode>()->value];
    if (eviction_policy != "EVICT_NORMAL") {
      ss << "tl::tma_store<tl::CacheHintSm90::" << eviction_policy << ">";
    } else {
      ss << "tl::tma_store";
    }
1425
    print_extern_call_stmt(ss.str(), 0, 2);
1426
  } else if (op->op.same_as(tl::ptx_ldmatrix())) {
1427
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1429
    int trans = Downcast<IntImm>(op->args[0])->value;
    int num = Downcast<IntImm>(op->args[1])->value;
    std::string func_name = "tl::ptx_ldmatrix_x" + std::to_string(num);
1430
1431
    if (trans == 1)
      func_name += "_trans";
1432
    print_extern_call_stmt(func_name, 2);
1433
  } else if (op->op.same_as(tl::ptx_stmatrix())) {
1434
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1436
    int trans = Downcast<IntImm>(op->args[0])->value;
    int num = Downcast<IntImm>(op->args[1])->value;
    std::string func_name = "tl::ptx_stmatrix_x" + std::to_string(num);
1437
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    if (trans == 1)
      func_name += "_trans";
1439
    print_extern_call_stmt(func_name, 2);
1440
  } else if (op->op.same_as(tl::fence_proxy_async())) {
1441
    print_extern_call_stmt("tl::fence_proxy_async");
1442
  } else if (op->op.same_as(tl::tma_store_arrive())) {
1443
    print_extern_call_stmt("tl::tma_store_arrive");
1444
  } else if (op->op.same_as(tl::tma_store_wait())) {
1445
    print_extern_call_stmt("tl::tma_store_wait<0>");
1446
1447
1448
1449
1450
1451
1452
1453
1454
  } else if (op->op.same_as(tl::warpgroup_arrive())) {
    print_extern_call_stmt("tl::warpgroup_arrive");
  } else if (op->op.same_as(tl::warpgroup_commit_batch())) {
    print_extern_call_stmt("tl::warpgroup_commit_batch");
  } else if (op->op.same_as(tl::warpgroup_wait())) {
    this->PrintIndent();
    int num_mma = Downcast<IntImm>(op->args[0])->value;
    this->stream << "tl::warpgroup_wait<" << std::to_string(num_mma)
                 << ">();\n";
1455
  } else if (op->op.same_as(tl::set_max_nreg())) {
1456
1457
1458
    this->PrintIndent();
    int nreg = Downcast<IntImm>(op->args[0])->value;
    int is_inc = Downcast<IntImm>(op->args[1])->value;
1459
1460
    std::string func_name =
        is_inc ? "tl::warpgroup_reg_alloc" : "tl::warpgroup_reg_dealloc";
1461
    this->stream << func_name << "<" << std::to_string(nreg) << ">();\n";
1462
  } else if (op->op.same_as(tl::wait_wgmma())) {
1463
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1465
    this->PrintIndent();
    int num_mma = Downcast<IntImm>(op->args[0])->value;
    this->stream << "tl::wait_wgmma<" << std::to_string(num_mma) << ">();\n";
1466
  } else if (op->op.same_as(tl::pack_b16())) {
1467
1468
    os << "__pack_half2(" << this->PrintExpr(op->args[0]) << ", "
       << this->PrintExpr(op->args[1]) << ")";
1469
1470
1471
  } else if (op->op.same_as(tl::sync_grid())) {
    this->need_cooperative_groups_ = true;
    this->PrintIndent();
1472
1473
1474
1475
    this->stream << "cooperative_groups::grid_group grid = "
                    "cooperative_groups::this_grid();\n";
    this->PrintIndent();
    this->stream << "grid.sync();\n";
1476
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1478
  } else if (op->op.same_as(tl::loop_break())) {
    this->PrintIndent();
    this->stream << "break;\n";
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  } else if (op->op.same_as(builtin::tvm_fill_fragment())) {
    need_mma_h_ = true;
    ICHECK_EQ(op->args.size(), 6U);
    os << "nvcuda::wmma::fill_fragment(";
    this->PrintExpr(op->args[0], os);
    os << "[";
    this->PrintExpr(op->args[4], os);
    os << "], ";
    this->PrintExpr(op->args[5], os);
    os << ")";
  } else if (op->op.same_as(builtin::tvm_load_matrix_sync())) {
    need_mma_h_ = true;
    ICHECK_EQ(op->args.size(), 8U);
    os << "nvcuda::wmma::load_matrix_sync(";
    this->PrintExpr(op->args[0], os);
    os << "[";
    this->PrintExpr(op->args[4], os);
    os << "], ";
    this->PrintExpr(op->args[5], os);
    os << ", ";
    this->PrintExpr(op->args[6], os);
    os << ")";
  } else if (op->op.same_as(builtin::tvm_store_matrix_sync())) {
    need_mma_h_ = true;
    ICHECK_EQ(op->args.size(), 8U);
    os << "nvcuda::wmma::store_matrix_sync(";
    this->PrintExpr(op->args[5], os);
    os << ", ";
    this->PrintExpr(op->args[0], os);
    os << "[";
    this->PrintExpr(op->args[4], os);
    os << "], ";
    this->PrintExpr(op->args[6], os);
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    if (const StringImmNode *str = op->args[7].as<StringImmNode>()) {
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      os << ", nvcuda::wmma::mem_" << str->value;
    } else {
      LOG(FATAL) << "Invalid parameters";
    }
    os << ")";
  } else if (op->op.same_as(builtin::tvm_mma_sync())) {
    need_mma_h_ = true;
    ICHECK_EQ(op->args.size(), 8U);
    os << "nvcuda::wmma::mma_sync(";
    for (int i = 0; i < 4; ++i) {
      this->PrintExpr(op->args[i * 2], os);
      os << "[";
      this->PrintExpr(op->args[i * 2 + 1], os);
      os << "]" << ((i < 3) ? ", " : ")");
    }
  } else if (op->op.same_as(builtin::tvm_bmma_sync())) {
    need_mma_h_ = true;
    ICHECK_EQ(op->args.size(), 8U);
    os << "nvcuda::wmma::bmma_sync(";
    for (int i = 0; i < 4; ++i) {
      this->PrintExpr(op->args[i * 2], os);
      os << "[";
      this->PrintExpr(op->args[i * 2 + 1], os);
      os << "]" << ((i < 3) ? ", " : ")");
    }
  } else if (op->op.same_as(builtin::ptx_mma())) {
    // arg 0: shape: mXnXkX
    // arg 1: A layout: row/col
    // arg 2: B layout: row/col
    // arg 3: A precision: fp16, fp64, ...
    // arg 4: B precision: fp16, fp64, ...
    // arg 5: C precision: fp32, fp64, ...
    // arg 6: A multiplicand
    // arg 7: A multiplicand index
    // arg 8: B multiplicand
    // arg 9: B multiplicand index
    // arg 10: C accumulator
    // arg 11: C accumulator index
    // arg 12: saturate
    // arg 13: (optional) 1-bit operator (xor or and)
    ICHECK(op->args.size() == 13U || op->args.size() == 14U);
    std::string shape = Downcast<StringImm>(op->args[0])->value;
    std::string A_layout = Downcast<StringImm>(op->args[1])->value;
    std::string B_layout = Downcast<StringImm>(op->args[2])->value;
    std::string A_dtype = Downcast<StringImm>(op->args[3])->value;
    std::string B_dtype = Downcast<StringImm>(op->args[4])->value;
    std::string C_dtype = Downcast<StringImm>(op->args[5])->value;
    std::string a_ref = this->PrintExpr(op->args[6]);
    std::string a_bias = this->PrintExpr(op->args[7]);
    std::string b_ref = this->PrintExpr(op->args[8]);
    std::string b_bias = this->PrintExpr(op->args[9]);
    std::string c_ref = this->PrintExpr(op->args[10]);
    std::string c_bias = this->PrintExpr(op->args[11]);
    bool saturate = Downcast<Bool>(op->args[12])->value;
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    std::string bit_op =
        op->args.size() > 13 ? Downcast<StringImm>(op->args[13])->value : "";
    std::string asm_code = PrintMMAAssembly(
        shape, A_layout, B_layout, A_dtype, B_dtype, C_dtype, a_ref, a_bias,
        b_ref, b_bias, c_ref, c_bias, "", "", "", bit_op, false, saturate);
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    this->PrintIndent();
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    this->stream << asm_code;
  } else if (op->op.same_as(builtin::ptx_mma_sp())) {
    // arg 0: shape: mXnXkX
    // arg 1: A layout: row/col
    // arg 2: B layout: row/col
    // arg 3: A precision: fp16, fp32, ...
    // arg 4: B precision: fp16, fp32, ...
    // arg 5: C precision: fp16, fp32, ...
    // arg 6: A multiplicand pointer
    // arg 7: A multiplicand index
    // arg 8: B multiplicand pointer
    // arg 9: B multiplicand index
    // arg 10: C accumulator pointer
    // arg 11: C accumulator index
    // arg 12: metadata
    // arg 13: metadata index
    // arg 14: sparse_selector
    // arg 15: saturate
    ICHECK_EQ(op->args.size(), 16U);
    std::string shape = Downcast<StringImm>(op->args[0])->value;
    std::string A_layout = Downcast<StringImm>(op->args[1])->value;
    std::string B_layout = Downcast<StringImm>(op->args[2])->value;
    std::string A_dtype = Downcast<StringImm>(op->args[3])->value;
    std::string B_dtype = Downcast<StringImm>(op->args[4])->value;
    std::string C_dtype = Downcast<StringImm>(op->args[5])->value;
    std::string a_ref = this->PrintExpr(op->args[6]);
    std::string a_offset = this->PrintExpr(op->args[7]);
    std::string b_ref = this->PrintExpr(op->args[8]);
    std::string b_offset = this->PrintExpr(op->args[9]);
    std::string c_ref = this->PrintExpr(op->args[10]);
    std::string c_offset = this->PrintExpr(op->args[11]);
    std::string metadata = this->PrintExpr(op->args[12]);
    std::string metadata_offset = this->PrintExpr(op->args[13]);
    std::string sparse_selector = this->PrintExpr(op->args[14]);
    bool saturate = Downcast<Bool>(op->args[15])->value;
1608
    this->PrintIndent();
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    std::string asm_code = PrintMMAAssembly(
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        shape, A_layout, B_layout, A_dtype, B_dtype, C_dtype, a_ref, a_offset,
        b_ref, b_offset, c_ref, c_offset, metadata, metadata_offset,
        sparse_selector, "", true, saturate);
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    this->stream << asm_code;
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  } else if (op->op.same_as(tl::ptx_wgmma_ss())) {
    // arg 0: dtype
    // arg 1: shape
    // arg 2: A_layout
    // arg 3: B_layout
    // arg 4: A_dtype
    // arg 5: B_dtype
    // arg 6: C_dtype
    // arg 7: multiplicand_a
    // arg 8: multiplicand_b
    // arg 9: accumulator
    // arg 10: saturate
    ICHECK_EQ(op->args.size(), 15U) << "ptx_wgmma_ss args is " << op->args;
    std::string shape = Downcast<StringImm>(op->args[0])->value;
    bool a_is_k_major = Downcast<Bool>(op->args[1])->value;
    bool b_is_k_major = Downcast<Bool>(op->args[2])->value;
    std::string A_dtype = Downcast<StringImm>(op->args[3])->value;
    std::string B_dtype = Downcast<StringImm>(op->args[4])->value;
    std::string C_dtype = Downcast<StringImm>(op->args[5])->value;
    std::string a_desc = this->PrintExpr(op->args[6]);
    std::string A_offset = this->PrintExpr(op->args[7]);
    std::string b_desc = this->PrintExpr(op->args[8]);
    std::string B_offset = this->PrintExpr(op->args[9]);
    std::string c_ref = this->PrintExpr(op->args[10]);
    std::string c_offset = this->PrintExpr(op->args[11]);
    bool scale_out = Downcast<Bool>(op->args[12])->value;
    bool scale_in_a = Downcast<Bool>(op->args[13])->value;
    bool scale_in_b = Downcast<Bool>(op->args[14])->value;

    const bool a_is_shared = true;
    this->PrintIndent();
    std::string asm_code = PrintWGMMAAssembly(
        shape, a_is_k_major, b_is_k_major, A_dtype, B_dtype, C_dtype, a_desc,
        A_offset, b_desc, B_offset, c_ref, c_offset, scale_out, scale_in_a,
        scale_in_b, a_is_shared, "", "", "", false);
    auto [m, n, k] = tl::codegen::ptx::ParseMMAShape(shape);
    std::string wgmma_asm_code =
        "tl::wgmma_ss<(AType), (BType), (CType), (M), (N), (K), (tnspA), "
        "(tnspB), (scaleA), (scaleB)>(uint64_t((desc_a) + (A_offset)), "
        "uint64_t((desc_b) + (B_offset)), ((uint32_t*)((C))), (scale_out));\n";
    // replace patterns
    tl::codegen::Replacer replacer;
    replacer.register_rule("(AType)",
                           tl::codegen::ptx::DTypeEnumToString(A_dtype));
    replacer.register_rule("(BType)",
                           tl::codegen::ptx::DTypeEnumToString(B_dtype));
    replacer.register_rule("(CType)",
                           tl::codegen::ptx::DTypeEnumToString(C_dtype));
    replacer.register_rule("(M)", std::to_string(m));
    replacer.register_rule("(N)", std::to_string(n));
    replacer.register_rule("(K)", std::to_string(k));
    replacer.register_rule("(tnspA)", a_is_k_major ? "false" : "true");
    replacer.register_rule("(tnspB)", b_is_k_major ? "false" : "true");
    replacer.register_rule("(scaleA)", scale_in_a ? "1" : "-1");
    replacer.register_rule("(scaleB)", scale_in_b ? "1" : "-1");
    replacer.register_rule("(desc_a)", a_desc);
    replacer.register_rule("(A_offset)", A_offset);
    replacer.register_rule("(desc_b)", b_desc);
    replacer.register_rule("(B_offset)", B_offset);
    replacer.register_rule("(C)", c_ref + " + " + c_offset);
    replacer.register_rule("(scale_out)", scale_out ? "true" : "false");
    wgmma_asm_code = replacer.rewrite(wgmma_asm_code);
    this->stream << wgmma_asm_code;
  } else if (op->op.same_as(tl::ptx_wgmma_rs())) {
    // arg 0: dtype
    // arg 1: shape
    // arg 2: A_layout
    // arg 3: B_layout
    // arg 4: A_dtype
    // arg 5: B_dtype
    // arg 6: C_dtype
    // arg 7: multiplicand_a
    // arg 8: multiplicand_b
    // arg 9: accumulator
    // arg 10: saturate
    ICHECK_EQ(op->args.size(), 15U) << "ptx_wgmma_rs args is " << op->args;
    std::string shape = Downcast<StringImm>(op->args[0])->value;
    bool A_layout = Downcast<Bool>(op->args[1])->value;
    bool B_layout = Downcast<Bool>(op->args[2])->value;
    std::string A_dtype = Downcast<StringImm>(op->args[3])->value;
    std::string B_dtype = Downcast<StringImm>(op->args[4])->value;
    std::string C_dtype = Downcast<StringImm>(op->args[5])->value;
    std::string a_ref = this->PrintExpr(op->args[6]);
    std::string A_offset = this->PrintExpr(op->args[7]);
    std::string b_desc = this->PrintExpr(op->args[8]);
    std::string B_offset = this->PrintExpr(op->args[9]);
    std::string c_ref = this->PrintExpr(op->args[10]);
    std::string c_offset = this->PrintExpr(op->args[11]);
    bool scale_out = Downcast<Bool>(op->args[12])->value;
    bool scale_in_a = Downcast<Bool>(op->args[13])->value;
    bool scale_in_b = Downcast<Bool>(op->args[14])->value;

    const bool a_is_shared = false;
    this->PrintIndent();
    std::string asm_code = PrintWGMMAAssembly(
        shape, A_layout, B_layout, A_dtype, B_dtype, C_dtype, a_ref, A_offset,
        b_desc, B_offset, c_ref, c_offset, scale_out, scale_in_a, scale_in_b,
        a_is_shared, "", "", "", false);
    this->stream << asm_code;
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  } else if (op->op.same_as(builtin::ptx_ldmatrix())) {
    // arg 0: whether the matrix is loaded in column major format or not.
    // arg 1: number of matrices to load.
    // arg 2: The data type in the matrix, .b16 is the only accepted data type.
    // arg 3: pointer to local buffer.
    // arg 4: The offset of the element to store in the local buffer.
    // arg 5: pointer to the shared memory buffer to load.
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    // arg 6: The offset of the start element of the row to load in shared
    // memory.
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1729
    ICHECK_EQ(op->args.size(), 7U);
    bool trans = Downcast<Bool>(op->args[0])->value;
    int num = Downcast<Integer>(op->args[1])->value;
    std::string type = Downcast<StringImm>(op->args[2])->value;
    std::string local_ptr = this->PrintExpr(op->args[3]);
    std::string local_elem_offset = this->PrintExpr(op->args[4]);
    std::string smem_ptr = this->PrintExpr(op->args[5]);
    if (trans && op->dtype.bits() == 8) {
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1731
      // Since ldmatrix assumes that a matrix element is 16 bit, it cannot
      // properly transpose an int8 matrix.
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1733
1734
1735
      std::string smem_stride = this->PrintExpr(op->args[6]);
      ICHECK(num == 4);
      os << "for (int i = 0; i < 16; ++i) {\n";
      os << local_ptr << "[" + local_elem_offset + " + i] = " << smem_ptr
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1739
         << "[(i % 8) / 4 * " + smem_stride +
                " * 16 + (threadIdx.x % 4) * 4 * " + smem_stride +
                "+ (i % 4) * " + smem_stride +
                " + threadIdx.x / 4 +  (i / 8) * 8];\n";
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1742
      os << "}\n";
    } else {
      std::string smem_elem_offset = this->PrintExpr(op->args[6]);
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1745
1746
1747
1748
      std::string func_name = "tl::ptx_ldmatrix_x" + std::to_string(num);
      if (trans == 1)
        func_name += "_trans";
      this->PrintIndent();
      this->stream << func_name << "(" << smem_ptr << " + " << smem_elem_offset
                   << ", " << local_ptr << " + " << local_elem_offset << ");\n";
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    }
  } else if (op->op.same_as(builtin::mma_store())) {
    int m = Downcast<Integer>(op->args[0])->value;
    int n = Downcast<Integer>(op->args[1])->value;
    std::string dst = this->PrintExpr(op->args[2]);
    std::string src = this->PrintExpr(op->args[3]);
    std::string src_offset = this->PrintExpr(op->args[4]);
    PrimExpr stride = op->args[5];

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    ICHECK(m == 16 && n == 16)
        << "Only m == 16 && n == 16 case supported for now";
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1761
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1764
1765
    // Each thread in a warp holds a certain number of elements of an MMA
    // output. For example, if we compute a 16x16 tile using MMA, each thread
    // holds 8 elements in its registers. So conceptually, a warp memory is
    // organized as a 32x8 block. A map from a 16x16 tile to a 32x8 block of
    // memory is specified by the index map below.
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    // To store the 32x8 output back to a 16x16 tile in shared or global memory,
    // we invert this map to determine the output location for each 8 element.
1769

1770
1771
    const auto index_map_func = ffi::Function::GetGlobal(
        "tir.index_map.shared_16x16_to_mma_32x8_layout");
1772

1773
1774
1775
    IndexMap index_map;
    if (!index_map_func) {
      Var i, j;
1776

1777
      // The index map is defined as follows:
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1782
      index_map = IndexMap(
          {i, j}, {4 * FloorMod(i, 8) + FloorDiv(FloorMod(j, 8), 2),
                   4 * FloorDiv(j, 8) + FloorDiv(i, 8) * 2 + FloorMod(j, 2)});
    } else {
      index_map = IndexMap::FromFunc(2, *index_map_func);
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    }

    arith::Analyzer analyzer;
    auto inverse_index_map =
        index_map.Inverse({Range(0, m), Range(0, n)}, &analyzer);
    auto indices_16x16 = inverse_index_map->final_indices;

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    // "//" and "%" in the index map are translated to FloorDiv/Mod, but the
    // plain Div/Mod are fine. FloorDiv/Mod are supposed to be lowered before
    // they reach codegen, so manually replace them to the plain ones here.
1793
    class LowerFloorDivMod : public ExprMutator {
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    public:
      PrimExpr VisitExpr_(const FloorDivNode *op) {
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        return tir::Div(this->VisitExpr(op->a), this->VisitExpr(op->b));
      }
1798
      PrimExpr VisitExpr_(const FloorModNode *op) {
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        return tir::Mod(this->VisitExpr(op->a), this->VisitExpr(op->b));
      }
    };

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1804
    auto dst_ind =
        LowerFloorDivMod()(indices_16x16[0] * stride + indices_16x16[1]);
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    var_idmap_[inverse_index_map->initial_indices[0].get()] = "threadIdx.x";
    var_idmap_[inverse_index_map->initial_indices[1].get()] = "local_id";
    if (op->dtype.bits() == 16) {
      os << "for (int local_id = 0; local_id < 8; local_id+=2) {\n";
      os << "*((uint *)&" << dst << "[" + this->PrintExpr(dst_ind) + "])"
         << " = "
         << "*((uint *)&" << src << "[" << src_offset << " + local_id]);\n";
      os << "}\n";
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    } else {
1815
      os << "for (int local_id = 0; local_id < 8; ++local_id) {\n";
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      os << dst << "[" + this->PrintExpr(dst_ind) + "]" << " = " << src << "["
         << src_offset << " + local_id];\n";
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      os << "}\n";
    }

  } else if (op->op.same_as(builtin::mma_fill())) {
    std::string num_elem = this->PrintExpr(op->args[0]);
    std::string dst = this->PrintExpr(op->args[1]);
    std::string dst_offset = this->PrintExpr(op->args[2]);

    os << "for (int i = 0; i < " << num_elem << "; ++i) {\n";
    os << dst << "[" << dst_offset << " + i] = 0.0;";
    os << "}\n";
  } else if (op->op.same_as(builtin::ptx_cp_async())) {
    std::string dst = this->PrintExpr(op->args[0]);
    std::string dst_offset = this->PrintExpr(op->args[1]);
    std::string src = this->PrintExpr(op->args[2]);
    std::string src_offset = this->PrintExpr(op->args[3]);
    std::string size = this->PrintExpr(op->args[4]);
    need_cast_smem_ptr_to_int_ = true;
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    // use size of argument list to indicate whether or not to use predicated
    // cp.async
1838
    if (op->args.size() == 5) {
1839
1840
      this->stream << PrintCpAsyncAssembly(dst, dst_offset, src, src_offset,
                                           size);
1841
    } else {
1842
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      this->stream << PrintPredicatedCpAsyncAssembly(
          dst, dst_offset, src, src_offset, size, this->PrintExpr(op->args[5]));
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    }
  } else if (op->op.same_as(builtin::ptx_cp_async_bulk())) {
    need_cast_smem_ptr_to_int_ = true;
    std::string dst = this->PrintExpr(op->args[0]);
    std::string dst_offset = this->PrintExpr(op->args[1]);
    std::string src = this->PrintExpr(op->args[2]);
    std::string src_offset = this->PrintExpr(op->args[3]);
    std::string size = this->PrintExpr(op->args[4]);
    int barrier_id = Downcast<IntImm>(op->args[5])->value;
    CHECK(barrier_id < barrier_count_);
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1857
    std::string barrier =
        barrier_name_ + "[" + std::to_string(barrier_id) + "]";
    this->stream << PrintCpAsyncBulkAsm(dst, dst_offset, src, src_offset, size,
                                        barrier);
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  } else if (op->op.same_as(builtin::ptx_commit_group())) {
    this->stream << "__asm__ __volatile__(\"cp.async.commit_group;\");\n\n";
  } else if (op->op.same_as(builtin::ptx_wait_group())) {
    int n = Downcast<IntImm>(op->args[0])->value;
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    this->stream << "__asm__ __volatile__(\"cp.async.wait_group " << n
                 << ";\");\n\n";
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  } else if (op->op.same_as(builtin::ptx_init_barrier_thread_count())) {
    need_cast_smem_ptr_to_int_ = true;
    int barrier_id = Downcast<IntImm>(op->args[0])->value;
    CHECK(barrier_id < barrier_count_);
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    std::string barrier =
        barrier_name_ + "[" + std::to_string(barrier_id) + "]";
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    std::string thread_count = this->PrintExpr(op->args[1]);
    this->stream << PrintInitBarrierThreadCountAsm(barrier, thread_count);
  } else if (op->op.same_as(builtin::ptx_arrive_barrier())) {
    need_cast_smem_ptr_to_int_ = true;
    int barrier_id = Downcast<IntImm>(op->args[0])->value;
    CHECK(barrier_id < barrier_count_);
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    std::string barrier =
        barrier_name_ + "[" + std::to_string(barrier_id) + "]";
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    this->stream << PrintArriveBarrierAsm(barrier);
  } else if (op->op.same_as(builtin::ptx_arrive_barrier_expect_tx())) {
    need_cast_smem_ptr_to_int_ = true;
    int barrier_id = Downcast<IntImm>(op->args[0])->value;
    CHECK(barrier_id < barrier_count_);
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    std::string barrier =
        barrier_name_ + "[" + std::to_string(barrier_id) + "]";
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    std::string byte_count = this->PrintExpr(op->args[1]);
    this->stream << PrintArriveBarrierExpectTxAsm(barrier, byte_count);
  } else if (op->op.same_as(builtin::ptx_wait_barrier())) {
    need_cast_smem_ptr_to_int_ = true;
    int barrier_id = Downcast<IntImm>(op->args[0])->value;
    CHECK(barrier_id < barrier_count_);
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    std::string barrier =
        barrier_name_ + "[" + std::to_string(barrier_id) + "]";
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    this->stream << PrintWaitBarrierAsm(barrier);
  } else if (op->op.same_as(builtin::ptx_ldg32())) {
    /*
    asm volatile (
        "{.reg .pred p;\n"
        " setp.ne.b32 p, %2, 0;\n"
        // " @p ld.global.nc.f32 %0, [%1];}\n"t
        " @p ld.global.nc.L2::128B.f32 %0, [%1];}\n"
        : "=f"(reg)
        : "l"(addr), "r"((int)guard)
    );
    */

    // get local
    std::string reg = this->PrintExpr(op->args[0]);
    // get guard
    std::string guard = this->PrintExpr(op->args[1]);
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    const BufferLoadNode *addr_buffer = op->args[2].as<BufferLoadNode>();
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    std::string global_addr = this->PrintExpr(addr_buffer->indices[0]);
    std::string global_buffer = this->PrintExpr(addr_buffer->buffer->data);
    std::string local_addr = this->PrintExpr(op->args[3]);
    this->stream << "asm volatile (\n";
    this->stream << "\"{.reg .pred p;\\n\"\n";
    this->stream << "\" setp.ne.b32 p, %2, 0;\\n\"\n";
    this->stream << "\" @!p mov.b32 %0, 0;\\n\"\n";
    this->stream << "\" @p ld.global.nc.f32 %0, [%1];}\\n\"\n";
    // stream << "\" @p ld.global.nc.L2::128B.f32 %0, [%1];}\\n\"\n" ;
    stream << ": \"=f\"(" << reg << "[" << local_addr << "]"
           << ")\n";
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    stream << ": \"l\"((void*)(" << global_buffer << "+" << global_addr
           << ")), \"r\"((int)" << guard << ")\n";
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    stream << ");\n";
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  } else if (op->op.same_as(builtin::reinterpret())) {
    DataType tgt_dtype = op->dtype;
    DataType src_dtype = op->args[0]->dtype;
    PrimExpr value = op->args[0];

    // Handle float4_e2m1fn reinterpret
    if (!src_dtype.is_float4_e2m1fn() && !tgt_dtype.is_float4_e2m1fn()) {
      return CodeGenC::VisitExpr_(op, os);
    }
    if (src_dtype == tgt_dtype || tgt_dtype.lanes() * tgt_dtype.bits() ==
                                      src_dtype.lanes() * src_dtype.bits()) {
      return CodeGenC::VisitExpr_(op, os);
    }
    CHECK_EQ(tgt_dtype.lanes(), src_dtype.lanes())
        << "E2M1 float4 reinterpret expects source and target to have the same "
           "number of lanes. "
        << "Source dtype: " << src_dtype << ", Target dtype: " << tgt_dtype;
    CHECK_EQ(tgt_dtype.bytes(), src_dtype.bytes())
        << "E2M1 float4 reinterpret expects source and target to have the same "
           "number of bytes. "
        << "Source dtype: " << src_dtype << ", Target dtype: " << tgt_dtype;

    int lanes = tgt_dtype.lanes();

    int ssa_scope = BeginScope();
    if (lanes == 1) {
      // The case of lane=1 is same as the normal reinterpret,
      // except that we allow the src and dst dtype to have different number of
      // bits.
      std::string rhs = SSAGetID(PrintExpr(value), src_dtype);
      os << "(*(";
      this->PrintType(tgt_dtype, os);
      os << " *)(&(" << rhs << ")))";
    } else if (lanes == 2) {
      if (tgt_dtype.is_float4_e2m1fn()) {
        // We view the source as an uint16, and then extract bits of two fp4
        // numbers, and finally reinterpret the result as fp4x2.
        value =
            tir::Call(DataType::UInt(16), tir::builtin::reinterpret(), {value});
        tir::Var temp_var("temp_var", DataType::UInt(16));
        value =
            tir::Let(temp_var, value,
                     tir::Cast(DataType::UInt(8),
                               (temp_var & IntImm(DataType::UInt(16), 0xF)) |
                                   ((temp_var >> 4) &
                                    IntImm(DataType::UInt(16), 0xF0))));
      } else {
        value = tir::Cast(
            DataType::UInt(16),
            tir::Call(DataType::UInt(8), tir::builtin::reinterpret(), {value}));
        tir::Var temp_var("temp_var", DataType::UInt(16));
        value =
            tir::Let(temp_var, value,
                     (temp_var & IntImm(DataType::UInt(16), 0xF)) |
                         ((temp_var & IntImm(DataType::UInt(16), 0xF0)) << 4));
      }
      os << PrintExpr(
          tir::Call(tgt_dtype, tir::builtin::reinterpret(), {value}));
    } else if (lanes == 4) {
      if (tgt_dtype.is_float4_e2m1fn()) {
        // We view the source as an uint32, and then extract bits of four fp4
        // numbers, and finally reinterpret the result as fp4x4.
        value =
            tir::Call(DataType::UInt(32), tir::builtin::reinterpret(), {value});
        tir::Var temp_var("temp_var", DataType::UInt(32));
        value = tir::Let(
            temp_var, value,
            tir::Cast(
                DataType::UInt(16),
                (temp_var & IntImm(DataType::UInt(32), 0xF)) |
                    ((temp_var >> 4) & IntImm(DataType::UInt(32), 0xF0)) |
                    ((temp_var >> 8) & IntImm(DataType::UInt(32), 0xF00)) |
                    ((temp_var >> 12) & IntImm(DataType::UInt(32), 0xF000))));
      } else {
        value = tir::Cast(DataType::UInt(32),
                          tir::Call(DataType::UInt(16),
                                    tir::builtin::reinterpret(), {value}));
        tir::Var temp_var("temp_var", DataType::UInt(32));
        value = tir::Let(
            temp_var, value,
            (temp_var & IntImm(DataType::UInt(32), 0xF)) |
                ((temp_var & IntImm(DataType::UInt(32), 0xF0)) << 4) |
                ((temp_var & IntImm(DataType::UInt(32), 0xF00)) << 8) |
                ((temp_var & IntImm(DataType::UInt(32), 0xF000)) << 12));
      }
      os << PrintExpr(
          tir::Call(tgt_dtype, tir::builtin::reinterpret(), {value}));
    } else {
      LOG(FATAL) << "Invalid number of lanes for float4_e2m1fn reinterpret: "
                 << lanes;
    }
    EndScope(ssa_scope);
  } else if (op->op.same_as(builtin::thread_return())) {
    os << "return";
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  } else if (op->op.same_as(tl::tl_gemm())) {
    ICHECK(op->args.size() == 4) << "tl_gemm expects 4 arguments <op_instance, "
                                    "A_ptr, B_ptr, C_ptr>, but got "
                                 << op->args.size();
    auto op_instance = Downcast<StringImm>(op->args[0]);
    this->PrintCallExtern(GetType(GetRef<PrimExpr>(op)), op_instance->value,
                          op->args, true, os);
  } else if (op->op.same_as(tl::tl_gemm_sp())) {
    ICHECK(op->args.size() == 5)
        << "tl_gemm_sp expects 5 arguments <op_instance, A_ptr, B_ptr, C_ptr, "
           "E_ptr>, but got "
        << op->args.size();
    auto op_instance = Downcast<StringImm>(op->args[0]);
    enable_sparse_gemm_ = true;
    this->PrintCallExtern(GetType(GetRef<PrimExpr>(op)), op_instance->value,
                          op->args, true, os);
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  } else if (op->op.same_as(tl::get_lane_idx())) {
    ICHECK_LE(op->args.size(), 1)
        << "tl.get_lane_idx expects at most one argument <warp_size>.";
    os << "tl::get_lane_idx(";
    if (!op->args.empty()) {
      os << PrintExpr(op->args[0]);
    }
    os << ")";
  } else if (op->op.same_as(tl::get_warp_idx_sync())) {
    ICHECK_LE(op->args.size(), 1)
        << "tl.get_warp_idx_sync expects at most one argument <warp_size>.";
    os << "tl::get_warp_idx_sync(";
    if (!op->args.empty()) {
      os << PrintExpr(op->args[0]);
    }
    os << ")";
  } else if (op->op.same_as(tl::get_warp_idx())) {
    ICHECK_LE(op->args.size(), 1)
        << "tl.get_warp_idx expects at most one argument <warp_size>.";
    os << "tl::get_warp_idx(";
    if (!op->args.empty()) {
      os << PrintExpr(op->args[0]);
    }
    os << ")";
  } else if (op->op.same_as(tl::get_warp_group_idx())) {
    ICHECK_LE(op->args.size(), 2)
        << "tl.get_warp_group_idx expects <warp_size, warps_per_group>.";
    os << "tl::get_warp_group_idx(";
    for (size_t i = 0; i < op->args.size(); ++i) {
      if (i != 0) {
        os << ", ";
      }
      os << PrintExpr(op->args[i]);
    }
    os << ")";
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  } else if (op->op.same_as(tl::tl_shuffle_elect())) {
    os << "tl::tl_shuffle_elect<" << PrintExpr(op->args[0]) << ">()";
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  } else if (op->op.same_as(tl::initialize_descriptor())) {
    ICHECK(op->args.size() == 5)
        << "tl_initialize_descriptor expects 5 arguments but got "
        << op->args.size();
    auto descriptor = op->args[0];
    auto start_address = op->args[1];
    auto layout_type = op->args[2];
    auto leading_byte_offset = op->args[3];
    auto stride_byte_offset = op->args[4];
    os << "tl::initialize_descriptor<" << PrintExpr(layout_type) << ", "
       << PrintExpr(leading_byte_offset) << ", "
       << PrintExpr(stride_byte_offset) << ">(" << PrintExpr(descriptor) << ", "
       << PrintExpr(start_address) << ")";
  } else if (op->op.same_as(tl::increase_descriptor_offset())) {
    ICHECK(op->args.size() == 2)
        << "tl_increase_descriptor_offset expects 2 arguments but got "
        << op->args.size();
    auto descriptor = op->args[0];
    auto offset = op->args[1];
    os << "tl::increase_descriptor_offset<int>(" << PrintExpr(descriptor)
       << ", " << PrintExpr(offset) << ")";
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  } else if (op->op.same_as(tl::__exp())) {
    CUDAFastMath math_func;
    std::string func_name = math_func(op->dtype, "exp");
    os << func_name << "(" << PrintExpr(op->args[0]) << ")";
  } else if (op->op.same_as(tl::__exp10())) {
    CUDAFastMath math_func;
    std::string func_name = math_func(op->dtype, "exp10");
    os << func_name << "(" << PrintExpr(op->args[0]) << ")";
  } else if (op->op.same_as(tl::__log())) {
    CUDAFastMath math_func;
    std::string func_name = math_func(op->dtype, "log");
    os << func_name << "(" << PrintExpr(op->args[0]) << ")";
  } else if (op->op.same_as(tl::__log2())) {
    CUDAFastMath math_func;
    std::string func_name = math_func(op->dtype, "log2");
    os << func_name << "(" << PrintExpr(op->args[0]) << ")";
  } else if (op->op.same_as(tl::__log10())) {
    CUDAFastMath math_func;
    std::string func_name = math_func(op->dtype, "log10");
    os << func_name << "(" << PrintExpr(op->args[0]) << ")";
  } else if (op->op.same_as(tl::__tan())) {
    CUDAFastMath math_func;
    std::string func_name = math_func(op->dtype, "tan");
    os << func_name << "(" << PrintExpr(op->args[0]) << ")";
  } else if (op->op.same_as(tl::__cos())) {
    CUDAFastMath math_func;
    std::string func_name = math_func(op->dtype, "cos");
    os << func_name << "(" << PrintExpr(op->args[0]) << ")";
  } else if (op->op.same_as(tl::__sin())) {
    CUDAFastMath math_func;
    std::string func_name = math_func(op->dtype, "sin");
    os << func_name << "(" << PrintExpr(op->args[0]) << ")";
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  } else if (op->op.same_as(tl::ieee_add())) {
    CUDAIEEEMath math_func;
    std::string rounding_mode = Downcast<StringImm>(op->args[2])->value;
    std::string func_name = math_func(op->dtype, "fadd", rounding_mode);
    os << func_name << "(" << PrintExpr(op->args[0]) << ", "
       << PrintExpr(op->args[1]) << ")";
  } else if (op->op.same_as(tl::ieee_sub())) {
    CUDAIEEEMath math_func;
    std::string rounding_mode = Downcast<StringImm>(op->args[2])->value;
    std::string func_name = math_func(op->dtype, "fsub", rounding_mode);
    os << func_name << "(" << PrintExpr(op->args[0]) << ", "
       << PrintExpr(op->args[1]) << ")";
  } else if (op->op.same_as(tl::ieee_mul())) {
    CUDAIEEEMath math_func;
    std::string rounding_mode = Downcast<StringImm>(op->args[2])->value;
    std::string func_name = math_func(op->dtype, "fmul", rounding_mode);
    os << func_name << "(" << PrintExpr(op->args[0]) << ", "
       << PrintExpr(op->args[1]) << ")";
  } else if (op->op.same_as(tl::ieee_fmaf())) {
    CUDAIEEEMath math_func;
    std::string rounding_mode = Downcast<StringImm>(op->args[3])->value;
    std::string func_name = math_func(op->dtype, "fmaf", rounding_mode);
    os << func_name << "(" << PrintExpr(op->args[0]) << ", "
       << PrintExpr(op->args[1]) << ", " << PrintExpr(op->args[2]) << ")";
  } else if (op->op.same_as(tl::ieee_frcp())) {
    CUDAIEEEMath math_func;
    std::string rounding_mode = Downcast<StringImm>(op->args[1])->value;
    std::string func_name = math_func(op->dtype, "frcp", rounding_mode);
    os << func_name << "(" << PrintExpr(op->args[0]) << ")";
  } else if (op->op.same_as(tl::ieee_fsqrt())) {
    CUDAIEEEMath math_func;
    std::string rounding_mode = Downcast<StringImm>(op->args[1])->value;
    std::string func_name = math_func(op->dtype, "fsqrt", rounding_mode);
    os << func_name << "(" << PrintExpr(op->args[0]) << ")";
  } else if (op->op.same_as(tl::ieee_frsqrt())) {
    CUDAIEEEMath math_func;
    std::string func_name = math_func(op->dtype, "frsqrt", "rn");
    os << func_name << "(" << PrintExpr(op->args[0]) << ")";
  } else if (op->op.same_as(tl::ieee_fdiv())) {
    CUDAIEEEMath math_func;
    std::string rounding_mode = Downcast<StringImm>(op->args[2])->value;
    std::string func_name = math_func(op->dtype, "fdiv", rounding_mode);
    os << func_name << "(" << PrintExpr(op->args[0]) << ", "
       << PrintExpr(op->args[1]) << ")";
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  } else {
    CodeGenC::VisitExpr_(op, os);
  }
}

2174
void CodeGenTileLangCUDA::VisitStmt_(const AttrStmtNode *op) {
2175
  if (op->attr_key == tir::attr::fragment_shape) {
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    const VarNode *buffer = op->node.as<VarNode>();
    const StringImmNode *shape_str = op->value.as<StringImmNode>();
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    fragment_shapes[buffer] = shape_str->value;
  } else if (op->attr_key == tir::attr::fragment_layout) {
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    const VarNode *buffer = op->node.as<VarNode>();
    const StringImmNode *layout_str = op->value.as<StringImmNode>();
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    fragment_layouts[buffer] = layout_str->value;
  } else if (op->attr_key == tir::attr::async_commit_queue_scope) {
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    const IntImmNode *queue_id = op->value.as<IntImmNode>();
    ICHECK(queue_id && queue_id->value == 0)
        << "For CUDA, the index of an async queue must be 0.";
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    this->VisitStmt(op->body);
    auto commit_group = Call(DataType::Void(), builtin::ptx_commit_group(), {});
    this->VisitExpr(commit_group, this->stream);
    return;
  } else if (op->attr_key == tir::attr::async_wait_queue_scope) {
    auto wait_attrs = GetAsyncWaitAttributes(op);
    auto queue_id = wait_attrs.first.as<IntImmNode>();
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    ICHECK(queue_id && queue_id->value == 0)
        << "For CUDA, the index of an async queue must be 0.";
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    auto wait_cnt = wait_attrs.second;
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    auto wait_group =
        Call(DataType::Void(), builtin::ptx_wait_group(), {wait_cnt});
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    this->VisitExpr(wait_group, this->stream);
    auto inner = op->body.as<AttrStmtNode>();
    ICHECK(inner);
    this->VisitStmt(inner->body);
    return;
  } else if (op->attr_key == "threadblock_swizzle_pattern") {
    this->PrintIndent();
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    const StringImmNode *pattern = op->value.as<StringImmNode>();
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    ICHECK(pattern);
    this->stream << "const dim3 blockIdx = " << pattern->value << "();\n";
    this->VisitStmt(op->body);
    return;
  }
  CodeGenC::VisitStmt_(op);
}

2215
void CodeGenTileLangCUDA::VisitStmt_(const AllocateNode *op) {
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  ICHECK(!is_zero(op->condition));
  std::string vid = AllocVarID(op->buffer_var.get());
  this->PrintIndent();
  std::string scope = GetPtrStorageScope(op->buffer_var);
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  const VarNode *buffer = op->buffer_var.as<VarNode>();
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  if (scope.find("wmma.") == 0) {
    if (scope == "wmma.matrix_a" || scope == "wmma.matrix_b") {
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      ICHECK(op->dtype == DataType::Float(16) ||
             op->dtype == DataType::Int(8) || op->dtype == DataType::UInt(8) ||
             op->dtype == DataType::Int(4) || op->dtype == DataType::UInt(4) ||
             op->dtype == DataType::Int(1) || op->dtype == DataType::BFloat(16))
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          << "Matrix_a and matrix_b only support half or char or unsigned char "
          << "or uint4 or int4 or int1 type for now";
    } else {
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      ICHECK(op->dtype == DataType::Float(16) ||
             op->dtype == DataType::Float(32) || op->dtype == DataType::Int(32))
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          << "Accumulator only support half, float and int type for now";
    }
    PrintWmmaScope(scope, op->dtype, buffer, stream);
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  } else if (scope == "local.descriptor") {
    stream << "tl::GmmaDescriptor " << vid << ";\n";
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  } else {
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2245
    PrintStorageScope(scope, stream);
    PrintType(op->dtype, stream);
  }

  if (scope == "shared.dyn") {
    stream << ' ' << vid << "[];\n";
  } else {
    size_t constant_size = op->ConstantAllocationSize();
2246
    ICHECK_GT(constant_size, 0)
2247
2248
        << "Can only handle constant size stack allocation for now, but get "
        << constant_size << " for " << op->buffer_var->name_hint;
2249
2250
2251
2252
2253
2254
2255
2256
    if (scope.find("wmma.") == 0) {
      constant_size = GetWmmaFragmentSize(scope, buffer, constant_size);
    }
    if ((op->dtype == DataType::Int(4) || op->dtype == DataType::UInt(4) ||
         op->dtype == DataType::Int(1)) &&
        scope == "shared") {
      constant_size = constant_size / (32 / op->dtype.bits());
    }
2257
2258
    if (scope == "shared") {
      stream << ' ' << vid << '[' << constant_size << "];\n";
2259
2260
2261
2262
2263
2264
    } else if (scope == "shared.barrier") {
      auto v_id_mem = vid + "_mem";
      stream << ' ' << v_id_mem << "[" << constant_size << "];\n";
      PrintIndent();
      stream << "auto " << vid << " = reinterpret_cast<" << mbarrier_dtype_
             << "*>(" << v_id_mem << ");\n";
2265
2266
2267
    } else if (scope == "local") {
      stream << ' ' << vid << '[' << constant_size << "];\n";
    } else if (scope == "local.var") {
2268
2269
2270
2271
2272
2273
2274
2275
2276
2277
      PrimExpr init = tir::make_const(op->dtype, 0);
      auto init_it = op->annotations.find(tl::attr::kLocalVarInit);
      if (init_it != op->annotations.end()) {
        PrimExpr user_init = Downcast<PrimExpr>((*init_it).second);
        if (!user_init.dtype().is_void() && user_init.dtype() != op->dtype) {
          user_init = tir::Cast(op->dtype, user_init);
        }
        init = user_init;
      }
      stream << ' ' << vid << " = " << PrintExpr(init) << ";\n";
2278
    } else if (scope != "local.descriptor") {
2279
2280
      ICHECK(false) << "Unsupported scope: " << scope;
    }
2281
2282
2283
2284
2285
2286
  }

  RegisterHandleType(op->buffer_var.get(), op->dtype);
  this->PrintStmt(op->body);
}

2287
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2293
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2295
2296
2297
2298
2299
2300
2301
2302
2303
2304
void CodeGenTileLangCUDA::VisitStmt_(const EvaluateNode *op) {
  if (is_const_int(op->value))
    return;
  const CallNode *call = op->value.as<CallNode>();
  if (call && call->op.same_as(builtin::tvm_global_barrier_kinit())) {
    PrintIndent();
    stream << "__shared__ unsigned " << vid_global_barrier_expect_ << ";\n";
    PrintIndent();
    stream << "if (threadIdx.x == 0) {\n";
    PrintIndent();
    stream << "  " << vid_global_barrier_expect_ << " = 0;\n";
    PrintIndent();
    stream << "}\n";
  } else {
    CodeGenC::VisitStmt_(op);
  }
}

2305
void CodeGenTileLangCUDA::VisitExpr_(const RampNode *op, std::ostream &os) {
2306
  int lanes = static_cast<int>(Downcast<IntImm>(op->lanes)->value);
2307
2308
  CHECK_LE(lanes, 4) << "Translate Ramp Node " << GetRef<Ramp>(op) << " with "
                     << lanes << " lanes is not allowed.";
2309
2310
2311
2312
2313
2314
  os << "(make_";
  PrintType(op->dtype, os);
  os << "(";
  for (int i = 0; i < lanes; i++) {
    os << "(" << PrintExpr(op->base) << ")"
       << "+(" << PrintExpr(op->stride) << "*" << i << ")";
2315
2316
    if (i != lanes - 1)
      os << ", ";
2317
2318
2319
2320
  }
  os << "))";
}

2321
2322
2323
2324
2325
2326
2327
2328
2329
2330
2331
2332
2333
void CodeGenTileLangCUDA::VisitExpr_(const BufferLoadNode *op,
                                     std::ostream &os) { // NOLINT(*)
  ICHECK_EQ(op->indices.size(), 1)
      << "Load from non-flat memory not supported.";
  ICHECK(!op->predicate.defined())
      << "Predicated buffer load is not supported.";

  DataType value_dtype = op->dtype;
  PrimExpr index = op->indices[0];
  Var buffer_var = op->buffer->data;
  DataType element_dtype = op->buffer->dtype;

  int lanes = op->dtype.lanes();
2334
  // declare type.
2335
2336
2337
2338
2339
2340
2341
2342
2343
2344
2345
2346
2347
2348
2349
2350
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2354
2355
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2358
2359
2360
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2363
2364
2365
2366
2367
2368
2369
2370
2371
2372
2373
2374
2375
2376
2377
2378
2379
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2381
2382
2383
2384
2385
2386
2387
2388
2389
2390
  if (value_dtype.lanes() == element_dtype.lanes()) {
    std::string ref = GetBufferRef(op->dtype, op->buffer.get(), index);
    HandleVolatileLoads(ref, op, os);
  } else {
    bool can_vector_load = false;
    arith::PVar<PrimExpr> base;
    if (arith::ramp(base, 1, op->dtype.lanes()).Match(index)) {
      const RampNode *ramp = index.as<RampNode>();
      ICHECK(ramp);
      can_vector_load = true;
      // arith::ModularSet me = arith::Analyzer().modular_set(ramp->base);
      // The condition: {k * coeff + base} divisible by the alignment for any k
      // if (me->coeff % op->dtype.lanes() == 0 && me->base % op->dtype.lanes()
      // == 0) {
      //   can_vector_load = true;
      // }
    }

    if (value_dtype.is_float4_e2m1fn() && lanes != 1) {
      // A float4_e2m1fn element has 4 bits, which is an incomplete byte.
      // So we cannot vector load it.
      can_vector_load = false;
    }
    if (can_vector_load) {
      std::string ref = GetVecLoad(op->dtype, op->buffer.get(), base.Eval());
      HandleVolatileLoads(ref, op, os);
    } else {
      std::ostringstream svalue_expr;
      std::string sindex = SSAGetID(PrintExpr(index), index.dtype());
      std::string vid = GetVarID(buffer_var.get());
      DataType elem_type = op->dtype.element_of();
      for (int i = 0; i < lanes; ++i) {
        std::ostringstream value_temp;
        if (!HandleTypeMatch(buffer_var.get(), elem_type)) {
          value_temp << "((";
          if (buffer_var.get()->dtype.is_handle()) {
            auto it = alloc_storage_scope_.find(buffer_var.get());
            if (it != alloc_storage_scope_.end()) {
              PrintStorageScope(it->second, value_temp);
            }
          }
          PrintType(elem_type, value_temp);
          value_temp << "*)" << vid << ')';
        } else {
          value_temp << vid;
        }
        value_temp << '[';
        PrintVecElemLoad(sindex, index.dtype(), i, value_temp);
        value_temp << ']';
        PrintVecElemLoadExpr(op->dtype, i, value_temp.str(), svalue_expr);
      }
      os << svalue_expr.str();
    }
  }
}

2391
2392
void CodeGenTileLangCUDA::VisitExpr_(const BroadcastNode *op,
                                     std::ostream &os) { // NOLINT(*)
2393
  int lanes = static_cast<int>(Downcast<IntImm>(op->lanes)->value);
2394
2395
2396
2397
2398
2399
2400
2401
2402
2403
2404
2405
2406
2407
2408
2409
2410
2411
2412
2413
2414
2415
2416
2417
2418
2419
2420
  if ((op->dtype.is_int() || op->dtype.is_uint()) && op->dtype.bits() == 8) {
    if (lanes == 4) {
      // make_int8x4
      const int64_t *p = as_const_int(op->value);
      ICHECK(p);
      int64_t v = *p & 0xFF;
      v = (v << 24) | (v << 16) | (v << 8) | v;
      if (op->dtype.is_uint()) {
        os << "(uint)" << v;
      } else {
        os << "(int)" << v;
      }
      return;
    } else if (lanes == 32) {
      // make_int8x32
      const int64_t *p = as_const_int(op->value);
      ICHECK(p);
      int64_t v = *p & 0xFF;
      v = (v << 24) | (v << 16) | (v << 8) | v;
      if (op->dtype.is_uint()) {
        os << "make_ulonglong4(" << v << ", " << v << ", " << v << ", " << v
           << ")";
      } else {
        os << "make_longlong4(" << v << ", " << v << ", " << v << ", " << v
           << ")";
      }
      return;
2421
2422
2423
2424
2425
2426
2427
2428
    }
  }

  if (op->dtype.is_float16()) {
    std::string v = PrintExpr(op->value);
    os << "make_";
    PrintType(op->dtype, os);
    os << '(';
2429
2430
2431
2432
2433
2434
2435
2436
2437
2438
2439
2440
2441
    if (lanes <= 8) {
      for (int i = 0; i < lanes / 2; ++i) {
        if (i != 0)
          os << ", ";
        os << "__pack_half2(" << v << ", " << v << ")";
      }
    } else {
      for (int i = 0; i < lanes / 4; ++i) {
        if (i != 0)
          os << ", ";
        os << "tl::pack_float16x4(" << v << ", " << v << ", " << v << ", " << v
           << ")";
      }
2442
2443
2444
2445
2446
2447
2448
2449
2450
2451
    }
    os << ')';
    return;
  }

  if (op->dtype.is_bfloat16()) {
    std::string v = PrintExpr(op->value);
    os << "make_";
    PrintType(op->dtype, os);
    os << '(';
2452
2453
2454
2455
2456
2457
2458
2459
2460
2461
2462
2463
2464
    if (lanes <= 8) {
      for (int i = 0; i < lanes / 2; ++i) {
        if (i != 0)
          os << ", ";
        os << "__pack_nv_bfloat162(" << v << ", " << v << ")";
      }
    } else {
      for (int i = 0; i < lanes / 4; ++i) {
        if (i != 0)
          os << ", ";
        os << "tl::pack_bfloat16x4(" << v << ", " << v << ", " << v << ", " << v
           << ")";
      }
2465
2466
2467
2468
2469
    }
    os << ')';
    return;
  }

2470
2471
  if (op->dtype.is_float() && op->dtype.bits() == 32 &&
      op->dtype.lanes() == 8) {
2472
2473
2474
    std::string v = PrintExpr(op->value);
    os << "make_ulonglong4(";
    for (int i = 0; i < 4; ++i) {
2475
2476
      if (i != 0)
        os << ", ";
2477
2478
2479
2480
2481
2482
2483
2484
      os << "*(unsigned long long*)&make_float2(" << v << ", " << v << ")";
    }
    os << ')';
    return;
  }

  if ((op->dtype.is_int() || op->dtype.is_uint()) && op->dtype.bits() == 4) {
    bool fail = false;
2485
    const int64_t *p = as_const_int(op->value);
2486
2487
2488
2489
2490
2491
2492
2493
2494
2495
2496
    ICHECK(p);
    int64_t v = *p & 0xF;

    if (lanes == 4) {
      v = (v << 12) | (v << 8) | (v << 4) | v;
      if (op->dtype.is_uint()) {
        os << "(uint16_t)" << v;
      } else {
        os << "(int16_t)" << v;
      }
    } else {
2497
2498
      v = (v << 28) | (v << 24) | (v << 20) | (v << 16) | (v << 12) | (v << 8) |
          (v << 4) | v;
2499
2500
2501
2502
2503
2504
2505
2506
2507
2508
2509
      if (lanes == 8) {
        if (op->dtype.is_uint()) {
          os << "(uint)" << v;
        } else {
          os << "(int)" << v;
        }
      } else if (lanes == 16 || lanes == 32) {
        os << "make_";
        PrintType(op->dtype, os);
        os << '(';
        for (int i = 0; i < lanes / 8; ++i) {
2510
2511
          if (i != 0)
            os << ", ";
2512
2513
2514
2515
2516
2517
2518
2519
2520
2521
2522
2523
2524
2525
2526
2527
2528
2529
2530
2531
2532
2533
          if (op->dtype.is_uint()) {
            os << "(uint)" << v;
          } else {
            os << "(int)" << v;
          }
        }
        os << ')';
      } else {
        fail = true;
      }
    }

    if (!fail) {
      return;
    }
  }

  std::string v = PrintExpr(op->value);
  os << "make_";
  PrintType(op->dtype, os);
  os << '(';
  for (int i = 0; i < lanes; ++i) {
2534
2535
    if (i != 0)
      os << ", ";
2536
2537
2538
2539
2540
    os << v;
  }
  os << ')';
}

2541
2542
inline void PrintConst(const FloatImmNode *op, std::ostream &os,
                       CodeGenTileLangCUDA *p) { // NOLINT(*)
2543
2544
2545
  // Type code is kBFloat
  if (op->dtype.is_bfloat16()) {
    os << "bfloat16_t";
2546
2547
2548
    os << '(' << std::hexfloat << op->value << 'f';
    os << "/*" << std::scientific << op->value << "*/";
    os << ')';
2549
2550
    return;
  }
2551
2552
2553
  // Type code is kFloat8_e5m2 or kE4M4Float
  if (op->dtype.is_float8() || op->dtype.is_float4()) {
    p->PrintType(op->dtype, os);
2554
2555
2556
    os << '(' << std::hexfloat << op->value << 'f';
    os << "/*" << std::scientific << op->value << "*/";
    os << ')';
2557
2558
    return;
  }
2559
2560
  // Type code is kFloat
  switch (op->dtype.bits()) {
2561
2562
2563
2564
2565
2566
  case 64:
  case 32: {
    std::ostringstream temp;
    if (std::isinf(op->value)) {
      if (op->value < 0) {
        temp << "-";
2567
      }
2568
      temp << ((op->dtype.bits() == 32) ? "CUDART_INF_F" : "CUDART_INF");
2569
      p->need_math_constants_h_ = true;
2570
2571
    } else if (std::isnan(op->value)) {
      temp << ((op->dtype.bits() == 32) ? "CUDART_NAN_F" : "CUDART_NAN");
2572
      p->need_math_constants_h_ = true;
2573
    } else {
2574
      temp << std::hexfloat << op->value;
2575
2576
      if (op->dtype.bits() == 32)
        temp << 'f';
2577
      temp << "/*" << std::scientific << op->value << "*/";
2578
    }
2579
2580
2581
2582
2583
2584
2585
2586
2587
2588
2589
2590
2591
    p->MarkConst(temp.str());
    os << temp.str();
    break;
  }
  case 16: {
    os << "half_t" << '(';
    FloatImm const_f32 = FloatImm(DataType::Float(32), op->value);
    PrintConst(const_f32.get(), os, p);
    os << ')';
    break;
  }
  default:
    LOG(FATAL) << "Bad bit-width for float: " << op->dtype << "\n";
2592
2593
2594
  }
}

2595
2596
void CodeGenTileLangCUDA::VisitExpr_(const FloatImmNode *op,
                                     std::ostream &os) { // NOLINT(*)
2597
2598
2599
  PrintConst(op, os, this);
}

2600
2601
2602
void CodeGenTileLangCUDA::PrintWmmaScope(const std::string &scope, DataType t,
                                         const VarNode *variable,
                                         std::ostream &os) {
2603
2604
  std::stringstream type;
  PrintType(t, type);
2605
2606
  ICHECK(fragment_shapes.count(variable))
      << "Cannot find shape of the wmma fragment " << variable->name_hint;
2607
2608
2609
2610
2611
2612
2613
2614
2615
2616
2617
2618
2619
2620
2621
2622
2623
2624
2625
2626
2627
2628
  std::string shape_str = fragment_shapes.at(variable);
  if ((t.is_int() || t.is_uint()) && t.bits() < 8 && t.lanes() == 1) {
    type.str(std::string());
    if (t.is_int()) {
      if (t.bits() == 4) {
        type << "nvcuda::wmma::experimental::precision::s4";
      } else if (t.bits() == 1) {
        type << "nvcuda::wmma::experimental::precision::b1";
      } else {
        LOG(FATAL) << "Unhandled integer type for wmma fragment!";
      }
    } else if (t.is_uint()) {
      if (t.bits() == 4) {
        type << "nvcuda::wmma::experimental::precision::u4";
      } else {
        LOG(FATAL) << "Unhandled integer type for wmma fragment!";
      }
    }
  }
  if (scope == "wmma.matrix_a") {
    std::string layout_str = fragment_layouts[variable];
    ICHECK_NE(layout_str, "") << "Layout must be defined for matrix_a";
2629
2630
    os << "nvcuda::wmma::fragment<nvcuda::wmma::matrix_a, " << shape_str << ", "
       << type.str() << ", nvcuda::wmma::" << layout_str << ">";
2631
2632
2633
  } else if (scope == "wmma.matrix_b") {
    std::string layout_str = fragment_layouts[variable];
    ICHECK_NE(layout_str, "") << "Layout must be defined for matrix_b";
2634
2635
    os << "nvcuda::wmma::fragment<nvcuda::wmma::matrix_b, " << shape_str << ", "
       << type.str() << ", nvcuda::wmma::" << layout_str << ">";
2636
  } else if (scope == "wmma.accumulator") {
2637
2638
    os << "nvcuda::wmma::fragment<nvcuda::wmma::accumulator, " << shape_str
       << ", " << type.str() << ">";
2639
2640
2641
  }
}

2642
2643
int32_t CodeGenTileLangCUDA::GetWmmaFragmentSize(const std::string &scope,
                                                 const VarNode *variable,
2644
                                                 int32_t size) {
2645
2646
  ICHECK(fragment_shapes.count(variable))
      << "Cannot find shape of the wmma fragment " << variable->name_hint;
2647
2648
2649
2650
2651
2652
2653
2654
  std::string shape_str = fragment_shapes.at(variable);
  std::pair<int32_t, int32_t> dim = GetWmmaFragmentDimSize(shape_str, scope);
  if (dim.first * dim.second != 0)
    return size / dim.first / dim.second;
  else
    return 0;
}

2655
2656
2657
void CodeGenTileLangCUDA::HandleVolatileLoads(const std::string &value,
                                              const BufferLoadNode *op,
                                              std::ostream &os) {
2658
2659
2660
  // Cast away volatile qualifier for fp16 types. That is, only loads and
  // stores are volatile. The loaded objects are not marked as volatile.
  //
2661
2662
  if ((op->dtype.is_float16() || op->dtype.is_bfloat16()) &&
      IsVolatile(op->buffer->data.get())) {
2663
2664
2665
2666
2667
2668
2669
2670
    os << "(";
    PrintType(op->dtype, os);
    os << ")(" << value << ")";
  } else {
    os << value;
  }
}

2671
2672
2673
void CodeGenTileLangCUDA::PrintVecElemLoadExpr(DataType t, int i,
                                               const std::string &value,
                                               std::ostream &os) {
2674
2675
2676
2677
2678
2679
  ICHECK_GT(t.lanes(), 1);
  if (t.bits() == 8 && (t.is_int() || t.is_uint())) {
    if (!(t.lanes() == 2 || t.lanes() == 3)) {
      if (i != 0) {
        os << "|";
      }
2680
2681
      os << "((0x000000ff << " << i * 8 << ") & (" << value << " << " << i * 8
         << "))";
2682
2683
2684
2685
2686
2687
2688
2689
2690
2691
2692
2693
2694
2695
2696
2697
2698
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2700
2701
2702
2703
2704
2705
2706
2707
2708
2709
2710
2711
2712
2713
2714
2715
2716
2717
2718
2719
2720
2721
2722
2723
2724
2725
2726
2727
2728
2729
2730
2731
2732
2733
2734
2735
2736
2737
      return;
    }
  }

  if (t.is_float16()) {
    if (i == 0) {
      os << "make_";
      PrintType(t, os);
      os << '(';
    }
    if (i % 2 == 0) {
      os << "__pack_half2(" << value;
    } else {
      os << "," << value << ")";
      if (i != t.lanes() - 1) {
        os << ",";
      } else {
        os << ")";
      }
    }
    return;
  }

  if (t.is_bfloat16()) {
    if (i == 0) {
      os << "make_";
      PrintType(t, os);
      os << '(';
    }
    if (i % 2 == 0) {
      os << "__pack_bfloat162(" << value;
    } else {
      os << "," << value << ")";
      if (i != t.lanes() - 1) {
        os << ",";
      } else {
        os << ")";
      }
    }
    return;
  }

  if (i == 0) {
    os << "make_";
    PrintType(t, os);
    os << "(";
  }
  os << value;
  if (i != t.lanes() - 1) {
    os << ",";
  } else {
    os << ")";
  }
  return;
}

2738
2739
2740
2741
2742
2743
2744
2745
2746
2747
2748
2749
2750
2751
2752
2753
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2768
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2770
2771
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void CodeGenTileLangCUDA::PrintFunctionSignature(const String &function_name,
                                                 const PrimFunc &func,
                                                 std::ostream &os) {
  PrintFuncPrefix(os);
  CodeGenC::PrintType(func->ret_type, os);
  CodeGenC::PrintExtraAttrs(func, os);
  bool no_alias = func->HasNonzeroAttr(tir::attr::kNoAlias);
  os << " " << function_name << "(";
  for (size_t i = 0; i < func->params.size(); ++i) {
    tir::Var v = func->params[i];
    std::string vid = AllocVarID(v.get());

    if (i > 0) {
      os << ", ";
    }

    if (v.dtype().is_handle()) {
      // work around for grid constant parameters.
      if (auto *ptr = v->type_annotation.as<PointerTypeNode>()) {
        if (ptr->storage_scope == "grid_constant") {
          os << "__grid_constant__ const ";
          CodeGenC::PrintType(ptr->element_type, os);
          os << ' ' << vid;
          continue;
        }
      }

      auto it = alloc_storage_scope_.find(v.get());
      if (it != alloc_storage_scope_.end()) {
        PrintStorageScope(it->second, os);
      }

      CodeGenC::PrintType(GetType(v), os);
      if (auto *ptr = v->type_annotation.as<PointerTypeNode>()) {
        if (auto *prim = ptr->element_type.as<PrimTypeNode>()) {
          RegisterHandleType(v.get(), prim->dtype);
        }
      }

      if (no_alias) {
        PrintRestrict(v, os);
      }
    } else {
      CodeGenC::PrintType(GetType(v), os);
    }
    os << ' ' << vid;
  }
  os << ")";

  // Register handle data type
  // TODO(tvm-team): consider simply keep type info in the
  // type annotation(via a normalizing rewriting).
  for (const auto &param : func->params) {
    if (auto *ptr = param->type_annotation.as<PointerTypeNode>()) {
      if (auto *prim = ptr->element_type.as<PrimTypeNode>()) {
        RegisterHandleType(param.get(), prim->dtype);
      }
    }
  }
}

void CodeGenTileLangCUDA::AddFunction(const GlobalVar &gvar,
                                      const PrimFunc &f) {
  // If the function has already been forward-declared, this is a
  // no-op.
  CodeGenC::DeclareFunction(gvar, f);
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  // clear previous generated state.
  this->InitFuncState(f);
  // reserve keywords
  ReserveKeywordsAsUnique();

  auto global_symbol = f->GetAttr<String>(tvm::attr::kGlobalSymbol);
  ICHECK(global_symbol.defined())
      << "CodeGenC: Expect PrimFunc to have the global_symbol attribute";
  bool no_alias = f->HasNonzeroAttr(tir::attr::kNoAlias);

  this->PrintFuncPrefix(stream);
  CodeGenC::PrintType(f->ret_type, stream);
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  this->PrintExtraAttrs(f);

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  this->stream << " " << static_cast<std::string>(global_symbol.value()) << "(";

  for (size_t i = 0; i < f->params.size(); ++i) {
    tir::Var v = f->params[i];
    std::string vid = AllocVarID(v.get());
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    if (i != 0)
      stream << ", ";
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    if (v.dtype().is_handle()) {
      // work around for grid constant parameters.
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      if (auto *ptr = v->type_annotation.as<PointerTypeNode>()) {
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        if (ptr->storage_scope == "grid_constant") {
          stream << "__grid_constant__ const ";
          CodeGenC::PrintType(ptr->element_type, stream);
          stream << ' ' << vid;
          continue;
        }
      }

      auto it = alloc_storage_scope_.find(v.get());
      if (it != alloc_storage_scope_.end()) {
        PrintStorageScope(it->second, stream);
      }

      CodeGenC::PrintType(GetType(v), stream);
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      if (auto *ptr = v->type_annotation.as<PointerTypeNode>()) {
        if (auto *prim = ptr->element_type.as<PrimTypeNode>()) {
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          RegisterHandleType(v.get(), prim->dtype);
        }
      }

      if (no_alias) {
        PrintRestrict(v, stream);
      }
    } else {
      CodeGenC::PrintType(GetType(v), stream);
    }
    stream << ' ' << vid;
  }
  stream << ") {\n";
  this->PreFunctionBody(f);
  int func_scope = this->BeginScope();
  this->PrintStmt(f->body);
  this->EndScope(func_scope);
  this->PrintIndent();
  this->stream << "}\n\n";
}

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} // namespace codegen
} // namespace tvm