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- LuisaGroup/LuisaCompute
- 최근 소스 활동
- 2026년 6월 13일 15:22
- 감지된 SKILL.md 언어
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설치 방법
기본적으로 소스를 먼저 확인하는 Prompt가 선택됩니다. 직접 명령으로 전환하거나 로컬 사본을 다운로드할 수도 있습니다.
소스 파일 검토
설치 여부를 결정하기 전에 SKILL.md와 SkillsMP에 표시된 보조 파일을 읽어 보세요.
메뉴
기본적으로 소스를 먼저 확인하는 Prompt가 선택됩니다. 직접 명령으로 전환하거나 로컬 사본을 다운로드할 수도 있습니다.
설치 여부를 결정하기 전에 SKILL.md와 SkillsMP에 표시된 보조 파일을 읽어 보세요.
Codex 또는 Claude로 설치 이 Prompt를 복사해 Codex, Claude 또는 다른 어시스턴트에 붙여 넣으면 Skill 페이지를 검토하고 설치를 진행할 수 있습니다.
직접 명령은 검토 Prompt를 거치지 않습니다. 실행하기 전에 소스를 확인하세요.
npx skills add https://github.com/LuisaGroup/LuisaCompute --skill ast명령은 한 줄로 유지됩니다. 복사하기 전에 가로로 스크롤해 전체 내용을 확인하세요.
로컬 사본을 원하시나요? SkillsMP에서 현재 제공할 수 있는 파일을 다운로드하세요.
SOC 직업 분류 기준
SKILL.md 표시 중
| name | ast |
| description | Manual AST construction with FunctionBuilder for kernels and callables without DSL sugar. |
Two approaches: DSL (Kernel2D<>, Callable<> lambdas) vs Manual AST (FunctionBuilder). Use manual AST for codegen, metaprogramming, programmatic kernel building.
Header: #include <luisa/ast/function_builder.h>
using FuncBuilder = luisa::compute::detail::FunctionBuilder;
auto kernel = FuncBuilder::define_kernel([&]() { auto &cur = *FuncBuilder::current(); ... });
auto callable = FuncBuilder::define_callable([&]() { ... });
auto raster = FuncBuilder::define_raster_stage([&]() { ... });
All three return luisa::shared_ptr<const FuncBuilder>. define_kernel may duplicate the builder if outlined functions leak locals, so keep the returned pointer.
auto &cur = *FuncBuilder::current();
cur.dispatch_id(); // uint3
cur.dispatch_size(); // uint3
cur.thread_id(); // uint3
cur.block_id(); // uint3
cur.kernel_id(); // uint (indirect kernels only)
cur.warp_lane_id(); // uint
cur.warp_lane_count(); // uint
// Rasterization stage only
cur.raster_object_id(); // uint
cur.raster_barycentrics();// uint
cur.set_block_size(uint3(16, 16, 1));
cur.set_name("my_kernel");
cur.set_variable_name(var_uid, "my_var");
auto name = cur.get_variable_name(var_uid);
cur.mark_variable_usage(var_uid, Usage::READ_WRITE);
// Arguments
cur.argument(Type::of<float3>()); // input value
auto ref = cur.reference(Type::of<uint2>()); // inout parameter
// Memory
cur.local(Type::of<float>()); // local variable
auto arr = cur.shared(Type::array(Type::of<float>(), count)); // shared array
// Constants
float4 v{1,2,3,4};
auto cdata = ConstantData::create(Type::of<float4>(), &v, sizeof(v));
auto c = cur.constant(cdata);
// Resources
cur.buffer(Type::of<Buffer<float>>()); // buffer
cur.texture(Type::of<Image<float>>()); // 2D texture
cur.texture(Type::of<Image3D<float>>()); // 3D texture
cur.accel(); // acceleration structure
cur.bindless_array(); // bindless array
Binding methods create a bound argument and return its RefExpr*. Use that expression directly in the function body.
auto bound_buf = cur.buffer_binding(Type::of<Buffer<float>>(), handle, offset_bytes, size_bytes);
auto bound_tex = cur.texture_binding(Type::of<Image<float>>(), handle, level);
auto bound_ba = cur.bindless_array_binding(handle);
auto bound_acc = cur.accel_binding(handle);
// Example: read from a bound buffer
auto idx = cur.literal(Type::of<uint>(), 0u);
auto value = cur.call(Type::of<float>(), CallOp::BUFFER_READ, {bound_buf, idx});
cur.literal(Type::of<float>(), 1.0f);
cur.literal(Type::of<int>(), 42);
cur.literal(Type::of<uint>(), 0u);
cur.literal(Type::of<bool>(), true);
cur.literal(Type::of<float2>(), float2(0.5f, 0.5f));
Comparison operators are named, not symbolic.
cur.binary(Type::of<float>(), BinaryOp::ADD, a, b); // +
cur.binary(Type::of<float>(), BinaryOp::SUB, a, b); // -
cur.binary(Type::of<float>(), BinaryOp::MUL, a, b); // *
cur.binary(Type::of<float>(), BinaryOp::DIV, a, b); // /
cur.binary(Type::of<int>(), BinaryOp::MOD, a, b); // %
cur.binary(Type::of<uint>(), BinaryOp::BIT_AND, a, b); // &
cur.binary(Type::of<uint>(), BinaryOp::BIT_OR, a, b); // |
cur.binary(Type::of<uint>(), BinaryOp::BIT_XOR, a, b); // ^
cur.binary(Type::of<uint>(), BinaryOp::SHL, a, b); // <<
cur.binary(Type::of<uint>(), BinaryOp::SHR, a, b); // >>
cur.binary(Type::of<bool>(), BinaryOp::AND, a, b); // &&
cur.binary(Type::of<bool>(), BinaryOp::OR, a, b); // ||
cur.binary(Type::of<bool>(), BinaryOp::EQUAL, a, b); // ==
cur.binary(Type::of<>(), BinaryOp::NOT_EQUAL, a, b);
cur.(Type::<>(), BinaryOp::LESS, a, b);
cur.(Type::<>(), BinaryOp::LESS_EQUAL, a, b);
cur.(Type::<>(), BinaryOp::GREATER, a, b);
cur.(Type::<>(), BinaryOp::GREATER_EQUAL, a, b);
cur.unary(Type::of<float>(), UnaryOp::PLUS, value); // +
cur.unary(Type::of<float>(), UnaryOp::MINUS, value); // -
cur.unary(Type::of<bool>(), UnaryOp::NOT, value); // !
cur.unary(Type::of<uint>(), UnaryOp::BIT_NOT, value); // ~
Component indices are packed in 4-bit nibbles, lowest bits first:
// .xy from uint3: (0) | (1 << 4)
uint64_t swizzle_xy = (0ull) | (1ull << 4ull);
cur.swizzle(Type::of<uint2>(), coord_uint3, 2, swizzle_xy);
// .xyzw (all): 0x3210u
cur.swizzle(Type::of<float4>(), vec, 4, 0x3210u);
// .x: 0ull .y: 1ull<<4 .z: 2ull<<8 .w: 3ull<<12
// Built-in
cur.call(Type::of<float4>(), CallOp::MAKE_FLOAT4, {r, g, b, a});
cur.call(CallOp::TEXTURE_WRITE, {texture, coord, color});
cur.call(Type::of<float4>(), CallOp::TEXTURE_READ, {texture, coord});
// Buffer
cur.call(Type::of<float>(), CallOp::BUFFER_READ, {buffer, index});
cur.call(CallOp::BUFFER_WRITE, {buffer, index, value});
// Atomic (use AtomicRefNode)
auto ref = luisa::compute::detail::AtomicRefNode::create(buffer)
->access(index);
auto old = ref->operate(CallOp::ATOMIC_EXCHANGE, {new_value});
// Custom callable
cur.call(Function(callable.get()), {arg1, arg2});
cur.cast(Type::of<float>(), CastOp::STATIC, int_value); // type cast
cur.cast(Type::of<float>(), CastOp::BITWISE, int_value); // bitwise reinterpretation
cur.access(Type::of<float>(), buffer_expr, index_expr); // array/buffer access
cur.member(Type::of<float>(), struct_expr, member_index); // struct member
cur.make_vector(Type::of<float4>(), luisa::vector{x, y, z, w}); // vector construction
cur.string_id("my_string"); // string ID -> uint64
cur.type_id(Type::of<float3>()); // type ID -> uint64
cur.assign(lhs_expr, rhs_expr);
// Control flow
cur.break_();
cur.continue_();
cur.return_(value_expr); // with value
cur.return_(); // void
// Use cur.with(scope, body) to populate nested scopes
auto if_stmt = cur.if_(cond);
cur.with(if_stmt->true_branch(), [&] { /* then */ });
cur.with(if_stmt->false_branch(), [&] { /* else */ });
auto loop_stmt = cur.loop_();
cur.with(loop_stmt->body(), [&] { /* loop body */ });
auto for_stmt = cur.for_(var, cond, step);
cur.with(for_stmt->body(), [&] { /* for body */ });
auto switch_stmt = cur.switch_(expr);
cur.with(switch_stmt->body(), [&] {
auto case0 = cur.case_(cur.literal(Type::of<int>(), 0));
cur.with(case0->body(), [&] { ...; cur.break_(); });
auto case1 = cur.case_(cur.literal(Type::of<int>(), 1));
cur.with(case1->body(), [&] { ...; cur.break_(); });
auto def = cur.default_();
cur.(def->(), [&] { ...; cur.(); });
});
ray_query_stmt = cur.(query_expr);
cur.(ray_query_stmt->(), [&] { ... });
cur.(ray_query_stmt->(), [&] { ... });
ad_stmt = cur.();
cur.(ad_stmt->(), [&] { ... });
cur.(, luisa::vector< Expression *>{value_expr});
cur.();
// Scalars
Type::of<float>(); Type::of<int>(); Type::of<uint>(); Type::of<bool>();
Type::of<half>(); Type::of<double>();
Type::of<short>(); Type::of<ushort>();
Type::of<int8_t>(); Type::of<uint8_t>();
Type::of<slong>(); Type::of<ulong>();
// Vectors
Type::of<float2>(); Type::of<float3>(); Type::of<float4>();
Type::of<int2>(); Type::of<int3>(); Type::of<int4>();
Type::of<uint2>(); Type::of<uint3>(); Type::of<uint4>();
Type::of<half2>(); Type::of<double4>(); // etc.
// Matrices
Type::of<float2x2>(); Type::of<float3x3>(); Type::of<float4x4>();
// Resources
Type::of<Buffer<float>>();
Type::of<Image<float>>(); Type::of<Image3D<float>>();
Type::of<Accel>(); Type::of<BindlessArray>();
Type::vector(Type::of<float>(), 2); // float2
Type::matrix(4); // float4x4
Type::array(Type::of<float>(), 100); // float[100]
Type::structure({Type::of<float>(), Type::of<int>()}); // struct
Type::buffer(Type::of<float>()); // buffer<float>
Type::texture(Type::of<float>(), 2); // 2D texture
Type::texture(Type::of<float>(), 3); // 3D texture
Type::custom("MyOpaqueType");
Type::from("vector<float,4>"); // from string
ADD, SUB, MUL, DIV, MOD // arithmetic
BIT_AND, BIT_OR, BIT_XOR // bitwise
SHL, SHR // shift
AND, OR // logical
LESS, GREATER, LESS_EQUAL, GREATER_EQUAL, EQUAL, NOT_EQUAL // comparison
PLUS, MINUS, NOT, BIT_NOT
The full set is defined in include/luisa/ast/op.h. Common groups:
// Vector construction
MAKE_FLOAT2/3/4, MAKE_INT2/3/4, MAKE_UINT2/3/4, MAKE_BOOL2/3/4
MAKE_SHORT2/3/4, MAKE_USHORT2/3/4, MAKE_LONG2/3/4, MAKE_ULONG2/3/4
MAKE_HALF2/3/4, MAKE_DOUBLE2/3/4, MAKE_BYTE2/3/4, MAKE_UBYTE2/3/4
MAKE_FLOAT2X2/3X3/4X4
// Buffer/Texture
BUFFER_READ, BUFFER_WRITE, BUFFER_SIZE, BUFFER_ADDRESS
BUFFER_VOLATILE_READ, BUFFER_VOLATILE_WRITE
BYTE_BUFFER_READ, BYTE_BUFFER_WRITE, BYTE_BUFFER_SIZE
TEXTURE_READ, TEXTURE_WRITE, TEXTURE_SIZE
TEXTURE2D_SAMPLE, TEXTURE2D_SAMPLE_LEVEL, TEXTURE2D_SAMPLE_GRAD, ...
// Atomic
ATOMIC_EXCHANGE, ATOMIC_COMPARE_EXCHANGE, ATOMIC_FETCH_ADD, ATOMIC_FETCH_SUB
ATOMIC_FETCH_AND, ATOMIC_FETCH_OR, ATOMIC_FETCH_XOR, ATOMIC_FETCH_MIN, ATOMIC_FETCH_MAX
// Bindless
BINDLESS_TEXTURE2D_SAMPLE, BINDLESS_TEXTURE2D_READ, BINDLESS_TEXTURE2D_SIZE
BINDLESS_BUFFER_READ, BINDLESS_BUFFER_WRITE, BINDLESS_BUFFER_SIZE, ...
UNIFORM_BINDLESS_*, TYPED_BINDLESS_*, TYPED_UNIFORM_BINDLESS_*
// Ray tracing
RAY_TRACING_TRACE_CLOSEST, RAY_TRACING_TRACE_ANY
RAY_TRACING_QUERY_ALL, RAY_TRACING_QUERY_ANY
RAY_TRACING_SET_INSTANCE_TRANSFORM, RAY_TRACING_SET_INSTANCE_VISIBILITY, ...
RAY_QUERY_WORLD_SPACE_RAY, RAY_QUERY_TRIANGLE_CANDIDATE_HIT,
RAY_QUERY_COMMIT_TRIANGLE, RAY_QUERY_TERMINATE, RAY_QUERY_PROCEED, ...
// Math
ALL, ANY, SELECT, CLAMP, SATURATE, LERP, SMOOTHSTEP, STEP
ABS, MIN, MAX, CLZ, CTZ, POPCOUNT, REVERSE
ISINF, ISNAN
SIN, COS, TAN, ASIN, ACOS, ATAN, ATAN2, SINH, COSH, TANH, ASINH, ACOSH, ATANH
EXP, EXP2, EXP10, LOG, LOG2, LOG10, POW, SQRT, RSQRT
CEIL, FLOOR, FRACT, TRUNC, ROUND, FMA, COPYSIGN
// Vector/Matrix
DOT, CROSS, LENGTH, LENGTH_SQUARED, NORMALIZE, FACEFORWARD, REFLECT, REFRACT
OUTER_PRODUCT, MATRIX_COMPONENT_WISE_MULTIPLICATION
DETERMINANT, TRANSPOSE, INVERSE
// Warp/Wave
WARP_IS_FIRST_ACTIVE_LANE, WARP_FIRST_ACTIVE_LANE, WARP_ACTIVE_ALL_EQUAL
WARP_ACTIVE_BIT_AND/OR/XOR, WARP_ACTIVE_COUNT_BITS, WARP_ACTIVE_MAX/MIN
WARP_ACTIVE_PRODUCT/SUM, WARP_ACTIVE_ALL/ANY, WARP_ACTIVE_BIT_MASK
WARP_PREFIX_SUM, WARP_PREFIX_PRODUCT, WARP_PREFIX_COUNT_BITS
WARP_READ_LANE, WARP_READ_FIRST_ACTIVE_LANE
// Sync
SYNCHRONIZE_BLOCK
// Rasterization
RASTER_DISCARD, RASTER_SET_Z_DEPTH,
RASTER_SET_Z_DEPTH_GREATER_EQUAL, RASTER_SET_Z_DEPTH_LESS_EQUAL
// Derivatives
DDX, DDY
// Indirect dispatch
INDIRECT_SET_DISPATCH_KERNEL, INDIRECT_SET_DISPATCH_COUNT
// Debugging/optimization
ASSERT, ASSUME, UNREACHABLE, FLATTEN, BRANCH, FORCE_CASE
// Clock
CLOCK
enum struct Usage : uint32_t {
NONE = 0u, READ = 0x01u, WRITE = 0x02u, READ_WRITE = READ | WRITE
};
References must be marked explicitly:
cur.mark_variable_usage(ref->variable().uid(), Usage::READ_WRITE);
mark_variable_usage ORs flags, so it is safe to call multiple times.
auto kernel = FuncBuilder::define_kernel([&]() {
auto &cur = *FuncBuilder::current();
cur.set_block_size(uint3(16, 16, 1));
auto dispatch = cur.dispatch_id();
auto img = cur.texture(Type::of<Image<float>>());
auto color = cur.argument(Type::of<float4>());
auto coord = cur.swizzle(Type::of<uint2>(), dispatch, 2, (0ull) | (1ull << 4ull));
cur.call(CallOp::TEXTURE_WRITE, {img, coord, color});
});
auto callable = FuncBuilder::define_callable([&]() {
auto &cur = *FuncBuilder::current();
auto tex = cur.texture(Type::of<Image<float>>());
auto coord_ref = cur.reference(Type::of<uint2>());
cur.mark_variable_usage(coord_ref->variable().uid(), Usage::READ_WRITE);
auto color = cur.argument(Type::of<float3>());
auto alpha = cur.literal(Type::of<float>(), 1.0f);
auto value = cur.make_vector(Type::of<float4>(),
luisa::vector<const Expression *>{color, alpha});
cur.call(CallOp::TEXTURE_WRITE, {tex, coord_ref, value});
});
auto kernel = FuncBuilder::define_kernel([&]() {
auto &cur = *FuncBuilder::current();
cur.set_block_size(uint3(16, 16, 1));
auto img = cur.texture(Type::of<Image<float>>());
auto color = cur.argument(Type::of<float3>());
auto coord_uint3 = cur.dispatch_id();
auto coord = cur.local(Type::of<uint2>());
cur.assign(coord, cur.swizzle(Type::of<uint2>(), coord_uint3, 2, (0ull) | (1ull << 4ull)));
cur.call(Function(callable.get()), {img, coord, color});
});
auto kernel = FuncBuilder::define_kernel([&]() {
auto &cur = *FuncBuilder::current();
auto input = cur.argument(Type::of<float4>());
auto output = cur.reference(Type::of<float4>());
cur.mark_variable_usage(output->variable().uid(), Usage::READ_WRITE);
uint64_t swizzle_xyz = (0ull) | (1ull << 4ull) | (2ull << 8ull);
auto xyz = cur.swizzle(Type::of<float3>(), input, 3, swizzle_xyz);
auto w = cur.swizzle(Type::of<float>(), input, 1, 3ull); // .w
cur.assign(output, cur.make_vector(Type::of<float4>(), luisa::vector{x, w}));
});
auto kernel = FuncBuilder::define_kernel([&]() {
auto &cur = *FuncBuilder::current();
cur.set_block_size(uint3(256, 1, 1));
auto input_buf = cur.buffer(Type::of<Buffer<float>>());
auto output_buf = cur.buffer(Type::of<Buffer<float>>());
auto idx = cur.swizzle(Type::of<uint>(), cur.thread_id(), 1, 0ull);
auto value = cur.call(Type::of<float>(), CallOp::BUFFER_READ, {input_buf, idx});
auto scaled = cur.binary(Type::of<float>(), BinaryOp::MUL, value, cur.literal(Type::of<float>(), 2.0f));
auto result = cur.binary(Type::of<float>(), BinaryOp::ADD, scaled, cur.literal(Type::of<float>(), 1.0f));
cur.call(CallOp::BUFFER_WRITE, {output_buf, idx, result});
});
auto kernel = FuncBuilder::define_kernel([&]() {
auto &cur = *FuncBuilder::current();
auto buf = cur.buffer(Type::of<Buffer<float>>());
auto i = cur.local(Type::of<uint>());
cur.assign(i, cur.literal(Type::of<uint>(), 0u));
auto ten = cur.literal(Type::of<uint>(), 10u);
auto cond = cur.binary(Type::of<bool>(), BinaryOp::LESS, i, ten);
auto step = cur.literal(Type::of<uint>(), 1u);
auto for_stmt = cur.for_(i, cond, step);
cur.with(for_stmt->body(), [&] {
auto idx = i;
auto v = cur.call(Type::of<float>(), CallOp::BUFFER_READ, {buf, idx});
cur.call(CallOp::BUFFER_WRITE, {buf, idx,
cur.binary(Type::of<float>(), BinaryOp::ADD, v,
cur.literal(Type::of<float>(), 1.0f))});
});
});
Type::of<T>() for explicit types.mark_variable_usage(uid, Usage::READ_WRITE).FunctionBuilder::current() within define callbacks.FunctionBuilder; do not delete them.uint3(16, 16, 1) for 2D).cur.with(scope, body) to append statements into if/loop/for/switch/ray_query/autodiff bodies.AtomicRefNode, not raw buffer variables.print_ takes a format string and a luisa::span/vector of expressions, not an initializer list.BinaryOp comparison names are EQUAL, NOT_EQUAL, LESS, GREATER, LESS_EQUAL, GREATER_EQUAL.