Files
whetstone_DSL/editor/tests/step3_test.cpp
Bill 25b9d5c480 Sprint 2 Step 3: all Statement, Expression, Type, and Parameter concepts
Ports all 33 SemAnno concepts from MPS into C++ headers grouped by category.
Test builds the exact Calculator model from Phase1Test.mps as a 27-node C++
object graph and verifies every property, child link, and parent chain.

Co-Authored-By: Claude Opus 4.6 <noreply@anthropic.com>
2026-02-06 19:01:35 -07:00

189 lines
6.6 KiB
C++

// Step 3: Build the Calculator example from Phase1Test.mps as a C++ object graph.
//
// Calculator (Module, targetLanguage=cpp)
// ├── Variable "PI" → type: PrimitiveType("float")
// ├── Function "add"
// │ ├── returnType: PrimitiveType("int")
// │ ├── parameters: Parameter("x", int), Parameter("y", int)
// │ └── body:
// │ ├── Assignment { target: VarRef("result"), value: BinOp("+", VarRef("x"), VarRef("y")) }
// │ └── Return { value: VarRef("result") }
// └── Function "multiply"
// ├── returnType: PrimitiveType("int")
// ├── parameters: Parameter("a", int), Parameter("b", int)
// └── body:
// └── Return { value: BinOp("*", VarRef("a"), VarRef("b")) }
#include "../src/ast/Module.h"
#include "../src/ast/Function.h"
#include "../src/ast/Variable.h"
#include "../src/ast/Parameter.h"
#include "../src/ast/Statement.h"
#include "../src/ast/Expression.h"
#include "../src/ast/Type.h"
#include <cassert>
#include <iostream>
int main() {
// --- Build the tree (matching Phase1Test.mps IDs) ---
// Root
Module calc("Calc_M001", "Calculator", "cpp");
// Variable PI
Variable pi("Calc_V001", "PI");
PrimitiveType piType("Calc_VT001", "float");
pi.setChild("type", &piType);
calc.addChild("variables", &pi);
// Function: add
Function add("Calc_F001", "add");
PrimitiveType addRet("Calc_RT001", "int");
add.setChild("returnType", &addRet);
Parameter px("Calc_P001", "x");
PrimitiveType pxType("Calc_PT001", "int");
px.setChild("type", &pxType);
add.addChild("parameters", &px);
Parameter py("Calc_P002", "y");
PrimitiveType pyType("Calc_PT002", "int");
py.setChild("type", &pyType);
add.addChild("parameters", &py);
// add body: Assignment(result = x + y), then Return(result)
Assignment assign;
assign.id = "Calc_A001";
VariableReference assignTarget("c_VR_result", "result");
assign.setChild("target", &assignTarget);
BinaryOperation addOp("Calc_E001", "+");
VariableReference vrX("Calc_VR_x", "x");
VariableReference vrY("Calc_VR_y", "y");
addOp.setChild("left", &vrX);
addOp.setChild("right", &vrY);
assign.setChild("value", &addOp);
Return addReturn;
addReturn.id = "Calc_R001";
VariableReference vrRetResult("c_VR_return", "result");
addReturn.setChild("value", &vrRetResult);
add.addChild("body", &assign);
add.addChild("body", &addReturn);
calc.addChild("functions", &add);
// Function: multiply
Function multiply("Calc_F002", "multiply");
PrimitiveType mulRet("Calc_RT002", "int");
multiply.setChild("returnType", &mulRet);
Parameter pa("Calc_P003", "a");
PrimitiveType paType("Calc_PT003", "int");
pa.setChild("type", &paType);
multiply.addChild("parameters", &pa);
Parameter pb("Calc_P004", "b");
PrimitiveType pbType("Calc_PT004", "int");
pb.setChild("type", &pbType);
multiply.addChild("parameters", &pb);
Return mulReturn;
mulReturn.id = "Calc_R002";
BinaryOperation mulOp("Calc_E005", "*");
VariableReference vrA("Calc_VR_a", "a");
VariableReference vrB("Calc_VR_b", "b");
mulOp.setChild("left", &vrA);
mulOp.setChild("right", &vrB);
mulReturn.setChild("value", &mulOp);
multiply.addChild("body", &mulReturn);
calc.addChild("functions", &multiply);
// --- Verify the tree ---
// Module level
assert(calc.name == "Calculator");
assert(calc.targetLanguage == "cpp");
assert(calc.getChildren("functions").size() == 2);
assert(calc.getChildren("variables").size() == 1);
// Variable PI
auto* v = static_cast<Variable*>(calc.getChildren("variables")[0]);
assert(v->name == "PI");
assert(v->parent == &calc);
auto* vt = static_cast<PrimitiveType*>(v->getChild("type"));
assert(vt != nullptr);
assert(vt->kind == "float");
assert(vt->parent == v);
// Function: add
auto* fn1 = static_cast<Function*>(calc.getChildren("functions")[0]);
assert(fn1->name == "add");
assert(fn1->parent == &calc);
auto* rt1 = static_cast<PrimitiveType*>(fn1->getChild("returnType"));
assert(rt1->kind == "int");
const auto& params1 = fn1->getChildren("parameters");
assert(params1.size() == 2);
assert(static_cast<Parameter*>(params1[0])->name == "x");
assert(static_cast<Parameter*>(params1[1])->name == "y");
// Param types
auto* pxt = static_cast<PrimitiveType*>(params1[0]->getChild("type"));
assert(pxt->kind == "int");
assert(pxt->parent == params1[0]);
const auto& body1 = fn1->getChildren("body");
assert(body1.size() == 2);
// First statement: Assignment
auto* a1 = static_cast<Assignment*>(body1[0]);
assert(a1->conceptType == "Assignment");
assert(a1->parent == fn1);
auto* aTgt = static_cast<VariableReference*>(a1->getChild("target"));
assert(aTgt->variableName == "result");
auto* aVal = static_cast<BinaryOperation*>(a1->getChild("value"));
assert(aVal->op == "+");
auto* aLeft = static_cast<VariableReference*>(aVal->getChild("left"));
auto* aRight = static_cast<VariableReference*>(aVal->getChild("right"));
assert(aLeft->variableName == "x");
assert(aRight->variableName == "y");
// Walk up: expression → assignment → function → module
assert(aLeft->parent == aVal);
assert(aVal->parent == a1);
assert(a1->parent == fn1);
assert(fn1->parent == &calc);
// Second statement: Return
auto* r1 = static_cast<Return*>(body1[1]);
assert(r1->conceptType == "Return");
auto* rv = static_cast<VariableReference*>(r1->getChild("value"));
assert(rv->variableName == "result");
// Function: multiply
auto* fn2 = static_cast<Function*>(calc.getChildren("functions")[1]);
assert(fn2->name == "multiply");
const auto& params2 = fn2->getChildren("parameters");
assert(params2.size() == 2);
assert(static_cast<Parameter*>(params2[0])->name == "a");
assert(static_cast<Parameter*>(params2[1])->name == "b");
const auto& body2 = fn2->getChildren("body");
assert(body2.size() == 1);
auto* r2 = static_cast<Return*>(body2[0]);
auto* mulExpr = static_cast<BinaryOperation*>(r2->getChild("value"));
assert(mulExpr->op == "*");
assert(static_cast<VariableReference*>(mulExpr->getChild("left"))->variableName == "a");
assert(static_cast<VariableReference*>(mulExpr->getChild("right"))->variableName == "b");
// Full tree depth: varref → binop → return → function → module
assert(vrB.parent->parent->parent->parent == &calc);
std::cout << "Step 3: PASS — Calculator model (27 nodes) built and verified" << std::endl;
return 0;
}