snapshot before regression test

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2026-07-18 19:25:40 +08:00
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from stdint import *
import w32.win32console
import t, c
from t import CInt, CPtr, CChar, CInt32T, CUInt64T, CFloat64T, CExport, State
import viperlib
import stdlib
import definetest
import enumtest
import mpooltest
import vectortest
import fileiotest
import testcheck
# === 函数泛型 ===
def add[T](a: T, b: T) -> T:
return a + b
def add_u64[T](a: T, b: T, c: CUInt64T) -> T:
return a + b + T(c)
def fxi[T1, T2](a: T1, b: T2) -> T1:
return a + fxi2(a, b, CUInt64T(178900))
def fxi2[T1, T2, T3](a: T1, b: T2, c: T3) -> T1:
return a + T1(b) + T1(c)
def wrap_add[T](a: T, b: T) -> T:
return add(a, b)
def double_add[T](a: T, b: T) -> T:
return add(a, b) + add(a, b)
# === 结构体泛型 ===
class A[T]():
def __init__(self, a: T):
self.a = T(a)
def get_a(self) -> T:
return self.a
class Pair[T1, T2]():
def __init__(self, first: T1, second: T2):
self.first = T1(first)
self.second = T2(second)
def get_first(self) -> T1:
return self.first
def get_second(self) -> T2:
return self.second
class Calculator[T]():
def __init__(self, init_val: T):
self.val = T(init_val)
def compute(self, other: T) -> T:
return add(self.val, other)
def double_compute(self, other: T) -> T:
return double_add(self.val, other)
class Container[T]():
def __init__(self, v: T):
self.value = T(v)
self.flag = CInt32T(1)
def get_value(self) -> T:
return self.value
def get_flag(self) -> CInt32T:
return self.flag
# === OOP 继承 + 虚方法Gargantua 风格) ===
@t.CVTable
class Shape:
def __init__(self, x: CFloat64T, y: CFloat64T):
self.x = x
self.y = y
def area(self) -> CFloat64T:
return 0.0
def perimeter(self) -> CFloat64T:
return 0.0
def describe(self) -> CFloat64T:
return self.area() + self.perimeter()
@t.CVTable
class Circle(Shape):
def __init__(self, x: CFloat64T, y: CFloat64T, r: CFloat64T):
self.x = x
self.y = y
self.r = r
def area(self) -> CFloat64T:
return 3.14159265 * self.r * self.r
def perimeter(self) -> CFloat64T:
return 2.0 * 3.14159265 * self.r
def scale(self, factor: CFloat64T) -> 'Circle' | CPtr:
self.r = self.r * factor
return t.CVoid(c.Addr(self), CPtr)
def move(self, dx: CFloat64T, dy: CFloat64T) -> 'Circle' | CPtr:
self.x = self.x + dx
self.y = self.y + dy
return t.CVoid(c.Addr(self), CPtr)
@t.CVTable
class Rect(Shape):
def __init__(self, x: CFloat64T, y: CFloat64T, w: CFloat64T, h: CFloat64T):
self.x = x
self.y = y
self.w = w
self.h = h
def area(self) -> CFloat64T:
return self.w * self.h
def perimeter(self) -> CFloat64T:
return 2.0 * (self.w + self.h)
def scale(self, factor: CFloat64T) -> 'Rect' | CPtr:
self.w = self.w * factor
self.h = self.h * factor
return t.CVoid(c.Addr(self), CPtr)
# === 运算符重载 + 链式调用Gargantua V3 风格,堆分配) ===
class Vec2:
x: CFloat64T
y: CFloat64T
def __new__() -> 'Vec2' | CPtr:
return t.CVoid(t.CUInt64T(stdlib.malloc(16)), CPtr)
def __init__(self, x: CFloat64T, y: CFloat64T):
self.x = x
self.y = y
def __add__(self, b: 'Vec2' | CPtr) -> 'Vec2' | CPtr:
return Vec2(self.x + b.x, self.y + b.y)
def __sub__(self, b: 'Vec2' | CPtr) -> 'Vec2' | CPtr:
return Vec2(self.x - b.x, self.y - b.y)
def __mul__(self, s: CFloat64T) -> 'Vec2' | CPtr:
return Vec2(self.x * s, self.y * s)
def __neg__(self) -> 'Vec2' | CPtr:
return Vec2(-self.x, -self.y)
def dot(self, b: 'Vec2' | CPtr) -> CFloat64T:
return self.x * b.x + self.y * b.y
def len_sq(self) -> CFloat64T:
return self.x * self.x + self.y * self.y
class Vec3:
x: CFloat64T
y: CFloat64T
z: CFloat64T
def __new__() -> 'Vec3' | CPtr:
return t.CVoid(t.CUInt64T(stdlib.malloc(24)), CPtr)
def __init__(self, x: CFloat64T, y: CFloat64T, z: CFloat64T):
self.x = x
self.y = y
self.z = z
def __add__(self, b: 'Vec3' | CPtr) -> 'Vec3' | CPtr:
return Vec3(self.x + b.x, self.y + b.y, self.z + b.z)
def __sub__(self, b: 'Vec3' | CPtr) -> 'Vec3' | CPtr:
return Vec3(self.x - b.x, self.y - b.y, self.z - b.z)
def __mul__(self, s: CFloat64T) -> 'Vec3' | CPtr:
return Vec3(self.x * s, self.y * s, self.z * s)
def __neg__(self) -> 'Vec3' | CPtr:
return Vec3(-self.x, -self.y, -self.z)
def dot(self, b: 'Vec3' | CPtr) -> CFloat64T:
return self.x * b.x + self.y * b.y + self.z * b.z
def cross(self, b: 'Vec3' | CPtr) -> 'Vec3' | CPtr:
return Vec3(self.y * b.z - self.z * b.y,
self.z * b.x - self.x * b.z,
self.x * b.y - self.y * b.x)
def len_sq(self) -> CFloat64T:
return self.dot(self)
# === 独立类(非继承,避免链接问题) ===
@t.CVTable
class Dog:
def __init__(self, name_val: CInt, bark_power: CInt32T):
self.name_val = name_val
self.health = CInt32T(100)
self.bark_power = bark_power
def speak(self) -> CInt:
return 1
def bite(self) -> CInt32T:
return self.bark_power
def take_damage(self, dmg: CInt32T) -> 'Dog' | CPtr:
self.health = self.health - dmg
return t.CVoid(c.Addr(self), CPtr)
def is_alive(self) -> CInt:
if self.health > 0:
return 1
return 0
@t.CVTable
class Cat:
def __init__(self, name_val: CInt, lives: CInt32T):
self.name_val = name_val
self.health = CInt32T(80)
self.lives = lives
def speak(self) -> CInt:
return 2
def scratch(self) -> CInt32T:
return CInt32T(15)
def take_damage(self, dmg: CInt32T) -> 'Cat' | CPtr:
self.health = self.health - dmg
return t.CVoid(c.Addr(self), CPtr)
def is_alive(self) -> CInt:
if self.health > 0:
return 1
return 0
# === 嵌套对象组合(堆分配) ===
class Transform:
px: CFloat64T
py: CFloat64T
pz: CFloat64T
scale_x: CFloat64T
scale_y: CFloat64T
scale_z: CFloat64T
def __new__() -> 'Transform' | CPtr:
return t.CVoid(t.CUInt64T(stdlib.malloc(48)), CPtr)
def __init__(self, px: CFloat64T, py: CFloat64T, pz: CFloat64T):
self.px = px
self.py = py
self.pz = pz
self.scale_x = 1.0
self.scale_y = 1.0
self.scale_z = 1.0
def apply_scale(self, sx: CFloat64T, sy: CFloat64T, sz: CFloat64T) -> 'Transform' | CPtr:
self.scale_x = self.scale_x * sx
self.scale_y = self.scale_y * sy
self.scale_z = self.scale_z * sz
return t.CVoid(c.Addr(self), CPtr)
def world_position(self) -> 'Vec3' | CPtr:
return Vec3(self.px * self.scale_x, self.py * self.scale_y, self.pz * self.scale_z)
# === 多层继承(子类只重写需要的方法) ===
@t.CVTable
class Vehicle:
def __init__(self, speed: CInt32T):
self.speed = speed
self.fuel = CInt32T(100)
def move(self) -> CInt:
self.fuel = self.fuel - CInt32T(10)
return self.speed
def is_running(self) -> CInt:
if self.fuel > 0:
return 1
return 0
@t.CVTable
class Car(Vehicle):
def __init__(self, speed: CInt32T, doors: CInt32T):
self.speed = speed
self.fuel = CInt32T(100)
self.doors = doors
def honk(self) -> CInt:
return 1
@t.CVTable
class ElectricCar(Car):
def __init__(self, speed: CInt32T, doors: CInt32T, battery: CInt32T):
self.speed = speed
self.fuel = CInt32T(100)
self.doors = doors
self.battery = battery
def charge(self):
self.battery = self.battery + CInt32T(20)
def move(self) -> CInt:
self.battery = self.battery - CInt32T(5)
return self.speed
def main() -> CInt | CExport:
w32.win32console.SetConsoleCP(65001)
w32.win32console.SetConsoleOutputCP(65001)
testcheck.begin("TestProject3: 泛型与OOP综合测试")
buf: CChar | CPtr = CPtr(stdlib.malloc(256))
# === 基础函数泛型 ===
testcheck.section("基础函数泛型")
print(add(3, 5))
print(add(1.5, 2.5))
print(add_u64(1, 2, CUInt64T(3000000000000000)))
print(fxi(0.2, 6))
print(wrap_add(10, 20))
print(double_add(5, 7))
testcheck.ok("基础函数泛型测试完成")
# === 基础结构体泛型 ===
testcheck.section("基础结构体泛型")
a = A(100)
print(a.get_a())
p1 = Pair(10, 20)
print(p1.get_first())
print(p1.get_second())
testcheck.ok("基础结构体泛型测试完成")
# === OOP 继承测试 ===
testcheck.section("OOP 继承测试")
c1 = Circle(0.0, 0.0, 5.0)
viperlib.snprintf(buf, 256, "Circle area=%.2f perim=%.2f", c1.area(), c1.perimeter())
print(buf)
r1 = Rect(0.0, 0.0, 4.0, 3.0)
viperlib.snprintf(buf, 256, "Rect area=%.2f perim=%.2f", r1.area(), r1.perimeter())
print(buf)
# 链式调用: scale -> move
c2 = Circle(1.0, 2.0, 3.0)
c2.scale(2.0).move(10.0, 20.0)
viperlib.snprintf(buf, 256, "Circle after scale+move: x=%.1f y=%.1f r=%.1f area=%.2f",
c2.x, c2.y, c2.r, c2.area())
print(buf)
r2 = Rect(0.0, 0.0, 10.0, 5.0)
r2.scale(2.0).scale(0.5)
viperlib.snprintf(buf, 256, "Rect after double scale: w=%.1f h=%.1f area=%.2f",
r2.w, r2.h, r2.area())
print(buf)
testcheck.ok("OOP 继承测试完成")
# === Vec2 运算符重载 + 链式调用(堆分配) ===
testcheck.section("Vec2 运算符重载 + 链式调用")
v1 = Vec2(3.0, 4.0)
v2 = Vec2(1.0, 2.0)
v3 = v1 + v2
viperlib.snprintf(buf, 256, "Vec2 add: (%.1f, %.1f)", v3.x, v3.y)
print(buf)
v4 = v1 - v2
viperlib.snprintf(buf, 256, "Vec2 sub: (%.1f, %.1f)", v4.x, v4.y)
print(buf)
v5 = v1 * 2.0
viperlib.snprintf(buf, 256, "Vec2 mul: (%.1f, %.1f)", v5.x, v5.y)
print(buf)
v6 = -v1
viperlib.snprintf(buf, 256, "Vec2 neg: (%.1f, %.1f)", v6.x, v6.y)
print(buf)
d = v1.dot(v2)
viperlib.snprintf(buf, 256, "Vec2 dot: %.1f", d)
print(buf)
# 链式运算: (v1 + v2) * 3.0
v_chain = (v1 + v2) * 3.0
viperlib.snprintf(buf, 256, "Vec2 chain (v1+v2)*3: (%.1f, %.1f)", v_chain.x, v_chain.y)
print(buf)
testcheck.ok("Vec2 运算符重载测试完成")
# === Vec3 运算符重载 + 链式调用(堆分配) ===
testcheck.section("Vec3 运算符重载 + 链式调用")
a1 = Vec3(1.0, 0.0, 0.0)
a2 = Vec3(0.0, 1.0, 0.0)
cross_v = a1.cross(a2)
viperlib.snprintf(buf, 256, "Vec3 cross: (%.1f, %.1f, %.1f)", cross_v.x, cross_v.y, cross_v.z)
print(buf)
dot_v = a1.dot(a2)
viperlib.snprintf(buf, 256, "Vec3 dot: %.1f", dot_v)
print(buf)
# 链式: (a + b).dot(c)
a3 = Vec3(1.0, 2.0, 3.0)
a4 = Vec3(4.0, 5.0, 6.0)
a5 = Vec3(7.0, 8.0, 9.0)
chain_dot = (a3 + a4).dot(a5)
viperlib.snprintf(buf, 256, "Vec3 chain dot: %.1f", chain_dot)
print(buf)
# 链式: (a * 2.0 - b).cross(c)
chain_cross = (a3 * 2.0 - a4).cross(a5)
viperlib.snprintf(buf, 256, "Vec3 chain cross: (%.1f, %.1f, %.1f)", chain_cross.x, chain_cross.y, chain_cross.z)
print(buf)
# len_sq 链式
lsq = a3.len_sq()
viperlib.snprintf(buf, 256, "Vec3 len_sq: %.1f", lsq)
print(buf)
testcheck.ok("Vec3 运算符重载测试完成")
# === Dog/Cat 虚方法 ===
testcheck.section("Dog/Cat 虚方法")
dog = Dog(1, CInt32T(30))
cat = Cat(2, CInt32T(9))
viperlib.snprintf(buf, 256, "Dog speak=%d bite=%d alive=%d", dog.speak(), dog.bite(), dog.is_alive())
print(buf)
viperlib.snprintf(buf, 256, "Cat speak=%d scratch=%d alive=%d", cat.speak(), cat.scratch(), cat.is_alive())
print(buf)
dog.take_damage(CInt32T(40)).take_damage(CInt32T(30))
viperlib.snprintf(buf, 256, "Dog after 70dmg: health=%d alive=%d", dog.health, dog.is_alive())
print(buf)
cat.take_damage(CInt32T(50))
viperlib.snprintf(buf, 256, "Cat after 50dmg: health=%d alive=%d", cat.health, cat.is_alive())
print(buf)
testcheck.ok("Dog/Cat 虚方法测试完成")
# === Transform 嵌套组合(堆分配,链式调用) ===
testcheck.section("Transform 嵌套组合")
tr = Transform(10.0, 20.0, 30.0)
tr.apply_scale(2.0, 3.0, 4.0)
pos = tr.world_position()
viperlib.snprintf(buf, 256, "Transform pos: (%.1f, %.1f, %.1f)", pos.x, pos.y, pos.z)
print(buf)
tr2 = Transform(5.0, 10.0, 15.0)
tr2.apply_scale(2.0, 2.0, 2.0)
pos2 = tr2.world_position()
viperlib.snprintf(buf, 256, "Transform2 pos: (%.1f, %.1f, %.1f)", pos2.x, pos2.y, pos2.z)
print(buf)
testcheck.ok("Transform 嵌套组合测试完成")
# === 多层继承 ===
testcheck.section("多层继承")
ec = ElectricCar(CInt32T(120), CInt32T(4), CInt32T(80))
viperlib.snprintf(buf, 256, "ECar speed=%d doors=%d battery=%d", ec.speed, ec.doors, ec.battery)
print(buf)
ec.charge()
viperlib.snprintf(buf, 256, "ECar after charge: battery=%d", ec.battery)
print(buf)
spd = ec.move()
viperlib.snprintf(buf, 256, "ECar move: speed=%d battery=%d", spd, ec.battery)
print(buf)
viperlib.snprintf(buf, 256, "ECar honk=%d running=%d", ec.honk(), ec.is_running())
print(buf)
testcheck.ok("多层继承测试完成")
# === 泛型 + OOP 组合 ===
testcheck.section("泛型 + OOP 组合")
calc1 = Calculator(10)
print(calc1.compute(5))
calc2 = Calculator(1.5)
print(calc2.compute(2.5))
c1_gen = Container(42)
print(c1_gen.get_value())
print(c1_gen.get_flag())
testcheck.ok("泛型 + OOP 组合测试完成")
# === snprintf 格式化 ===
testcheck.section("snprintf 格式化")
viperlib.snprintf(buf, 256, "int=%d, float=%.2f", 42, 3.14)
print(buf)
viperlib.snprintf(buf, 256, "result=%d", add(100, 200))
print(buf)
testcheck.ok("snprintf 格式化测试完成")
# === 新语法类型强转 (t1|t2)(x) ===
testcheck.section("新语法类型强转 (t1|t2)(x)")
val_i64: CUInt64T = CUInt64T(42)
val_i32 = (t.CInt)(val_i64)
print(val_i32)
ptr_raw = stdlib.malloc(8)
ptr_typed = (t.CInt | t.CPtr)(ptr_raw)
viperlib.snprintf(buf, 256, "cast ptr=%p", ptr_typed)
print(buf)
val_f = (t.CDouble)(42)
viperlib.snprintf(buf, 256, "cast float=%.1f", val_f)
print(buf)
testcheck.ok("新语法类型强转测试完成")
# === CDefine 宏测试 ===
testcheck.section("CDefine 宏测试")
definetest.define_main()
testcheck.ok("CDefine 宏测试完成")
# === Enum 测试 ===
testcheck.section("Enum 测试")
enumtest.enum_main()
testcheck.ok("Enum 测试完成")
# === MPool OOP 测试 ===
testcheck.section("MPool OOP 测试")
mpooltest.mpool_main()
testcheck.ok("MPool OOP 测试完成")
# === Vector 泛型测试 ===
testcheck.section("Vector 泛型测试")
vectortest.vector_main()
testcheck.ok("Vector 泛型测试完成")
# === Win32 FileIO 测试 ===
testcheck.section("Win32 FileIO 测试")
fileiotest.fileio_main()
testcheck.ok("Win32 FileIO 测试完成")
return testcheck.end()