我正在尝试编写一个简单的函数来从字符串中的表达式中提取下一个数字,我的问题是函数退出后引用参数 ioIsValidExpression 没有被更新。看起来我实际上引用了正确的变量(而不是临时变量),因为 test3 的地址(在调用 getNextNumber(...) 之前调用它)和 ioIsValidExpression(它在函数内部的名称)是相同的。
我希望这在某处会是一个令人尴尬的错误,但我试图解决这个问题却无济于事。我在注释行中包含了我的 int main 和 int getNextNumber,我在其中从函数返回了一个值。
int getNextNumber(std::string& iExpression, int& ioLoopShift, bool& ioIsValidExpression)
{
//spaces are ignored, a minus is a unary minus (so must be seated next to a number (no spaces between '-' and number))
int length = iExpression.size(); //evaluate only once
bool unaryMinusFound = false;
bool numberFound = false;
int oSubExpression = 0;
for(int i =0; i < length; i++)
{
if((int)iExpression[i] == 32)
{
if(!numberFound)
{
if(!unaryMinusFound)
{
continue;
}
else
{
ioIsValidExpression = false;
td::cout << "address of ioIsValidExpression: " << &ioIsValidExpression << ", value: " << ioIsValidExpression << "\n";
return 0;
}
}
else
{
return unaryMinusFound? -1 * oSubExpression: oSubExpression;
}
}
if((int)iExpression[i] == 45 && !unaryMinusFound)
{
unaryMinusFound = true;
continue;
}
if((int)iExpression[i] >= 48 && (int)iExpression[i] <= 57)
{
numberFound = true;
oSubExpression = (int)(iExpression[i]-48) + 10*oSubExpression;
ioLoopShift++;
continue;
}
else
{
//garbage characters
ioIsValidExpression = false;
return 0;
}
}
return unaryMinusFound? -1 * oSubExpression: oSubExpression;
}
主要内容:
int main(int argc, char* argv[])
{
std::string test = " - 45 & ";
int test2 = 0;
bool test3 = true;
std::cout << getNextNumber(test,test2,test3) << ", address of test3: " << &test3 << ", value: " << test3 << "\n";
return 0;
}
运行程序的输出:
address of ioIsValidExpression: 0xbf86e58f, value: 0
0, address of test3: 0xbf86e58f, value: 1