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I am confused. I can not use this on a float? Must it be a integer? I try to define that as a point but I guess I can not convert float to float *

//global definition
float g_posX = 0.0f;

&g_posX -= 3.03f;
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5 Answers 5

up vote 18 down vote accepted

You probably simply want to do this:

float g_posX = 0.0f;
g_posX -= 3.03f;

What your code tries to do is take the address of g_posX and subtract 3.03f from the address. That does not work, for two reasons:

  • The address is not an lvalue: it cannot be assigned to. Assigning to an address would be meaningless. What would it do, move the variable around in memory?
  • Pointer arithmetic can only be done using integers. Fractional addresses do not exist.
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It would be fun to do bit access like that: bool* ptr = &myInteger + 0.125; –  MSalters May 10 '10 at 14:35
3  
Yeah, the thought occurred to me. And of course, if the float is not a multiple of 1/8, it should interpolate between bit values and return fractional bits, or frits. –  Thomas May 10 '10 at 15:28

If you want to subtract from the float then just name the variable and don't take its address:

g_posX -= 3.03f;

Otherwise, &g_posX is an rvalue that you can't assign to it anything.

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well, &g_posX is a pointer to the float. Pointers are memory addresses and (more or less) intereger. To increase the float, simply remove the &.

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You don't need the the & before g_posX, just do the maths like

g_posX -= 3.03f;
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increment and decrement operators are only defined for integral data types, not for floating point, double, etc.

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it's not true. As mentioned in many other reponses "g_posX -= 3.03f;" works just fine –  Gianluca May 10 '10 at 13:14

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