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I am relatively new to programming and have always been terrible with math. I have a program that takes a 16 bit signed INT -32,768 +32,768 I would like to represent these values as 1-100 on the positive side and -1 - -100 on the negative side so that they are easier to work with. So basically 100 would be equal to 32,768; 50 would be equal to 16,384; etc. How can I accomplish this easily? I am programming in C although I think this is more of a math question than anything.

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You know that some information will be lost, right? –  nhahtdh Apr 15 '13 at 2:46
    
it does not have to be perfect –  Yamaha32088 Apr 15 '13 at 2:47
    
It really depends on what exactly you are trying to achieve with your mapping since there is no injective mapping from Z_p -> Z_q where q > p. –  RageD Apr 15 '13 at 2:49
    
what are you trying to achive? you can simply scale things by 327, but seems a bit odd –  Keith Nicholas Apr 15 '13 at 2:51
    
I am only trying to achieve a speed so if the joystick is position all the way to the right it will read 32,768 so 100% speed of the servo. –  Yamaha32088 Apr 15 '13 at 2:54

4 Answers 4

up vote 2 down vote accepted

Your requirements seem strange, because if you're trying to make integers than you can just use the range [-100, 100] in the 16-bit integer value (usually a short) and... well, leave it that way.

If you're also looking for it to contain decimal values, then you need to consider that it will not be able to represent the range from [-100, 100] in a very nice manner... If you're asking to store a 16-bit integer value from another 16-bit integer value, you can do that It'll just be extremely messy:

int16_t normalized = ( rawvalue / 327 ); // <--- scaled, rawvalue is int16_t

You're losing precision and there's aliasing on certain ranges of values, though, so this doesn't seem... great. If you can store a float or a double, either or can hold the values [-100, 100] a little bit more nicely:

double normalized = ( rawvalue * ( 32768.0 / 100.0 ) );
// float normalized = /*... */ Append "f" for "float" math instead on those constants

Your requirements seem... weird, but that's how you would do it. Good luck!

EDIT:

As a final recommendation, I would say that unless another piece of your program DEMANDS 100 -> -100, if you're using float or double using the range [-1.0, 1.0] is infinitely nicer to work with and can be a lot more powerful when doing things like scaling numbers and such that go into other inputs and outputs, including raw integer values that will go into a server. (INT16)(0.75 * MAX_MOTOR_VALUE) is way better than finagling with 100 to -100.

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In modern C, the integer division maps [-326, 326] all to 0. This is twice as many numbers than map to -1 or 1. –  Paul Hankin Apr 15 '13 at 5:44
    
Yep, which is why it's not a good idea to do the vision as an int16 and better to do it with floating-point numbers or to use a special round function (which might employ floating point numbers anyways). –  user1357649 Apr 15 '13 at 5:46
    
That's.. ... exactly what I did above. You're just added an extra condition check for no reason. What...? –  user1357649 Apr 15 '13 at 6:12
    
@Anonymous Seriously, that doesn't change anything: coliru.stacked-crooked.com/… –  user1357649 Apr 15 '13 at 6:19
    
You're right, I got the code wrong. You need to add (using int to avoid overflow) sgn(x) * 327/2 to x before doing the division. –  Paul Hankin Apr 15 '13 at 6:39

16-bit integers can have only 216=65536 distinct values at most, from -32767 to +32767 (in non-2's-complement representation) or from from -32768 to +32767 (in 2's-complement representation). So, really you want 32767 to be equal to 100 and -32767 equal to -100.

Here's what you could do:

int int2fixed(int x)
{
  return x * 32767LL / 100;
}

int fixed2int(int x)
{
  return x * 100LL / 32767;
}
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In modern C, this maps twice as many values to 0 than to 1 or -1. –  Paul Hankin Apr 15 '13 at 5:42
    
@Anonymous Elaborate please? –  Alexey Frunze Apr 15 '13 at 5:47
    
Wrong! -32768 to +32767 –  Gangnus Apr 15 '13 at 9:50
    
@Gangnus You didn't read either my answer or the C standard. Please read either. –  Alexey Frunze Apr 15 '13 at 9:51
    
look at your first line : -32767 to +32767 is there. Sorry, I am just keeping to Ansi C. –  Gangnus Apr 15 '13 at 9:54

Divide it by the maximum value, multiply by 100, and truncate to an integer. For example (combining the maximum value division and multiplication by 100 into 1 step):

int normalize(int a)
{
    assert(a >= -32768 && a <= 32767)
    return (int)ceil(a / 327.68);
}
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If ints are 16 bits then 32768 will overflow. –  Jim Balter Apr 15 '13 at 4:17

All answers her are forgetting, that we need to MOSTLY EVENLY spread the results among 1..100. And these answers never reach the 100.

int normalize(int a)
{

    return (int)(a*101L/ 32769);
}
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