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I am trying to implement a simple decimation algorithm in c++. I have two arrays, say p & q, where the subscripts are related to each other by the following relation:

p[k] = q[0.5*k]. This means that the following sequence should hold valid:

p[0] = q[0]  
p[1] = 0  
p[2] = q[1]  
p[3] = 0  
p[4] = q[2]  

and so on...

Please note that p[k] takes on a value only and only when the result of (0.5*k) contains no decimal places (or has 0 in decimal) and does not use any rounding off etc.

My question is: Is there a way to distinguish between an integer (a number with no decimal places or only 0 in decimal, say 2.0) and a number with decimal places in C++, provided both are cast to double?

eg.) 2.0 is an integer cast to double. 2.1 is a number with decimal places.
eg. 2) * 0.9*2 should put 0 into array p while 0.9*10 should put q[9] into array p.*

If I use the statement, (int) (0.5*k), then I end up with an integer in every case, irrespective of the value of k.

Edit: The 0.5 in the above case is only illustrative. It could be any number, say 2, 2.5, 0.9, 0.95 etc.)

Any help is most welcome,
Thanks,
Sriram.

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Why not use integer division? –  Johnsyweb Mar 24 '11 at 10:32
    
Also, how do you distinguish between a whole number and an integer in mathematics? –  Johnsyweb Mar 24 '11 at 10:33
1  
@Johnsyweb, probably because 4/2 and 5/2 will both return 2, when 5/2 should instead fail in such a way that Sriram knows to stuff a 0 into p[5]. –  sarnold Mar 24 '11 at 10:34
1  
Are you arrays made of int ? Couldn't you just use a modulo (%2) and do nothing if the result is different of 0 ? –  Raveline Mar 24 '11 at 10:34
1  
What is the difference between whole number and integer????? –  Shamim Hafiz Mar 24 '11 at 10:35

6 Answers 6

up vote 2 down vote accepted

Presuming that the coef can be anything else,

p[floor(coef*k)] = (fabs(coef*k-floor(coef*k))<1E-6)?q[k]:0;
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if the expression could be changed to compare the result to 1 ( <expr> < 1.0), I think that would be the answer, right? what do you think? –  Sriram Mar 24 '11 at 11:03
    
(coefk-floor(coefk)) is the fractional part of coef*k. It would be always <1. –  Shelwien Mar 24 '11 at 11:05
    
also except with 0.5 and such, it would be never 0, because of limited precision. That's why I compare with 1E-6 ie 0.000001 - there's no sense to check whether a double equals something. –  Shelwien Mar 24 '11 at 11:20

Assuming k is of an integer type, you could use if (k % 2 == 0) ... to check if kis divisible by two:

if (k % 2 == 0)
  p[k] = q[k / 2];
else
  p[k] = 0;

This can also be expressed using the ternary operator:

p[k] = (k % 2 == 0) ? q[k / 2] : 0;
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The short syntax for what you want to do could be this:

p[k] = k % 2 ? 0 : q[k/2];

Is there a way to distinguish between a whole number and an integer in C++?

Define whole number, and define integer in this context. I'm confused!

Are you taking about the difference as explained here?

If you want to detect whether a number is integer or not, then probably this may help:

#include<cmath>

bool IsInteger(double d)
{  
    double intpart;
    return std::modf(double number, &intpart) == 0.0;
}
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thanks for your inputs. I have edited the question as above. Hope it is more clear –  Sriram Mar 24 '11 at 10:43
    
I may have messed up an earlier version of the question. Please see the edited question and let me know in case you still have questions. –  Sriram Mar 24 '11 at 10:48
    
@Sriram: I edited my answer! –  Nawaz Mar 24 '11 at 10:49
    
Your IsInteger function fails badly if d > LONG_MAX. A better solution would be to use std::modf (in <cmath>). –  James Kanze Mar 24 '11 at 11:09
    
@James: I had this in my mind, but didn't know how to fix that. Anyway, I tried it now with what you suggested. See and let me know if it's correct! –  Nawaz Mar 24 '11 at 11:13

k % 2 is in a couple of answers in this thread.

However, this is not useful in answering the OP's question. Note the edit: "Edit: The 0.5 in the above case is only illustrative. It could be any number, say 2, 2.5, 0.9, 0.95 etc.)"

k % 2 only works because the value chosen was 0.5. It won't hold true for any other values.

Therefore, unless I'm missing something entirely, the simplest approach I can think of is the following:

Subtract the floor of the number from the number itself. If the result is > 0, it is not an integer.

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Unless you have expressions that result in irrational numbers, you could use Boost.Rational to represent your indizes.

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@Aix's suggestion of k%2 looks like it'd combine nicely with the ?: operator:

p[k] = (k%2) ? 0 : q[k/2];
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ITYM p[k] = (k % 2) ? 0 : q[k / 2]; ? –  Paul R Mar 24 '11 at 10:46
    
Thanks Paul R :) –  sarnold Mar 24 '11 at 10:50

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