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My doubt is to skip a "." from the input stream and read the whole number and the fractional parts in two different variables. Say I have an input like 10.26, I want store 10 in one variable a and 26 in another variable b.

In C, using scanf , I will do it like

scanf("%d.%d",&a,&b);

What is the equivalent way to do in C++ using cin? or should I include cstdio and use the scanf itself?

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scanf is perfectly possible in C++, besides using scanf_s instead – Mare Infinitus Jun 13 '12 at 17:55
    
If this is for any kind of money calculations, use decimal, not float. – Darth Continent Jun 13 '12 at 17:58
up vote 6 down vote accepted

You can read the float as normal and use C-library's modf function to split the number:

#include <cmath>

float f = 0.0;
float ipart = 0.0;
float fpart = 0.0;

if (cin >> f)
    fpart = modf(f, &ipart);
else {
    // input failed
}

Let operator>> do the error checking!

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Thanks. This worked..:-) – Srinath G S Jun 13 '12 at 18:40

You can still use scanf in C++. If you want to use cin, then you can use ignore to skip over the . in the input. Read the integers into variables as usual:

cin >> a;
cin.ignore(1, '.');
cin >> b;

Beware that whatever you use, you lose information about the fractional part. Whether the value is .1 or .001, you'll find b == 1 when you're finished. They're very different values, though.

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1  
You're not checking the return value of any of your input operations, which I'd consider a plain error. – Kerrek SB Jun 13 '12 at 17:59
    
Feel free to improve my answer if you think it's not good enough, @Kerrek. – Rob Kennedy Jun 13 '12 at 18:01

Here's one way:

int egral;
unsigned int frac;
char sep;

if (!(std::cin >> egral >> sep >> fract) || sep != '.')
{
    // error, could not parse number
}

// integral part is 'egral, fractional part in 'frac'

Note that this would (wrongly?) parse 1.5E2 as 1 + 0.5, and not as 150 + 0. You'd have to add extra logic to handle scientific notation situations. It might be simpler to read an actual float and use modf.

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