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How do I raise a number to a power?

2^1

2^2

2^3

etc...

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The title was misleading. This is about powers in general, not just squaring. I edited it and fixed it. – Zifre May 10 '09 at 19:24
13  
If it's about powers of 2 in general, use <<. – Thomas L Holaday May 10 '09 at 19:26
1  
Yes, that will work for integers . . . – imallett Sep 16 '12 at 21:49
    
Specifically, integers of a limited domain. Even just 2^70 will overflow an integer (but a float can represent it precisely) – Wallacoloo Apr 17 '14 at 6:15
    
Did you really voted up this? – plasmacel Oct 1 '15 at 10:36

11 Answers 11

up vote 41 down vote accepted

pow() in the cmath library. More info here.

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hell, yes.. it's really that simple.. – Nils Pipenbrinck May 10 '09 at 20:24
6  
Easy reputation. – Joey Robert May 21 '09 at 21:09

Use the pow(x,y) function: See Here

Just include math.h and you're all set.

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It's pow or powf in <math.h>

There is no special infix operator like in Visual Basic or Python

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1  
powf() is a C99 function that is not in C++. – newacct May 10 '09 at 19:55
pow(2.0,1.0)
pow(2.0,2.0)
pow(2.0,3.0)

Your original question title is misleading. To just square, use 2*2.

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You should be able to use normal C methods in math.

#include <cmath>

pow(2,3)

if you're on a unix-like system, man cmath

Is that what you're asking?

Sujal

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While pow( base, exp ) is a great suggestion, be aware that it typically works in floating-point.

This may or may not be what you want: on some systems a simple loop multiplying on an accumulator will be faster for integer types.

And for square specifically, you might as well just multiply the numbers together yourself, floating-point or integer; it's not really a decrease in readability (IMHO) and you avoid the performance overhead of a function call.

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And yeah, this may fall into the "premature optimization" category, but I always find it good to be aware of things like this -- especially if you have to program in limited-resource environments. – leander May 10 '09 at 19:27

Some lawyer crap from me again. I've often fallen in this pitfall myself, so i'm going to warn you about it. std::pow in the <cmath> header has these overloads:

pow(float, float);
pow(float, int);
pow(double, double); // taken over from C
pow(double, int);
pow(long double, long double);
pow(long double, int);

Now you can't just do

pow(2, N)

with N being an int, because it doesn't know which of float, double or long double version it should take, and you would get an ambiguity error. All three would need a conversion from int to floating point, and all three are equally costly!

Therefor, be sure to have the first argument typed so it matches one of those three perfectly. I usually use double

pow(2.0, N)
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int N; pow(2.0, N) would still be ambiguous: could be 'pow(double,int)' or 'pow(double,double)' :-/ → cast – Marvin Mar 12 '13 at 9:04
    
@marvin i recommend to read my answer before adding a comment. i explained that it does not give an ambiguity. – Johannes Schaub - litb Mar 12 '13 at 9:43
1  
I recommend to read my comment before adding a comment. ;-) I explained that it DOES give an ambiguity. (Compiler of VS2008) – Marvin May 3 '13 at 10:28
1  
@Marvin: Visual C++ 2010 Express has no problem with std::pow(2.0, 3). – Keith Thompson Aug 31 '13 at 22:46
#include <iostream>
#include <conio.h>

using namespace std;

double raiseToPow(double ,int) //raiseToPow variable of type double which takes arguments (double, int)

void main()
{
    double x; //initializing the variable x and i 
    int i;
    cout<<"please enter the number"; 
    cin>>x;
    cout<<"plese enter the integer power that you want this number raised to";
    cin>>i;
    cout<<x<<"raise to power"<<i<<"is equal to"<<raiseToPow(x,i);
}

//definition of the function raiseToPower

double raiseToPow(double x, int power)
{
    double result;
    int i;
    result =1.0;
    for (i=1, i<=power;i++)
    {
        result = result*x;
    }
    return(result);
}
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Your answer should contain an explanation of your code and a description how it solves the problem. – AbcAeffchen Dec 2 '14 at 16:15

In C++ the "^" operator is a bitwise OR. It does not work for raising to a power. The x << n is a left shift of the binary number which is the same as multiplying x by 2 n number of times and that can only be used when raising 2 to a power. The POW function is a math function that will work generically.

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Console.Write("n = ");
int n = int.Parse(Console.ReadLine());
Console.Write("m = ");
int m = int.Parse(Console.ReadLine());
decimal result = 1;
for (int i = 0; i < m; i++)
{
result *= n;
}
Console.WriteLine("n^m = " + result);
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I don't have enough reputation to comment, but if you like working with QT, they have their own version.

    #include <QtCore/qmath.h>
    qPow(x, y); // returns x raised to the y power
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