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I've been searching a while and haven't gotten anything too useful yet, I'm working on a subnet calculator, and well I have used the decimal to binary which I found here, though, I haven't found a good way to convert binary to decimal.

Note: Remember its FROM binary TO decimal, anyways, im in need of the formula or something like that (meaning calculating it, not the automated one).

What I've understood by reading some other posts that you can somehow get the result by dividing by 10, but I didn't really understand it, so if anyone could point me in the right direction, I'd be glad.

Any and all help is very much appreciated guys! :)

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1  
Since you didn't hesitate to ask for code without posting what you've tried, I thought I would mention that there's got to be a better way –  Brad Christie Mar 16 '12 at 18:44
1  
There's a good explanation of the algorithm here. It should be fairly straight forward to implement in C#. –  M.Babcock Mar 16 '12 at 18:49

6 Answers 6

up vote 10 down vote accepted

Doing it without LINQ:

var s = "101011";    // my binary "number" as a string
var dec = 0;
for( int i=0; i<s.Length; i++ ) {
  // we start with the least significant digit, and work our way to the left
  if( s[s.Length-i-1] == '0' ) continue;
  dec += (int)Math.Pow( 2, i );
}

A number in any base can be thought of as the sum of its digits multiplied by their place value. For example, the decimal number 3906 can be written as:

3*1000 + 9*100 + 0*10 + 6*1

The place values are simply powers of ten:

3*10^3 + 9*10^2 + 0*10^1 + 6*10^0

(Remember that any number taken to the power of zero is 1.)

Binary works exactly the same way, except the base is 2, not 10. For example, the binary number 101011 can be written as:

1*2^5 + 0*2^4 + 1*2^3 + 0*2^2 + 1*2^1 + 1*2^0

I hope that gives you a better understanding of binary numbers and how to convert them.

On a practical note, the best solution is Matt Grande's; it's always preferable to use a library method instead of rolling your own (unless you have a very good reason to do so).

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+1 nice explanation of how it applies to other bases. –  cadrell0 Mar 16 '12 at 19:06

You can do it like this:

string bin = "10010101010101";
long l = Convert.ToInt64(bin,2);
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Hey Matt, thanks for answer -- Im sorry if i didnt make it clear enough, i meant a way to calculate it, a formula of a kind, not a library/automated way. –  Nicholas Mar 16 '12 at 18:45
1  
@balls Is this homework? Homework questions are welcome, but please use the homework tag if that is the case. –  cadrell0 Mar 16 '12 at 18:49
    
@balls Why is the non-library approach a requirement? I think explaining that would help everyone. –  DJ Quimby Mar 16 '12 at 18:55
    
@cadrell0 This is not homework, though i can see why it may seem like it ;). Anyways i know i'm pretty new to this so my knowledge is pretty limited. Right now i'm using .Substring to isolate each value and then making an if that adds them up, what do you think? :P –  Nicholas Mar 16 '12 at 18:55
    
@balls any answer posted here will be a variation of that basic idea. –  cadrell0 Mar 16 '12 at 18:56

11010101 = 1*2^7 + 1*2^6 + 0*2^5 + 1*2^4 + 0*2^3 + 1*2^2 + 0*2^1 + 1*2^0

.................= 128 + 64 + 0 + 16 + 0 + 4 + 0 + 1

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This works fine

using System;

class BinaryToDecimal
{
    static void Main()
    {
        double sum = 0;
        int n = 1111111; // binary number
        int strn = n.ToString().Length; //how many digits has my number
        for (int i = 0; i < strn; i++)
        {
            int lastDigit = n % 10; // get the last digit
            sum = sum + lastDigit * (Math.Pow(2, i));
            n = n / 10; //remove the last digit
        }
        Console.WriteLine(sum);
    }
}
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The answer is pretty straightforward. Let's assume you have x as a binary number:

string x = "10010101010101";

Since we know that the general formula to calculate is, starting from right, 2^index_1 + 2^index_2 + 2^index_n we can use LINQ to do something like (not tested):

x.Reverse()
 .Select((element, i) => new { Index = i, Element = char.GetNumericValue(element) })
 .Where(a => a.Element != 0)
 .Aggregate(0.0, (a, b) => a + (Math.Pow(2, b.Index)));
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6  
I would argue that this is a case where Linq is not the best choice. That solution is clear as mud. –  Matt Grande Mar 16 '12 at 18:56
//a is an integer array which has binary value 
sum = 0;
Array.Reverse(a);
for (int j = 0; j < a.Length;j++)
{
   if (a[j] == 1)
sum = sum + (Math.Pow(2, j));
}
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