14

In this code i got the above error in lines i commented.

public double bigzarb(long u, long v)
{
    double n;
    long x;
    long y;
    long w;
    long z;
    string[] i = textBox7.Text.Split(',');
    long[] nums = new long[i.Length];
    for (int counter = 0; counter < i.Length; counter++)
    {
        nums[counter] = Convert.ToInt32(i[counter]);
    }

    u = nums[0];
    int firstdigits = Convert.ToInt32(Math.Floor(Math.Log10(u) + 1));
    v = nums[1];
    int seconddigits = Convert.ToInt32(Math.Floor(Math.Log10(v) + 1));
    if (firstdigits >= seconddigits)
    {
        n = firstdigits;

    }
    else
    {
        n = seconddigits;        
    }
    if (u == 0 || v == 0)
    {
        MessageBox.Show("the Multiply is 0");
    }

    int intn = Convert.ToInt32(n);
    if (intn <= 3)
    {
        long uv = u * v;
        string struv = uv.ToString();
        MessageBox.Show(struv);
        return uv;
    }
    else
    {
        int m =Convert.ToInt32(Math.Floor(n / 2));

        x = u % Math.Pow(10, m); // here
        y = u / Math.Pow(10, m); // here
        w = v % Math.Pow(10, m); // here
        z = v / Math.Pow(10, m); // here

        long result = bigzarb(x, w) * Math.Pow(10, m) + (bigzarb(x, w) + bigzarb(w, y)) * Math.Pow(10, m) + bigzarb(y, z);///here
        textBox1.Text = result.ToString();
        return result;
    }
}

Whats is the problem? Thanks!

18

The Math.Pow method returns a double, not a long so you will need to change your code to account for this:

x = (long)(u % Math.Pow(10, m));

This code will cast the double result from Math.Pow and assign that value to x. Keep in mind that you will lose all the precision providided by decimal (which is a floating-point type and can represent decimal values). Casting to long will truncate everything after the decimal point.

  • 5
    Not to forget overflow when casting, which will totally mess things up. Example: (long) double.MaxValue == -9223372036854775808 – Eugene Beresovsky Jun 16 '15 at 5:38
5

Math.Pow returns a double.

the Right Hand Side (RHS) of % can only be an integer type.

you need

x = u % (long)Math.Pow(10, m);///<----here
y = u / (long)Math.Pow(10, m);///here
w = v % (long)Math.Pow(10, m);///here
z = v / (long)Math.Pow(10, m);///here

Additionally, You have the possibility of dividing by zero and destroying the universe.

  • From your answer the Right Hand Side (RHS) of % can only be an integer type, but looking at this msdn.microsoft.com/en-us/library/0w4e0fzs.aspx I dont aggree... – Adriaan Stander Dec 20 '10 at 13:07
  • Read this sentence that the website you site says. Note the error for the types float and double. – EnabrenTane Dec 20 '10 at 13:09
  • 1
    It is referring to rounding errors, not compile/runtime errors. – Adriaan Stander Dec 20 '10 at 13:11
  • 3
    It would be better to cast the result of the modulus operation to long rather than just the result of Math.Pow. Also keep in mind that if the compiler is able to work out that either u or v is a floating point type then your code still will not compile since the result of the expression will still not be implicitly convertible to long. It's better to convert the result of the entire expression (as I have shown in my answer) to avoid all of these problems. – Andrew Hare Dec 20 '10 at 13:11
3

Change types

long x;
long y;
long w;
long z; 

to

double x;
double y;
double w;
double z; 

Or make use of

Convert.ToInt64
  • This will fix it, but this is a poor solution since he chose long for a reason and double types are the slowest type not counting Strings as a type. – EnabrenTane Dec 20 '10 at 13:03
3

Math.Pow returns a double. You could explicitly cast to long, for example

x = u % (long)Math.Pow(10, m);

although that is likely not the correct solution. Are you certain that the results that you are after can be properly expressed as a double? If not then change the variables to be declared as doubles rather than longs.

  • Though this is general something one should consider whenever using a cast from double to long, I suspect in this special case m will always be small enough. – Doc Brown Dec 20 '10 at 13:09
2

You cant' cast implicitly double to long, use (long) cast or change type of variable declaration to double.

1

Also you can use this:

Convert.ToInt64( u % Math.Pow(10, m) )

Source here

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