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It might be quite funny but I really didn't know how to search to find the answer for this one.

I always use something like this when I want to join strings "string = "something" + "somethingelse" "

but how to do it with INT? :)

Random r = new Random();
int lvfirst = r.Next(485924948);
int lvsecond = r.Next(39);
int lvdone = lvfirst + lvsecond;
Globals.GlobalInt = lvdone;

I tried doing one long int but it doesn't seem to work it says something about Long so if you can help me how to join this 2 random numbers into 1? I need 1 random number max "48592494839"

Thanks a lot!

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1  
Check this out: random-number-in-long-range –  walkhard Jul 7 '12 at 12:24
2  
So what you really meant is "I need 1 random number max 48592494839", and the rest is just to ensure that you'll get bad answers? –  harold Jul 7 '12 at 12:31

4 Answers 4

up vote 2 down vote accepted

There are two problems with this code:

  1. "Sticking together" two outputs of Next will not give you a random value in the target range. Math does not work with strings.
  2. Instead of returning a result it stores it in a global variable.

If you want a value in the range you specify, use

var result = (long) (r.NextDouble() * 48592494839);

This will still not work for any target range, but it will comfortably meet your specific requirements.

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485,924,948 is smaller than Int32.MaxValue, which is 2,147,483,647. –  MatthewRz Jul 7 '12 at 12:32
    
@MatthewRz: I would have sworn I counted one digit more :) Thanks for the heads up, edited to correct. –  Jon Jul 7 '12 at 12:33
    
I think this is perfect thank you for the code and for explaining I wasn't aware I had problem with the code =)! –  MiLady Jul 7 '12 at 12:36
    
just another quick question now I have var result = (long)(r.NextDouble() * 48592494839); Globals.GlobalLong = result; if i like to add up or subtract this value how should I do it? var addup = result + 25; will be ok? –  MiLady Jul 7 '12 at 12:47
    
1. this isn't a good way to get random numbers, what you'll get wont have any entropy. 2. concating two random numbers does produce one random number. –  AK_ Jul 7 '12 at 12:49

Do you want to add or concatenate your ints ?

If you want to concatenate, you can try:

long lvdone = long.Parse(lvfirst.toString() + lvsecond);

If you want to add them and avoid overflows:

long lvdone = ((long) lvfist) + lvsecond

If you number must be arbitrarily long, try using Decimal instead of long

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You could do something like this:

Random r = new Random();
int lvfirst = r.Next(485924948);
int lvsecond = r.Next(39);
long lvdone = Int64.Parse(lvfirst.ToString() + lvsecond.ToString());
Globals.GlobalInt = lvdone;

Basically we are converting all of the ints to a string which will append the second number to the end of the first number, then we convert it back to an int.

Hope this Helps!

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Thank you for the help, it looks just like my type of coding =) and I like it! –  MiLady Jul 7 '12 at 12:39

Ignoring the random thing... this is the way to concat to numbers...

int a = 124;
int b = 101040507;

int digits = 32;
mask = 0x80000000;
while(a & mask == 0)
{
    digits--;
    mask= mask >> 1;
}


long result = b;
result = result << digits;
result = result | b;
share|improve this answer
    
That works in base 2 not base 10 –  Julien Ch. Jul 7 '12 at 13:22
    
computers dont have base 10 numbers... not really... –  AK_ Jul 7 '12 at 15:24

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