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How do i convert Guid.NewGuid() to int?

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2  
There is no such thing as GUID.Next(). Also, a GUID is 128-bit, so it won't fit in a 32-bit int, neither on 64-bit one (aka long). –  R. Martinho Fernandes Dec 23 '10 at 12:21
    
@Martinho : its there see this : Guid.NewGuid(); –  Pratik Dec 23 '10 at 12:24
3  
In order to answer this question we need to know WHY you want to do this –  m.edmondson Dec 23 '10 at 12:24
3  
I suppose you're trying to store a GUID into a database field that only accepts an int type? –  Cody Gray Dec 23 '10 at 12:28
5  
@Pratik: Do you know why GUIDs are "unique"? Well, they're not. It's just that they're so big (128 bits is a mindbogglingly huge size) that the chances of duplicates are so mindbogglingly small that we call them "unique" even though they're not. An 32-bit int is very small compared to a GUID. The space of 32-bit values is not a quarter the size of the 128-bit space. It's way smaller. Actually, it's next to negligible when compared to it. –  R. Martinho Fernandes Dec 23 '10 at 12:33

9 Answers 9

up vote 14 down vote accepted

You don't. GUIDs are not integers and can't be converted to integers.

Not sure where your Next method comes from, however - it is not defined on the Guid struct. Did you mean Guid.NewGuid()?

From MSDN:

A GUID is a 128-bit integer (16 bytes) that can be used across all computers and networks wherever a unique identifier is required. Such an identifier has a very low probability of being duplicated.

An int structure, on the other hand:

Represents a 32-bit signed integer.

So, you can't convert from Guid to int without losing most of the information.


Edit (following comments on question):

So, you want a unique identifier and can't do it in the database. Again, Guid will not suit your needs, as it is not guaranteed to unique. The address space is so large that chances of a collision are very small, but not impossible.

In order to generate a unique Id, you have several approaches, depending on your needs.

If you just need Id's during runtime and they do not need to be persisted (so on per single run), you can use a static field and increment it every time you need a new id.

If you do need to persist it, you can do so in DB or an other shared resource (file on a network share, for example).

In either case, you need to think about concurrency and how to handle it if you have multiple threads/clients requiring new Ids.

The ideal scenario is to change your DB to generate these for you with an IDENTITY field.

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Are they not hexadecimal? –  m.edmondson Dec 23 '10 at 12:21
    
@m.edmondson: Yes but assuming OP meant int as in Int32, this isn't possible. –  BoltClock Dec 23 '10 at 12:22
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@m.edmonson: Well, GUIDs can in fact be turned into integers, just not 32-bit ones (the int kind you see in C#). You can do it with BigInteger. –  R. Martinho Fernandes Dec 23 '10 at 12:22
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@Martinho Fernandes - C# int is an int32. –  Oded Dec 23 '10 at 12:25
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@Pratik - What are you trying to do? Why do you need to stuff a 128bit integer into a 32bit integer? I have an Elephant that I want to turn into a Dog. Can you give me an idea? –  Oded Dec 23 '10 at 12:34

What about this? No ints, not CLS compliant, but still...

    public static Tuple<ulong, ulong> ToUInt64Pair(this Guid uuid) {
        byte[] bytes = uuid.ToByteArray();

        ulong lo = BitConverter.ToUInt64(bytes, 0);
        ulong hi = BitConverter.ToUInt64(bytes, 8);

        return Tuple.Create<ulong, ulong>(lo, hi);
    }

    public static Guid ToGuid(this Tuple<ulong, ulong> pair) {
        if (pair == null) {
            return Guid.Empty;
        }

        byte[] lo = BitConverter.GetBytes(pair.Item1);
        byte[] hi = BitConverter.GetBytes(pair.Item2);

        byte[] bytes = new byte[16];

        Array.Copy(lo, bytes, 8);
        Array.Copy(hi, 0, bytes, 8, 8);

        return new Guid(bytes);
    }
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If you want to crush the information in a GUID (128 bits) down into an int (32 bits) so you can, lets say, use it as the seed for the random number generator:

byte[] seed = Guid.NewGuid().ToByteArray();
for (int i = 0; i < 3; i++)
{
seed[i] ^= seed[i + 4];
seed[i] ^= seed[i + 8];
seed[i] ^= seed[i + 12];
}

int seedInt = BitConverter.ToInt32(seed, 0);

That is destructive in that the original 128 bit number is gone but it preserves the total entropy in those bits. Or to put it another way this maps the total GUID space to the total int space. Many GUIDs will produce the same int but maybe thats fine for your application.

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2  
If you want a seed generator... better to use ** var seed = new byte[4]; new RNGCryptoServiceProvider().GetBytes(seed); int seedInt = BitConverter.ToInt32(seed, 0); –  Tracker1 Mar 30 '12 at 21:59

You can't. a GUID is a 128 bit-value. An int is 32 Bit. So if you would convert it anyhow, you would loose a big part of the GUID's value.

you could copy them into an array of 4 ints like this:

    Guid g = Guid.NewGuid();
    int[] ints = new int[4];
    byte[] b = g.ToByteArray();
    for (int i = 0, j = 0; i < b.Length; i += 4, j++) {
        int x = unchecked(b[i] + (b[i+1] << 8) + (b[i+2] << 16) + (b[i+3] << 24));
        ints[j] = x;
    }

or, easier:

Guid g = Guid.NewGuid();
int[] ints = new int[4];
Buffer.BlockCopy(g.ToByteArray(), 0, ints, 0, 16);
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fine not a problem. just tell me how ?? –  Pratik Dec 23 '10 at 12:23
    
updated the post to show how you could copy the Guid into 4 ints. but only all 4 ints together in the same order are unique. –  Botz3000 Dec 23 '10 at 12:32

EDIT: My previous answer would not work, as pointed out by @Hans_Passant.

However, if you are using .NET 4.0, you can utilize the BigInteger class:

public static BigInteger GetNumericGuid()
{
    return new BigInteger(Guid.NewGuid().ToByteArray());
}

See http://msdn.microsoft.com/en-us/library/dd268207.aspx.

As others have mentioned, you can't convert a GUID to an int -- not because GUID is not a number (it's just bytes, so it can be interpreted as a number) -- but because an int (System.Int32) is only 32 bits, while a GUID is 128 bits. Alternatively, you could represent a GUID as four Int32 values.

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"BinaryReader.ReadDecimal reads 16 bytes from a stream and deserializes it as a decimal." Will this always work? Are all 128-bit permutations valid decimal values? –  R. Martinho Fernandes Dec 23 '10 at 12:43
1  
This cannot work, not all bits in a decimal are used. Check the docs for Decimal.GetBits() –  Hans Passant Dec 23 '10 at 13:43
    
@Hans: Good point! I did not know that. –  Matthew Rodatus Dec 23 '10 at 15:57

A guid has a lot more information than a single int can hold. Therefore, this is not possible. Do you mean to convert a guid to multiple ints?

Update

Based on your comments, I think the guid is not the central point of your problem. Here two ideas that may help:

  • If you only need a unique id during runtime, declare a static int-variable, make a static get method and everytime you call the method, add +1 to the static int and return it. This id will be unique during runtime for 2^32 times. This will be probably enough. If you need more, declare an Int64.

  • If you need your unique int to store data in the database, make a table
    that serves as an id-provider.

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fine that will also do .. but they would be unique right ? –  Pratik Dec 23 '10 at 12:22
    
@Pratik: what do you want to do exactly? Maybe converting a GUID to int is not the right thing for your needs. A GUID is an identifier, it is used to identify. An int is a number, it is used for numeric calculations. Do you want to perform additions on GUIDs? I bet not. –  R. Martinho Fernandes Dec 23 '10 at 12:25
    
@Pratik: They "set of integers" would be unique as a GUID, but no int by itself would be unique. If what you are after is a random int, then use the System.Random class. That will generate unique-as-possible (but not guaranteed) integers. That's one of the reasons why a GUID is 128-bits. –  vcsjones Dec 23 '10 at 12:27
2  
@vcsjones: System.Random generates (pseudo-)random numbers. Why would they be unique? Here, have a random sequence of ints: 1,1,1,1,1,1,1,1,1,1,1,1,1,1,1. If you add any uniqueness (like "unique-as-possible") guaranties to it, it stops being random. –  R. Martinho Fernandes Dec 23 '10 at 12:40

You cant, if you shorten the GUID there is a much higher likelihood of it not being unique (as oppose of using something like SHA1). There's information like time, machine address and some random values unlike SHA which is just a very random number based on the input.

If you want the 16bytes for the GUID you can use ToByteArray and store it as a BLOB or array in a file. Or you can dump the GUID string by using .ToString() which is nicely formatted.

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This question is a bit dated... Assuming you want a somewhat random int, perhaps has a seed for new Random(seedInt) ... Here's an example from a project I am working on...

public static string GenerateRandomPassword() {
  string validCharacters = "2346789abcdefghjkmnpqrtwxyz";
  var ret = "";

  byte[] seed = new byte[4];
  new RNGCryptoServiceProvider().GetBytes(seed);
  int seedInt = BitConverter.ToInt32(seed, 0);

  var rnd = new Random(seedInt);
  while (ret.Length < 10)
  { 
    ret += validCharacters[rnd.Next(validCharacters.Length-1)].ToString();
  }
  return ret;
}
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Depending on the amount of "unique" identifiers you need, a random int might be enough, for instance, it is very likely that geeting a random int twice or tree times will wield diferent numbers, however if you need a billion of those identifiers an int will not give you enough probability of "uniquiness" in this case you can get a arbitrarely big random number with:

var rng = new RNGCryptoServiceProvider();
byte[] bytes = new byte[n / 8];
rng.GetBytes(bytes);

BigInteger p = new BigInteger(bytes);

where n is the amount of bits you need

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Well, I bet that if the OP wanted random numbers with more bits than a GUID, he wouldn't be trying to push one into an smaller size. The OP wants unique 32-bit int identifiers. –  R. Martinho Fernandes Dec 23 '10 at 12:50

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