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Like [a-zA-Z0-9] string:

na1dopW129T0anN28udaZ

or hexadecimal string:

8c6f78ac23b4a7b8c0182d

By long I mean 2K and more characters.

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!why do you want a 2Kbyte random string? For cryptographic purposes a 1024 bits (i.e. 128 bytes) should be enough. And you'll have hard time to get really random 2048 bytes. –  Basile Starynkevitch Oct 7 '12 at 19:19
    
And what is the operating system? On Linux you could read from /dev/random or /dev/urandom... kernel.org/doc/man-pages/online/pages/man4/random.4.html –  Basile Starynkevitch Oct 7 '12 at 20:10
1  
It is impossible to answer question without knowing the quality of required random numbers. So I assume it is not for the purpose of cryptography. Also I do not understand "fastest". I can imagine it could be some game but requirements for random string make look it as password. But again why performance is important. –  Max Oct 8 '12 at 10:35
    
May be our response is required for article in a blog ))) –  Max Oct 8 '12 at 10:36
    
It's not for cryptography, it's for database workload generator. –  Pavel Paulau Oct 8 '12 at 18:02

4 Answers 4

up vote 14 down vote accepted

This does about 200MBps on my box. There's obvious room for improvement.

type randomDataMaker struct {
    src rand.Source
}

func (r *randomDataMaker) Read(p []byte) (n int, err error) {
    for i := range p {
        p[i] = byte(r.src.Int63() & 0xff)
    }
    return len(p), nil
}

You'd just use io.CopyN to produce the string you want. Obviously you could adjust the character set on the way in or whatever.

The nice thing about this model is that it's just an io.Reader so you can use it making anything.

Test is below:

func BenchmarkRandomDataMaker(b *testing.B) {
    randomSrc := randomDataMaker{rand.NewSource(1028890720402726901)}
    for i := 0; i < b.N; i++ {
        b.SetBytes(int64(i))
        _, err := io.CopyN(ioutil.Discard, &randomSrc, int64(i))
        if err != nil {
            b.Fatalf("Error copying at %v: %v", i, err)
        }
    }
}

On one core of my 2.2GHz i7:

BenchmarkRandomDataMaker       50000        246512 ns/op     202.83 MB/s

EDIT

Since I wrote the benchmark, I figured I'd do the obvious improvement thing (call out to the random less frequently). With 1/8 the calls to rand, it runs about 4x faster, though it's a big uglier:

New version:

func (r *randomDataMaker) Read(p []byte) (n int, err error) {
    todo := len(p)
    offset := 0
    for {
        val := int64(r.src.Int63())
        for i := 0; i < 8; i++ {
            p[offset] = byte(val & 0xff)
            todo--
            if todo == 0 {
                return len(p), nil
            }
            offset++
            val >>= 8
        }
    }

    panic("unreachable")
}

New benchmark:

BenchmarkRandomDataMaker      200000        251148 ns/op     796.34 MB/s

EDIT 2

Took out the masking in the cast to byte since it was redundant. Got a good deal faster:

BenchmarkRandomDataMaker      200000        231843 ns/op     862.64 MB/s

(this is so much easier than real work sigh)

EDIT 3

This came up in irc today, so I released a library. Also, my actual benchmark tool, while useful for relative speed, isn't sufficiently accurate in its reporting.

I created randbo that you can reuse to produce random streams wherever you may need them.

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1  
But since it's int63 there's an always-off bit in every 8th byte, right? –  frostschutz Jan 31 at 21:29

You can use the Go package uniuri to generate random strings (or view the source code to see how they're doing it). You'll want to use:

func NewLen(length int) string

NewLen returns a new random string of the provided length, consisting of standard characters.

Or, to specify the set of characters used:

func NewLenChars(length int, chars []byte) string
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This is actually a little biased towards the first 8 characters in the set (since 255 is not a multiple of len(alphanum)), but this will get you most of the way there.

import (
    "crypto/rand"
)

func randString(n int) string {
    const alphanum = "0123456789ABCDEFGHIJKLMNOPQRSTUVWXYZabcdefghijklmnopqrstuvwxyz"
    var bytes = make([]byte, n)
    rand.Read(bytes)
    for i, b := range bytes {
        bytes[i] = alphanum[b % byte(len(alphanum))]
    }
    return string(bytes)
}
share|improve this answer
    
The core crypto/rand.Reader does < 30MBps on my box. –  Dustin Oct 10 '12 at 0:48
    
True, the question didn't specify whether the strings have to be cryptographically random. If they don't, your solution's probably better. –  Evan Shaw Oct 10 '12 at 1:41
    
I've come across this great answer several times and used it each time. Here's another possible way of generating strings: play.golang.org/p/1GwSRsKIsd –  Drew Oct 28 at 7:19

Here Evan Shaw's answer re-worked without the bias towards the first 8 characters of the string. Note that it uses lots of expensive big.Int operations so probably isn't that quick! The answer is crypto strong though.

It uses rand.Int to make an integer of exactly the right size len(alphanum) ** n, then does what is effectively a base conversion into base len(alphanum).

There is almost certainly a better algorithm for this which would involve keeping a much smaller remainder and adding random bytes to it as necessary. This would get rid of the expensive long integer arithmetic.

import (
    "crypto/rand"
    "fmt"
    "math/big"
)

func randString(n int) string {
    const alphanum = "0123456789ABCDEFGHIJKLMNOPQRSTUVWXYZabcdefghijklmnopqrstuvwxyz"
    symbols := big.NewInt(int64(len(alphanum)))
    states := big.NewInt(0)
    states.Exp(symbols, big.NewInt(int64(n)), nil)
    r, err := rand.Int(rand.Reader, states)
    if err != nil {
        panic(err)
    }
    var bytes = make([]byte, n)
    r2 := big.NewInt(0)
    symbol := big.NewInt(0)
    for i := range bytes {
        r2.DivMod(r, symbols, symbol)
        r, r2 = r2, r
        bytes[i] = alphanum[symbol.Int64()]
    }
    return string(bytes)
}
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Why does everyone think about cryptography? The key criteria is speed not security. –  Pavel Paulau Oct 9 '12 at 19:32
    
At the point where you introduce crypto/rand.Reader, it's going to do fewer than 30MBps (on my box) vs. over 800MBps. –  Dustin Oct 10 '12 at 0:50

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