5

I am trying to find a great way to produce a 32 digit hex sequence that is random and gets its randomness from a Big Number like 10*78.

For Python code I also found this:

ran = random.randrange(10**80)
myhex = "%030x" % ran

This produces a 64 digit hex string, BUT sometimes the result is 63 or even 61 characters and I'm not sure why? I need it to return 64 exactly each time.

I need helping tweaking the above code so that it ALWAYS returns 64 only. I do not know enough about the how the "%030x" part works.

I've also tried producing a longer hex string and shortening it with:

myhex = myhex[:64]

But I was still seeing strings that were less than 64 being returned.

In the end I just need exactly 64 hexadecimal string derived from a Big Number like 10*78, returned each time.

Solution I went with

import random

ran = random.randrange(10**80)
myhex = "%064x" % ran

#limit string to 64 characters
myhex = myhex[:64]

print(myhex)

Seems @ScottMillers answer below was the key I needed to find the answer so I'm selecting his answer as the solution, but wanted to post my final code that worked for me here.

Thanks everyone

1
  • Its Scott Hunter, not Scott Miller, but I've been called worse. – Scott Hunter Oct 15 '18 at 12:50
7

"%030x" says to display the associated value with at least 30 digits, padding with 0's in front as necessary. Since your numbers are almost always bigger than that, this isn't doing much for you.

It sounds like you need "%064x".

1
  • Thanks. This was key in my final solution so I'm choosing it as my answer. – Norman Bird Apr 12 '16 at 20:09
10

In modern Python distributions, the new library secrets makes it easy and might be what you need. From the docs:

The secrets module is used for generating cryptographically strong random numbers suitable for managing data such as passwords, account authentication, security tokens, and related secrets.

In particularly, secrets should be used in preference to the default pseudo-random number generator in the random module, which is designed for modeling and simulation, not security or cryptography.

For Python 3.6 and up, try this:

import secrets
secrets.token_hex(32)
#'17450056b398cbeda1fa7e4fc25d4fb169ade2b1266892e2cecab56b12fb900b'

https://docs.python.org/3/library/secrets.html#module-secrets

For earlier versions of Python, there is a backport available (python2-secrets).

   pip install python2-secrets
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  • Note that the number passed to token_hex is the number of bytes requested, each corresponding to two hex digits. So to obtain 32 hex digits like the OP wanted, you'd need to use: secrets.token_hex(16) – Fernando Echeverria Nov 10 '20 at 20:02
8

The UUID module can return a 32 hexadecimal digits object:

import uuid
uuid.uuid4().hex
# '7dccf8a43a6c4e018caadacdb2d0f6f0'
1
  • 1
    It's worth pointing out that while the result is 128-bit indeed, the values of the 6 most significant bits are defined by the RFC and therefore only 122 bits are random. – Michał Górny May 14 '20 at 9:03
1

You can use os.urandom instead of hexdump. Python 2.7:

import os
num_digits = 32
myhex = os.urandom(num_digits / 2).encode('hex')

Py3.4+:

import os, codecs
num_digits = 32
myhex = codecs.encode(os.urandom(num_digits / 2), 'hex').decode()
1

There's no such things as "hex numbers"; there's only different representation of the same number (10 in decimal is 0xA in hex and is 0b1010 in binary, but it's still the same number).

This produces a 64 digit hex string, BUT sometimes the result is 63 or even 61 characters and I'm not sure why? I need it to return 64 exactly each time.

so: I ask you to give me a random number above 0 and below 1000; how many digits will that number have?

Right. It can have one, two or three digits, with three digits being the most likely case (there's 900 three-digit numbers below 1000, but only 90 two digit numbers and 9 one-digit numbers).

Obviously, you just have to pad with 0 in front!

In the end I just need exactly 64 hexadecimal string derived from a Big Number like 10*78, returned each time.

you need to think about what random means. If you're ok with every single digit being drawn from a uniform distribution in 0..F, then why don't just throw a sixteen-sided die 64 times and concatenate the result? Python makes that extremely easy

import random
hexdigits = "0123456789ABCDEF"
random_digits = "".join([ hexdigits[random.randint(0,0xF)] for _ in range(64) ])

EDIT:

In the comments below, OP says he wants to use that random string to seed a bitcoin private key generation.

Never build your own seeder unless you're really an expert in the field. So, although I believe these 1024 bit (really, that's what a 64 digit of Hex number are) of info are random, I will not claim this suffices for crypto purposes.

Don't implement crypto yourself, and don't meddle with seed generation lest you know your ways around stochastics, numerics, cryptography and RNG, computer security research and possible attack vectors. Simply don't.

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  • thanks for clarifying why I was seeing shorter digits sometimes. It starts with a random number duh. My question now is if rando.randint have enough entropy to support my big number poll requirement? Like up to 10**78. Would you say it does? – Norman Bird Apr 12 '16 at 17:57
  • and Marcus your answer does provide a consistent random 64 hex string as required. I have ran it millions of times in testing and always 64. – Norman Bird Apr 12 '16 at 17:59
  • @NormanBird unless you start defining what "random" means to you, there's no answer to that, obviously. But probably: The random number generator python uses is pretty good, so chances are that you won't see any patterns in your 1024 bits of randomness. – Marcus Müller Apr 12 '16 at 17:59
  • notice that defining "random enough" is a hard problem, and there's books and books of math defining what "random" means under different aspects. I really don't know what you need your random digit string for, and you don't seem to be able to articulate that; my "guess" hence that yes, that string is random enough. – Marcus Müller Apr 12 '16 at 18:02
  • I am attempting generate a script that produces the 32 random hex string needed to generate a Bitcoin private key. My understanding is that the proper entropy needs to come from a pool of at least 10^78 power or a 78 digit random number. That's why you see I start with random.randrange(10**78). I just noticed your solution did not use that part of my original code so I asked. – Norman Bird Apr 12 '16 at 18:08
0

For padding zero infront, we can use zfill option.

Ex: device = '14AB'

device.zfill(8) '000014AB' device.zfill(64) '00000000000000000000000000000000000000000000000000000000000014AB'

-1

I would try something like this:

mylist = [0,1,2,3,4,5,6,7,8,9,A,B,C,D,E,F]
number = ""

def randomhex():
    global mylist, number
    while len(number) < 32:
        number = number + random.choice(mylist)

And if you want it as number, not as string just use eval().

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  • you can directly use a string (see my answer), which is a sequence type, too, with random.choice. – Marcus Müller Apr 12 '16 at 18:04
  • But: never use global without a good reason. Your function is a prime example of where one should use return instead. I think you should seriously increase your Python knowledge! – Marcus Müller Apr 12 '16 at 18:05
  • Well, I'm 15 and have been programming for about a half year and why should I avoid using global variables in functions? – marcb20012 Apr 15 '16 at 17:17
  • because that's not how functions are supposed to work: transforming input to output that they return. I think it's a great thing to pursue porgamming, so keep up the work! – Marcus Müller Apr 15 '16 at 18:23
  • 1
    Really, though, learn about python functions. I think the official tutorial on python.org explains them in a way that makes the whole input->return thing much more intuitive than the global thing. In general, you should avoid global as much as possible: It is a recipe for disaster, because you might change something on one end of your program that the other end did not foresee. – Marcus Müller Apr 15 '16 at 18:30

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