2

It will return a random phone number xxx-xxx-xxxx with the following restrictions:

  • The area code cannot start with a zero,
  • None of the middle three digits can be a 9,
  • Middle three digits cannot be 000,
  • Last 4 digits cannot all be the same.
4
  • Should the last bit - c have 4 digits?
    – Beginner
    Oct 7, 2014 at 0:26
  • 1
    You need to learn how to use while loops. Specifically, you want a loop around each random number generator that only exits when the random number matches your criteria.
    – Basic
    Oct 7, 2014 at 0:38
  • 1
    One thing you may want to know, your requirements allow for invalid phone numbers to be generated for north ameriacan phone numbers. The offical standard is called NANP Oct 7, 2014 at 1:00
  • 2
    @Tunechi Deleting content, making what remains useless, will not do. Press the delete link to delete the entire question if you want to cover up your actions so much. Oct 7, 2014 at 1:14

4 Answers 4

6

I tried to combine OP,@kgull,@Cyber's code and @ivan_pozdeev's concern, also fulfill OP's requirement :

>>> def gen_phone():
    first = str(random.randint(100,999))
    second = str(random.randint(1,888)).zfill(3)

    last = (str(random.randint(1,9998)).zfill(4))
    while last in ['1111','2222','3333','4444','5555','6666','7777','8888']:
        last = (str(random.randint(1,9998)).zfill(4))
        
    return '{}-{}-{}'.format(first,second, last)

>>> for _ in xrange(10):
    gen_phone()
    
'496-251-8419'
'102-665-1932'
'262-624-5025'
'230-459-3242'
'355-131-0243'
'488-001-6828'
'244-539-2369'
'896-547-4539'
'522-406-8256'
'789-373-4240'
5

Slightly simpler solution.

import random

def phn():
    n = '0000000000'
    while '9' in n[3:6] or n[3:6]=='000' or n[6]==n[7]==n[8]==n[9]:
        n = str(random.randint(10**9, 10**10-1))
    return n[:3] + '-' + n[3:6] + '-' + n[6:]

And a solution that returns the first time, every time (no while loops).

import random

def phn():
    p=list('0000000000')
    p[0] = str(random.randint(1,9))
    for i in [1,2,6,7,8]:
        p[i] = str(random.randint(0,9))
    for i in [3,4]:
        p[i] = str(random.randint(0,8))
    if p[3]==p[4]==0:
        p[5]=str(random.randint(1,8))
    else:
        p[5]=str(random.randint(0,8))
    n = range(10)
    if p[6]==p[7]==p[8]:
        n = (i for i in n if i!=p[6])
    p[9] = str(random.choice(n))
    p = ''.join(p)
    return p[:3] + '-' + p[3:6] + '-' + p[6:]
2
  • 2
    Has a downside of undefined time (in accordance with Murphy's law, it's gonna choke sometime). Oct 7, 2014 at 1:01
  • The probability of randomly choosing a bad phone number in this case is only around 0.1% (9990010 bad numbers out of 9 billion possible numbers) but it is definitely important to keep in mind.
    – Kyle G
    Oct 7, 2014 at 1:29
0
import random

Let's start with the area code. No leading zero, so only pick between 1 and 9. Then the remaining two can be anything between 00 and 99.

def makeFirst():
    first_digit = random.randint(1,9)
    remaining = random.randint(0,99)
    return first_digit*100 + remaining

Next the middle numbers. They cannot have a 9 so sample 0 to 8. Then loop until you get a valid case, throwing out if you happen to sample a 000.

def makeSecond():
    middle = 0
    while middle == 0:
        middle1 = random.randint(0,8)
        middle2 = random.randint(0,8)
        middle3 = random.randint(0,8)
        middle = 100*middle1 + 10*middle2 + middle3
    return middle

For the last four numbers, we'll use random.sample to ensure that we don't get any repeats.

def makeLast():
    return ''.join(map(str, random.sample(range(10),4)))

Finally join the whole thing together and format it like a phone number.

def makePhone():
    first = makeFirst()
    second = makeSecond()
    last = makeLast()
    return '{3}-{3}-{4}'.format(first,second,last)

A few tests

for i in range(5):
    print makePhone()

425-426-8902
473-775-2793
434-624-8356
287-630-4560
861-431-7659
6
  • The similarity in the answer I was about to post and the one you posted is scary.
    – Beginner
    Oct 7, 2014 at 0:31
  • 1
    makeLast will never return a number with 2 or 3 of the numbers the same either. So something like 425-426-8999 isn't possible.
    – Kyle G
    Oct 7, 2014 at 0:50
  • random.sample introduces an additional restriction. Is this acceptable? Oct 7, 2014 at 0:50
  • The requirement was "Last 4 digits cannot all be the same.", I made that a bit stricter such that "None of the last 4 digits can be the same as each other". We can lax that requirement if you'd like but it was easier to 1-line that way. Oct 7, 2014 at 0:51
  • The middle() can't be 000? Isn't it just easier to do ... second = ''.join([str(random.randint(0, 8)) for _ in range(3)])?
    – ssm
    Oct 7, 2014 at 0:53
0

This is my clean and simple answer.

It allows you to generate a random phone number in a random format.

def generate_phone_number():
    formats = [
        "({}{}{}) {}{}{}-{}{}{}{}",
        "{}{}{}{}{}{}{}{}{}{}",
        "({}{}{})-{}{}{}-{}{}{}{}",
    ]

    ten_numbers = [random.randint(0, 9) for _ in range(10)]
    return random.choice(formats).format(*ten_numbers)

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