I have a loop starting with for i in range(0, 100). Normally it runs correctly, but sometimes it fails due to network conditions. Currently I have it set so that on failure, it will continue in the except clause (continue on to the next number for i).

Is it possible for me to reassign the same number to i and run through the failed iteration of the loop again?

14 Answers 14

up vote 251 down vote accepted

Do a while True inside your for loop, put your try code inside, and break from that while loop only when your code succeeds.

for i in range(0,100):
    while True:
        try:
            # do stuff
        except SomeSpecificException:
            continue
        break
  • 32
    Except use except SomeSpecificError: instead of catching all exceptions. – Roger Pate Jan 18 '10 at 5:21
  • continue does not use the same element of the iterable; instead it continues to the next. – Ignacio Vazquez-Abrams Jan 18 '10 at 5:22
  • 21
    @Ignacio, huh? continue retries the while loop, of course, not the for (!), so i is not "the next" anything -- it's exactly the same as it was on a previous (failed) leg of the same while, of course. – Alex Martelli Jan 18 '10 at 6:05
  • 8
    As xorsyst notes, it's advisable to put a retry limit on there. Otherwise you could get stuck looping for quite some time. – Brad Koch Aug 29 '13 at 0:34
  • 1
    This is an excellent example: medium.com/@echohack/… – Tony Melony Dec 5 '14 at 12:09

I prefer to limit the number of retries, so that if there's a problem with that specific item you will eventually continue onto the next one, thus:

for i in range(100):
  for attempt in range(10):
    try:
      # do thing
    except:
      # perhaps reconnect, etc.
    else:
      break
  else:
    # we failed all the attempts - deal with the consequences.
  • What are the consequences of the second else as relates to flow control? Under which circumstances is the "we failed..." part of the code executed? – g33kz0r Jan 28 '15 at 5:30
  • @g33kz0r the for-else construct in Python executes the else clause if the for loop doesn't break. So, in this case, that section executes if we try all 10 attempts and always get an exception. – xorsyst Jan 28 '15 at 11:25
  • 2
    This is a great answer! Really deserves much more upvotes. It perfectly uses all facilities in Python, especially the lesser known else: clause of for. – pepoluan Apr 21 '15 at 7:18
  • 1
    Don't you need a break at the end of the try: part? With the additional break in try:, if the process completes successfully the loop will break, if it doesn't complete successfully it will go straight to the exception part. Does that make sense? If I don't put a break at the end of try: it just does the thing 100 times. – Tristan Aug 11 '15 at 13:59
  • 1
    I also prefer a for-loop for retrying. A wrinkle in this code is that, if you want to re-raise the exception when you give up trying, you need something like "if attempt=9: raise" inside the except clause, and remember to use 9 and not 10. – PaulMcG Nov 10 '16 at 15:02

The retrying package is a nice way to retry a block of code on failure.

For example:

@retry(wait_random_min=1000, wait_random_max=2000)
def wait_random_1_to_2_s():
    print "Randomly wait 1 to 2 seconds between retries"
  • 2
    More generally, pypi has multiple packages for retry decorators: pypi.python.org/… – kert Apr 16 '16 at 21:14

The more "functional" approach without using those ugly while loops:

def tryAgain(retries=0):
    if retries > 10: return
    try:
        # Do stuff
    except:
        retries+=1
        tryAgain(retries)

tryAgain()
  • 10
    I'm sorry, but it seems much uglier than the "ugly while loops" variants; and I am fond of functional programming... – lvella Sep 9 '11 at 17:39
  • 7
    You need to make sure you don't recurse deeply though - the default stack size in Python is 1000 – Cal Paterson Aug 21 '14 at 10:40
  • 3
    If this is going to be 'functional', the recursion should be: except: tryAgain(retries+1) – quamrana Aug 1 '17 at 13:18

Here is a solution similar to others, but it will raise the exception if it doesn't succeed in the prescribed number or retries.

tries = 3
for i in range(tries):
    try:
        do_the_thing()
    except KeyError as e:
        if i < tries - 1: # i is zero indexed
            continue
        else:
            raise
    break
  • Nice answer, but the variable name retries is misleading. It should much rather be tries. – Lukas Aug 17 '16 at 16:48
  • True @Lukas. Fixed. – TheHerk Aug 17 '16 at 17:33
  • Very good solution thank you. It could be improved by adding a delay between each try. Very useful when dealing with APIs. – Sam Dec 31 '17 at 14:59

The clearest way would be to explicitly set i. For example:

i = 0
while i < 100:
    i += 1
    try:
        # do stuff

    except MyException:
        continue
  • 33
    Is that C or C++? I can't tell. – Georg Schölly Jan 18 '10 at 6:52
  • 3
    @Georg That's Python, as stated in the question. Or where you being sarcastic for some reason? – Jakob Borg Jan 18 '10 at 15:29
  • 2
    This doesn't do what the OP asked for. It might if you put i += 1 just after # do stuff. – F. Malina Oct 20 '13 at 19:20
  • 3
    Not pythonic. Should use range for this kind of stuff. – Mystic Dec 1 '14 at 19:04
  • 1
    I agree, this should definitely use range. – user2662833 May 17 '16 at 6:00

There is something similar in the Python Decorator Library.

Please bear in mind that it does not test for exceptions, but the return value. It retries until the decorated function returns True.

A slightly modified version should do the trick.

Using recursion

for i in range(100):
    def do():
        try:
            ## Network related scripts
        except SpecificException as ex:
            do()
    do() ## invoke do() whenever required inside this loop

A generic solution with a timeout:

import time

def onerror_retry(exception, callback, timeout=2, timedelta=.1):
    end_time = time.time() + timeout
    while True:
        try:
            yield callback()
            break
        except exception:
            if time.time() > end_time:
                raise
            elif timedelta > 0:
                time.sleep(timedelta)

Usage:

for retry in onerror_retry(SomeSpecificException, do_stuff):
    retry()
  • Is it possible to specify a separate function for error checking? It would take the output of the callback and pass to the error checking function to decide if it was a failure or success instead of using a simple except exception: – Pratik Khadloya Oct 10 '17 at 21:04
  • Instead of a try … except you can use a if statement. But it is less pythonic. – Laurent LAPORTE Oct 10 '17 at 21:07
  • This solution does not work. trinket.io/python/caeead4f6b The exception thrown by do_stuff does not bubble to the generator. Why would it, anyway? do_stuff is called in the body of the for loop, which is on an outer level on its own, not nested in the generator. – isarandi Apr 17 at 8:56
  • Your right, but for a different reason: the callback function is never called. I have forgotten the parenthesis, replace by callback(). – Laurent LAPORTE Apr 17 at 12:50

Using while and a counter:

count = 1
while count <= 3:  # try 3 times
    try:
        # do_the_logic()
        break
    except SomeSpecificException as e:
        # If trying 3rd time and still error?? 
        # Just throw the error- we don't have anything to hide :)
        if count == 3:
            raise
        count += 1

You can use Python retrying package. Retrying

It is written in Python to simplify the task of adding retry behavior to just about anything.

If you want a solution without nested loops and invoking break on success you could developer a quick wrap retriable for any iterable. Here's an example of a networking issue that I run into often - saved authentication expires. The use of it would read like this:

client = get_client()
smart_loop = retriable(list_of_values):

for value in smart_loop:
    try:
        client.do_something_with(value)
    except ClientAuthExpired:
        client = get_client()
        smart_loop.retry()
        continue
    except NetworkTimeout:
        smart_loop.retry()
        continue

Here's my idea on how to fix this:

j = 19
def calc(y):
    global j
    try:
        j = j + 8 - y
        x = int(y/j)   # this will eventually raise DIV/0 when j=0
        print("i = ", str(y), " j = ", str(j), " x = ", str(x))
    except:
        j = j + 1   # when the exception happens, increment "j" and retry
        calc(y)
for i in range(50):
    calc(i)

increment your loop variable only when the try clause succeeds

  • 8
    -1, Elaboration is nice, as are grammar & punctuation. – Brad Koch Aug 29 '13 at 0:52

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