This question already has answers here:
Timeout on a function call
(23 answers)
Closed 25 days ago.
I am trying to run an apriori analysis on a series of hashtags scraped from Twitter in python using jupyter lab, and need to find a way to time out a function after a certain period of time. The function is being run using a while loop that incrementally reduces the size of the support value, and stops after ten seconds has passed.
def association_rules(hashtags_list):
# Convert the list of hashtags into a list of transactions
transactions = [hashtags for hashtags in hashtags_list]
# Initialize the support
min_support = 1
# Initialize the confidence
min_confidence = 0.1
# Initialize the lowest support
lowest_support = 1
# Start the timer
start_time = time.time()
while True:
try:
# Find the association rules
association_rules = apriori(transactions, min_confidence=min_confidence, min_support=min_support)
# Convert the association rules into a list
association_rules_list = list(association_rules)
# End the timer
end_time = time.time()
# Calculate the running time
running_time = end_time - start_time
# check if running time is over the maximum time
if running_time >= 10:
break
lowest_support = min_support
if min_support > 0.01:
min_support = min_support - 0.01
else:
min_support = min_support - 0.005
if min_support <= 0:
min_support = 0.01
except Exception as e:
print("An error occurred:", e)
break
return association_rules_list, round(lowest_support, 3)
The problem this causes is because the timeout is called within the loop itself, it is possible for the loop to get hung up if the apriori support value gets too low before hitting the 10 seconds, which often happens with small datasets, so I need an external function to stop the loop.
I've been looking into parallel processing with no success, and still can't really determine if it can even be carried out in Jupyter Lab.
Any ideas on how to stop a function would be appreciated.
Edited to add that I am running on Win 10, which may effect some options.
This is what I have so far, which seems to work, but I could be wrong...
import time
import func_timeout
import tempfile
def test_function():
highest_n = 0
n = 0
temp_file = tempfile.NamedTemporaryFile(delete=False)
start_time = time.time()
while time.time()-start_time < timeout_time:
n += 1
if n > highest_n:
highest_n = n
temp_file.write(str(n).encode() + b' ' + str(highest_n).encode())
temp_file.close()
return highest_n
timeout_time = 5
try:
result = func_timeout.func_timeout(timeout_time, test_function)
print("highest number counted to: ",result)
except func_timeout.FunctionTimedOut:
print("Function Timed Out after ", timeout_time, " seconds")
temp_file = open(temp_file.name, 'r')
n, highest_n = temp_file.read().split()
n = int(n)
highest_n = int(highest_n)
print("highest number counted to: ",highest_n)
Edit: After some discussion in the comments, here's a different suggestion.
You can terminate a function from outside the function by causing an exception to be thrown via the signalling mechanism as in the example below:
import signal
import time
import random
def out_of_time(signum, frame):
raise TimeoutError
def slow_function():
time.sleep(random.randint(1, 10))
return random.random()
signal.signal(signal.SIGALRM, out_of_time)
signal.alarm(5)
v = 0
while True:
try:
v = slow_function()
except TimeoutError:
print("ran out of time")
break
print("v:", v)
What's going on here is that we have a function, slow_function, that will run for an unknown period of time (1-10 seconds). We run that in a while True loop. At the same time, we've set up the signal system to throw a TimeoutError after 5 seconds. So when that happens, we can catch the exception.
A few things to note though:
This does not work on Windows.
There is absolutely NO GUARANTEE that the code will be where you think it will be when the exception is thrown. If the loop is already completed and the interpreter is not currently running slow_function, you don't know what will happen. So you'll need to 'arm' the exception-throwing mechanism somehow, for example by checking the frame parameter that is passed to out_of_time to make sure that the exception is only thrown if the signal comes while we're inside the expected function.
This is kind of the Python equivalent of a goto in the sense that it causes the execution to jump around in unexpected ways.
A better solution would be to insert some code into the function that you want to terminate to periodically check to see if it should keep running.
Change the while loop from while True to:
while time.time()-start_time < 10 and <some other criteria>:
# loop body
Then you can get rid of the break and you can add whatever halting criteria needed to the loop statement.
I think I found a simpler way just using a list rather than a temporary file.
import time
from func_timeout import func_timeout, FunctionTimedOut
start_time = time.time()
temp_list = []
running_time = 3.3
def while_loop():
min_support = 1
lowest_support = 1
while True:
time.sleep(0.1)
if lowest_support > 0.01:
lowest_support -= 0.01
else:
lowest_support -= 0.001
if lowest_support <= 0:
lowest_support = 0.001
temp_list.append(lowest_support)
if time.time() - start_time > running_time:
break
try:
func_timeout(running_time, while_loop)
except FunctionTimedOut:
pass
temp_list[-1]
This is more to do with my code as i'm sure i'm doing something wrong
all i'm trying to do is call a main function to repeated itself with a recursive number that at some point i'll reset.
here is my code
sys.setrecursionlimit(8000)
didMenuFinish = 0
def mainThread(interval):
time.sleep(0.2)
print("interval is: " + str(interval))
if (interval < 1650):
raceTrack(interval)
if (interval == 1680):
resetButtons()
restartRace()
if didMenuFinish==0:
mainThread(interval + 1)
else:
didMenuFinish = 0
mainThread(0)
time.sleep(4)
keyboard.press(Key.enter)
keyboard.release(Key.enter)
mainThread(0)
At first the main thread runs fine, but somewhere in the 2500 interval +- it just stops with the error code for stack overflow
Process finished with exit code -1073741571 (0xC00000FD)
I am using Windows and pyCharm
do you know how I can handle that ? or am i doing something wrong ?
You are most likely recursively looping forever. You recursively call mainThread in these parts:
def mainThread(interval):
# ...
if didMenuFinish == 0:
mainThread(interval + 1)
else:
didMenuFinish = 0
mainThread(0)
But you never return to the caller. You need a base case that stops the recursive loop
Consider this example of a recursive factorial function:
def fac(x):
if x <= 1:
return 1
return x*fac(x-1)
The base case (terminating case) is when x <= 1. and this will be reached eventually as fac(x-1) implies that x is decreasing towards the conditional x <= 1. i.e. you need to have some sort of case where recursion is not needed. Your current function is recursively equivalent to:
def foo():
foo()
Perhaps infinitely looping and locally updating variables will work?
def mainThread(interval):
while True:
time.sleep(0.2)
print(f"interval is: " {interval})
if interval < 1650:
raceTrack(interval)
if interval == 1680:
resetButtons()
restartRace()
if didMenuFinish == 0:
# No need to call the function again. just change the local variable
interval += 1
else:
didMenuFinish = 0
# Same here
interval = 0
You are getting a stack overflow error because your recursive calls never terminate.
Try using a loop instead:
def mainThread(interval):
while True:
time.sleep(0.2)
print("interval is: " + str(interval))
if (interval < 1650):
raceTrack(interval)
if (interval == 1680):
resetButtons()
restartRace()
if didMenuFinish==0:
interval += 1
else:
didMenuFinish = 0
interval = 0
I have a very long code which is taking forever to run. I was wondering if there is a way to save the results even if I use the keyboard to interrupt the code from running? All the examples I found were using except with Keyboardinterrupt, so I don't know if this is the right code to use.
More concretely: I have a code which ends with saving results in a list, and returning the list. In this case, is there a way to return the list despite keyboardinterrupt? Can I use if keyboardinterrupt statement?
My code:
# removed is a very long list
for a, b in itertools.combinations(removed, 2):
temp = [a,b]
Token_Set_Ratio = fuzz.token_set_ratio(temp[0],temp[1])
if Token_Set_Ratio > k:
c = random.choice(temp)
if c in removed:
removed.remove(c)
else:
pass
else:
pass
return removed
Where can I add the part for python to retain removed even if keyboard interrupt occurs?
You could use a try-except with KeyboardInterrupt:
def your_function():
removed = [...]
try:
# Code that takes long time
for a, b in itertools.combinations(removed, 2):
...
return removed
except KeyboardInterrupt:
return removed
A small example:
import time
def foo():
result = []
try:
# Long running code
for i in range(10000):
result.append(i)
time.sleep(0.1)
return result
except KeyboardInterrupt:
# Code to "save"
return result
print(foo())
When you Ctrl-C before the end of execution, a partial list is printed.
I am having trouble understanding how to write a try except block that only runs one block or the other not just half the block and then move to the exception as seen in my example for emphasis I do not wish to run any portion of try if any line in try fails
x = 1
y = 1
try:
x = x+1
print(x)
x.append(1)
except:
print(x)
which returns
2
2
instead of returning
1
as I would of expected. This is problematic for me because I was foolishly under the impression that only except block would be executed upon try failure. I am scraping websites using beautiful soup and my allocation of a soup usually will throw the exception and the other block will run but unforeseen errors after this allows some lists to be appended then runs the exception block and appends them again. leaving me with lists of different lengths depending on where they fall within each block.
any help is much appreciated
You could reset the computed_result to value of x in except-block on error:
x = 1
y = 1
computed_value = 0
try:
computed_value = x + 1
#print(fallback_var)
computed_value.append(1)
print("Exceution succeed: keeping value")
except:
print("Exceution failed: resetting value")
computed_value = x
#print(x)
print(computed_value)
Let's go step by step:
Your code correctly executes x=x+1 (now x is 2).
Then it correctly executes print(x) (so it prints 2).
Then it tries to execute x.append(1) (and fails)
Since it has failed to append(1) it enters the except and executes print(x) (so it prints 2)
It outputs exactly what's expected.
This run both.
Your code
try:
x = x+1
print(x)
x.append(1)
except:
print(x)
When python start execution, it execute line by line
x = x + 1
After this x become 2.
then
print (x)
Print 2 as first in your output.
x.append(1)
Above statment raise exception which is caught by except clause in your code.
Please remember, x value is already change to 2 in x = x + 1 statment. In except when you do
print (x)
It print 2 again.
how would I stop a while loop after 5 minutes if it does not achieve what I want it to achieve.
while true:
test = 0
if test == 5:
break
test = test - 1
This code throws me in an endless loop.
Try the following:
import time
timeout = time.time() + 60*5 # 5 minutes from now
while True:
test = 0
if test == 5 or time.time() > timeout:
break
test = test - 1
You may also want to add a short sleep here so this loop is not hogging CPU (for example time.sleep(1) at the beginning or end of the loop body).
You do not need to use the while True: loop in this case. There is a much simpler way to use the time condition directly:
import time
# timeout variable can be omitted, if you use specific value in the while condition
timeout = 300 # [seconds]
timeout_start = time.time()
while time.time() < timeout_start + timeout:
test = 0
if test == 5:
break
test -= 1
Try this module: http://pypi.python.org/pypi/interruptingcow/
from interruptingcow import timeout
try:
with timeout(60*5, exception=RuntimeError):
while True:
test = 0
if test == 5:
break
test = test - 1
except RuntimeError:
pass
Petr Krampl's answer is the best in my opinion, but more needs to be said about the nature of loops and how to optimize the use of the system. Beginners who happen upon this thread may be further confused by the logical and algorithmic errors in the question and existing answers.
First, let's look at what your code does as you originally wrote it:
while True:
test = 0
if test == 5:
break
test = test - 1
If you say while True in a loop context, normally your intention is to stay in the loop forever. If that's not your intention, you should consider other options for the structure of the loop. Petr Krampl showed you a perfectly reasonable way to handle this that's much more clear to someone else who may read your code. In addition, it will be more clear to you several months later should you need to revisit your code to add or fix something. Well-written code is part of your documentation. There are usually multiple ways to do things, but that doesn't make all of the ways equally valid in all contexts. while true is a good example of this especially in this context.
Next, we will look at the algorithmic error in your original code. The very first thing you do in the loop is assign 0 to test. The very next thing you do is to check if the value of test is 5, which will never be the case unless you have multiple threads modifying the same memory location. Threading is not in scope for this discussion, but it's worth noting that the code could technically work, but even with multiple threads a lot would be missing, e.g. semaphores. Anyway, you will sit in this loop forever regardless of the fact that the sentinel is forcing an infinite loop.
The statement test = test - 1 is useless regardless of what it does because the variable is reset at the beginning of the next iteration of the loop. Even if you changed it to be test = 5, the loop would still be infinite because the value is reset each time. If you move the initialization statement outside the loop, then it will at least have a chance to exit. What you may have intended was something like this:
test = 0
while True:
test = test - 1
if test == 5:
break
The order of the statements in the loop depends on the logic of your program. It will work in either order, though, which is the main point.
The next issue is the potential and probable logical error of starting at 0, continually subtracting 1, and then comparing with a positive number. Yes, there are occasions where this may actually be what you intend to do as long as you understand the implications, but this is most likely not what you intended. Newer versions of python will not wrap around when you reach the 'bottom' of the range of an integer like C and various other languages. It will let you continue to subtract 1 until you've filled the available memory on your system or at least what's allocated to your process. Look at the following script and the results:
test = 0
while True:
test -= 1
if test % 100 == 0:
print "Test = %d" % test
if test == 5:
print "Test = 5"
break
which produces this:
Test = -100
Test = -200
Test = -300
Test = -400
...
Test = -21559000
Test = -21559100
Test = -21559200
Test = -21559300
...
The value of test will never be 5, so this loop will never exit.
To add to Petr Krampl's answer, here's a version that's probably closer to what you actually intended in addition to exiting the loop after a certain period of time:
import time
test = 0
timeout = 300 # [seconds]
timeout_start = time.time()
while time.time() < timeout_start + timeout:
if test == 5:
break
test -= 1
It still won't break based on the value of test, but this is a perfectly valid loop with a reasonable initial condition. Further boundary checking could help you to avoid execution of a very long loop for no reason, e.g. check if the value of test is less than 5 upon loop entry, which would immediately break the loop.
One other thing should be mentioned that no other answer has addressed. Sometimes when you loop like this, you may not want to consume the CPU for the entire allotted time. For example, say you are checking the value of something that changes every second. If you don't introduce some kind of delay, you would use every available CPU cycle allotted to your process. That's fine if it's necessary, but good design will allow a lot of programs to run in parallel on your system without overburdening the available resources. A simple sleep statement will free up the vast majority of the CPU cycles allotted to your process so other programs can do work.
The following example isn't very useful, but it does demonstrate the concept. Let's say you want to print something every second. One way to do it would be like this:
import time
tCurrent = time.time()
while True:
if time.time() >= tCurrent + 1:
print "Time = %d" % time.time()
tCurrent = time.time()
The output would be this:
Time = 1498226796
Time = 1498226797
Time = 1498226798
Time = 1498226799
And the process CPU usage would look like this:
That's a huge amount of CPU usage for doing basically no work. This code is much nicer to the rest of the system:
import time
tCurrent = time.time()
while True:
time.sleep(0.25) # sleep for 250 milliseconds
if time.time() >= tCurrent + 1:
print "Time = %d" % time.time()
tCurrent = time.time()
The output is the same:
Time = 1498226796
Time = 1498226797
Time = 1498226798
Time = 1498226799
and the CPU usage is way, way lower:
import time
abort_after = 5 * 60
start = time.time()
while True:
delta = time.time() - start
if delta >= abort_after:
break
I want to share the one I am using:
import time
# provide a waiting-time list:
lst = [1,2,7,4,5,6,4,3]
# set the timeout limit
timeLimit = 4
for i in lst:
timeCheck = time.time()
while True:
time.sleep(i)
if time.time() <= timeCheck + timeLimit:
print ([i,'looks ok'])
break
else:
print ([i,'too long'])
break
Then you will get:
[1, 'looks ok']
[2, 'looks ok']
[7, 'too long']
[4, 'looks ok']
[5, 'too long']
[6, 'too long']
[4, 'looks ok']
[3, 'looks ok']
I have read this but I just want to ask something, wouldn't something like I have written work at all?
I have done the testing for 5,10 and 20 seconds. Its time isn't exactly accurate but they are really close to the actual values.
import time
begin_time=0
while begin_time<5:
begin_time+=1
time.sleep(1.0)
print("The Work is Done")
i'm not an python expert but i wrote small function to check timeout and brake while loop
# compare now and given times older than delta
def is_time_older_than(time, delta):
print(dt.utcnow() - time,delta)
if (dt.utcnow() - time) > delta:
return True
return False
startTime = dt.utcnow()
while True:
print("waiting")
if (is_time_older_than(startTime, timedelta(seconds=5)) == True):
break
you can record time before execution than send to function as starting time with delta value in seconds (or 60*1 for a minute) it will compare difference and return False or True thats it
Try the following:
from datetime import datetime, timedelta
end_time = datetime.now() + timedelta(minutes=5)
while True:
current_time = datetime.now()
if current_time == end_time:
break
Old Thread, but I just want to share my re-usable solution using an Iterator:
class Timeoutloop:
""" universal for time-out loop """
def __init__(self, timeout):
self.timeout = timeout
def __iter__(self):
self.start_time = time.time()
return self
def __next__(self):
now = time.time()
time_passed = now - self.start_time
if time_passed > self.timeout:
raise StopIteration
else:
return time_passed
## usage example:
for passed in Timeoutloop(10.0):
print(passed)
sleep(random.random())
Inspired by #andrefsp's answer, here's a simple context manager that gives a deadline:
from contextlib import contextmanager
#contextmanager
def deadline(timeout_seconds: Union[int, float]):
"""
Context manager that gives a deadline to run some code.
Usage:
`with deadline(secs): ...`
or
```
#deadline(secs)
def func: ...
```
Args:
timeout_seconds: number of seconds before context manager raises a DeadlineExceededException
Raises:
DeadlineExceededException error if more than timeout_seconds elapses.
"""
start_time = time.time()
yield
elapsed_time = time.time() - start_time
if elapsed_time > timeout_seconds:
msg = f"Deadline of {timeout_seconds} seconds exceeded by {elapsed_time - timeout_seconds} seconds"
logger.exception(msg)
raise DeadlineExceededException(msg)
class DeadlineExceededException(Exception):
pass