373

Imagine a Python script that will take a long time to run, what will happen if I modify it while it's running? Will the result be different?

7
  • 20
    The program is loaded into your main memory. If you change the source file, nothing happens. Imagine the CPU would read instructions from the hard drive... Mar 14, 2011 at 9:50
  • 23
    @Felix: That's called "Execute-in-Place" (XIP). Mar 14, 2011 at 9:52
  • 3
    You may dynamically reload the code of modules, see stackoverflow.com/questions/437589/… Oct 9, 2012 at 18:45
  • 8
    Note that Windows batch files do execute in place, so this isn't a hypothetical question, there are languages out there that behave this way.
    – yoyo
    Aug 8, 2018 at 21:03
  • 1
    Is it still the case if I have multiple .py files with source code, and the program calls these different files / classes during runtime? still the original version is used? what if my program does not fit totally in the RAM?
    – Gemini
    Jul 31, 2019 at 18:51

10 Answers 10

440

Nothing, because Python precompiles your script into a PYC file and launches that.

However, if some kind of exception occurs, you may get a slightly misleading explanation, because line X may have different code than before you started the script.

17
  • 16
    Not necessarily into a file. Mar 14, 2011 at 9:50
  • 76
    But what if you re-launch while running, when the new pyc files overwrite the old, will that cause problems in the program that was already running or not? May 3, 2012 at 1:31
  • 35
    Nothing happens. I also checked it in a small test. What happens: the pyc is only the compilate. And this compilate gets loaded into the RAM and then executed. So it's always possible to change the program, recompile and run another instance e.g. in a different console.
    – Chris
    Nov 7, 2014 at 12:28
  • 12
    @Chris I started an instance of my python script in one console. While that was running, I changed two lines of code and started another instance in a separate console. After awhile, I got an error returned from the first console about the two lines of code that I changed after starting it! pls help
    – double_j
    Jan 26, 2015 at 19:44
  • 24
    @Chris I think I know what happens here. If you modify a script and save while it's running, and the previous version errors, in the traceback readout, it opens the current version of the file and makes the traceback look different than when you started. I have seen this myself on several occasions.
    – double_j
    Jun 9, 2016 at 17:41
28
+300

When you run a python program and the interpreter is started up, the first thing that happens is the following:

  • the module sys and builtins is initialized
  • the __main__ module is initialized, which is the file you gave as an argument to the interpreter; this causes your code to execute

When a module is initialized, it's code is run, defining classes, variables, and functions in the process. The first step of your module (i.e. main file) will probably be to import other modules, which will again be initialized in just the same way; their resulting namespaces are then made available for your module to use. The result of an importing process is in part a module (python-) object in memory. This object does have fields that point to the .py and .pyc content, but these are not evaluated anymore: module objects are cached and their source never run twice. Hence, modifying the module afterwards on disk has no effect on the execution. It can have an effect when the source is read for introspective purposes, such as when exceptions are thrown, or via the module inspect.

This is why the check if __name__ == "__main__" is necessary when adding code that is not intended to run when the module is imported. Running the file as main is equivalent to that file being imported, with the exception of __name__ having a different value.


Sources:

18

This is a fun question. The answer is that "it depends".

Consider the following code:

"Example script showing bad things you can do with python."

import os

print('this is a good script')
with open(__file__, 'w') as fdesc:
    fdesc.write('print("this is a bad script")')

import bad

Try saving the above as "/tmp/bad.py" then do "cd /tmp" and finally "python3 bad.py" and see what happens.

On my ubuntu 20 system I see the output:

this is a good script
this is a bad script

So again, the answer to your question is "it depends". If you don't do anything funky then the script is in memory and you are fine. But python is a pretty dynamic language so there are a variety of ways to modify your "script" and have it affect the output.

If you aren't trying to do anything funky, then probably one of the things to watch out for are imports inside functions.

Below is another example which illustrates the idea (save as "/tmp/modify.py" and do "cd /tmp" and then "python3 modify.py" to run). The fiddle function defined below simulates you modifying the script while it is running (if desired, you could remove the fiddle function, put in a time.sleep(300) at the second to last line, and modify the file yourself).

The point is that since the show function is doing an import inside the function instead of at the top of the module, the import won't happen until the function is called. If you have modified the script before you call show, then your modified version of the script will be used.

If you are seeing surprising or unexpected behavior from modifying a running script, I would suggest looking for import statements inside functions. There are sometimes good reasons to do that sort of thing so you will see it in people's code as well as some libraries from time to time.

Below is the demonstration of how an import inside a function can cause strange effects. You can try this as is vs commenting out the call to the fiddle function to see the effect of modifying a script while it is running.

"Example showing import in a function"

import time

def yell(msg):
    "Yell a msg"
    return f'#{msg}#'
    
def show(msg):
    "Print a message nicely"
    import modify
    print(modify.yell(msg))

def fiddle():
    orig = open(__file__).read()
    with open(__file__, 'w') as fdesc:
        modified = orig.replace('{' + 'msg' + '}', '{msg.upper()}')
        fdesc.write(modified)

fiddle()        
show('What do you think?')
1
  • All the other answers seem to assume (without making this explicit) that everything that runs is imported before the modification happens. While this is true in many (most?) cases, it is not always the case, and in any case should be stated as an explicit assumption.
    – Gerhard
    Apr 19, 2023 at 15:10
2

No, the result will not reflect the changes once saved. The result will not change when running regular python files. You will have to save your changes and re-run your program.

2

If you run the following script:

from time import sleep

print("Printing hello world in: ")
for i in range(10, 0, -1):
    print(f"{i}...")
    sleep(1)
    
print("Hello World!")

Then change "Hello World!" to "Hello StackOverflow!" while it's counting down, it will still output "Hello World".

2
  • 1
    As it’s currently written, your answer is unclear. Please edit to add additional details that will help others understand how this addresses the question asked. You can find more information on how to write good answers in the help center.
    – Community Bot
    Nov 25, 2021 at 10:42
  • 1
    Excuse me? How is this unclear or worthy of a downvote in the slightest? It provides an example of "a python script that will take a long time to run", and explains what will happen.
    – ITR
    Dec 13, 2021 at 11:03
1

Nothing, as this answer. Besides, I did experiment when multiprocessing is involved. Save the script below as x.py:

import multiprocessing
import time

def f(x):
    print(x)
    time.sleep(10)

if __name__ == '__main__':
    with multiprocessing.Pool(2) as pool:
        for _ in pool.imap(f, ['hello'] * 5):
            pass

After python3 x.py and after the first two 'hello' being printed out, I modified ['hello'] to ['world'] and observed what happend. Nothing interesting happened. The result was still:

hello
hello
hello
hello
hello
0

Older question, but I feel like there's an interesting answer just because you didn't specify how you were running the code. If you import my_module, it's pretty simple: nothing changes unless you're using importlib or some other library that specifically enables replacing the module in memory.

But there are other ways to execute code within the context of a long running process. For example, you may have a timer / supervisor process that periodically executes routines. If you import the routine modules, they'll stay in memory as long as the supervisor runs. But if you spawn a new process that imports and runs the module, you get the latest version of whatever is in the file (for better or for worse). You also end up creating another process, which may or may not be what you want. But it's fun to try things.

The simplest, most 'redneck engineering' way I can think of to demonstrate this is just using os.system(). Here's a file timer.py:

#timer.py
import schedule
import time
import os
import pottery

# Executes super important pottery routine every minute.
# But we want some consistent pottery and also some
# more experimental pottery!

def make_consistent():
    pottery.make()

def make_wabisabi():
    os.system("python -c 'import pottery; pottery.make()'")

schedule.every(1).minutes.do(make_consistent)
schedule.every(1).minutes.do(make_wabisabi)

while True:
    schedule.run_pending()
    time.sleep(1)

And here is the file it runs both as an imported module, and using os.system():

# pottery.py
def make():
    print("Here's a pot for you!")

Execute it:

$ python timer.py
Here's a pot for you!
Here's a pot for you!

After the first run change the string in pottery.py while timer.py is still running:

Here's a pot for you!
Oh my! Well, here's a lumpy pot!

As you see, the module imported by timer.py didn't change, but if we use any method that doesn't keep the module loaded into memory, we get the latest version of the code. While this didn't do any dynamic reloading or fancy things, you can see that the result is different.

-2

It happens nothing. Once the script is loaded in memory and running it will keep like this.

An "auto-reloading" feature can be implemented anyway in your code, like Flask and other frameworks does.

-3

This is slightly different from what you describe in your question, but it works:

my_string = "Hello World!"

line = input(">>> ")
exec(line)

print(my_string)

Test run:

>>> print("Hey")
Hey
Hello World!

>>> my_string = "Goodbye, World"
Goodbye, World

See, you can change the behavior of your "loaded" code dynamically.

-5

depending. if a python script links to other modified file, then will load newer version ofcourse. but if source doesnt point to any other file it'll just run all script from cache as long as its run. changes will be visible next time...

and if about auto-applying changes when they're made - yes, @pcbacterio was correct. its possible to do thar but script which does it just remembers last action/thing what was doing and checks when the file is modified to rerun it (so its almost invisible)

=]

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