183

For some reason, I can not depend on Python's "import" statement to generate .pyc file automatically

Is there a way to implement a function as following?

def py_to_pyc(py_filepath, pyc_filepath):
    ...

10 Answers 10

338

You can use compileall in the terminal. The following command will go recursively into sub directories and make pyc files for all the python files it finds. The compileall module is part of the python standard library, so you don't need to install anything extra to use it. This works exactly the same way for python2 and python3.

python -m compileall .
10
  • 6
    This should be the accepted answer --at least in my need to compile all *.py into *.pyc: recursively :)
    – swdev
    Sep 12, 2014 at 14:58
  • 2
    Is it possible to distribute a PYC file containing all the libraries used? So users doesn't have to install them, just ran the PYC file, I know in java this is possible using a JARs are there any similar method for Python?
    – D.Snap
    Mar 15, 2016 at 7:22
  • I heard also something about meta files in Python. This compileall also build some cache? If not, what is the command for that?? Since the end-users doesn't have write permission to the lib directory. And I want to speed up things here... PS. also take a look at the -O flag, for bytecode (.pyo file iso .pyc) compilation. Feb 15, 2017 at 11:54
  • what about decompiling?
    – Sajuuk
    Apr 27, 2018 at 11:46
  • 3
    be careful with this command. I did accidentally do a compileall on my site-packages folder and it messed up everything
    – Alex
    Jul 18, 2018 at 11:29
78

You can compile individual files(s) from the command line with:

python -m compileall <file_1>.py <file_n>.py
0
67

It's been a while since I last used Python, but I believe you can use py_compile:

import py_compile
py_compile.compile("file.py")
1
  • 13
    You probably want to include the second parameter, which determines the output file. Otherwise, it defaults to something like __pycache__/file.cpython-32.pyc and you get that as the return value.
    – rvighne
    Aug 19, 2014 at 21:10
62

I found several ways to compile python scripts into bytecode

  1. Using py_compile in terminal:

    python -m py_compile File1.py File2.py File3.py ...
    

    -m specifies the module(s) name to be compiled.

    Or, for interactive compilation of files

    python -m py_compile -
    File1.py
    File2.py
    File3.py
       .
       .
       .
    
  2. Using py_compile.compile:

    import py_compile
    py_compile.compile('YourFileName.py')
    
  3. Using py_compile.main():

    It compiles several files at a time.

    import py_compile
    py_compile.main(['File1.py','File2.py','File3.py'])
    

    The list can grow as long as you wish. Alternatively, you can obviously pass a list of files in main or even file names in command line args.

    Or, if you pass ['-'] in main then it can compile files interactively.

  4. Using compileall.compile_dir():

    import compileall
    compileall.compile_dir(direname)
    

    It compiles every single Python file present in the supplied directory.

  5. Using compileall.compile_file():

    import compileall
    compileall.compile_file('YourFileName.py')
    

Take a look at the links below:

https://docs.python.org/3/library/py_compile.html

https://docs.python.org/3/library/compileall.html

1
  • 2
    One small correction is that the module name you are loading is py_compile and compileall NOT py_compile.py or compileall.py. In other words, it should be python3 -m py_compile PYTHON_FILENAME or python3 -m compileall PYTHON_FILES_DIRECTORY.
    – Devy
    Jan 26, 2017 at 21:08
19

I would use compileall. It works nicely both from scripts and from the command line. It's a bit higher level module/tool than the already mentioned py_compile that it also uses internally.

3
  • compileall does not include logic to skip files for which the corresponding .pyc file is already up-to-date, does it? Dec 8, 2014 at 22:41
  • 4
    @KyleStrand compileall does skip files that already have an up-to-date .pyc (tested with Python 2.7.11)
    – Eponymous
    Jan 18, 2016 at 20:47
  • @Eponymous Interesting. Not sure why I thought otherwise. Thanks for checking. Jan 18, 2016 at 20:49
19

Normally the following command compilies a python project:

python -m compileall <project-name>

In Python2 it compiles all .py files to .pyc files in a project which contains packages as well as modules.

Whereas in Python3 it compiles all .py files to __pycache__ folders in a project which contains packages as well as modules.

With browning from this post:

You can enforce the same layout of .pyc files in the folders as in Python2 by using:

python3 -m compileall -b <pythonic-project-name>

The option -b triggers the output of .pyc files to their legacy-locations (i.e. the same as in Python2).

5

To match the original question requirements (source path and destination path) the code should be like that:

import py_compile
py_compile.compile(py_filepath, pyc_filepath)

If the input code has errors then the py_compile.PyCompileError exception is raised.

1
  1. create a new python file in the directory of the file.
  2. type import (the name of the file without the extension)
  3. run the file
  4. open the directory, then find the pycache folder
  5. inside should be your .pyc file
1

There are two ways to do this

  1. Command line
  2. Using python program

If you are using command line, use python -m compileall <argument> to compile python code to python binary code. Ex: python -m compileall -x ./*

Or, You can use this code to compile your library into byte-code:

import compileall
import os

lib_path = "your_lib_path"
build_path = "your-dest_path"

compileall.compile_dir(lib_path, force=True, legacy=True)

def moveToNewLocation(cu_path):
    for file in os.listdir(cu_path):
        if os.path.isdir(os.path.join(cu_path, file)):
            compile(os.path.join(cu_path, file))
        elif file.endswith(".pyc"):
            dest = os.path.join(build_path, cu_path ,file)
            os.makedirs(os.path.dirname(dest), exist_ok=True)
            os.rename(os.path.join(cu_path, file), dest)

moveToNewLocation(lib_path)

look at ☞ docs.python.org for detailed documentation

0

Let's ask python to compile with this tiny script. Call it compile.py

import py_compile
import sys

banner="""

██████  ██    ██        ██████  ██████  ███    ███ ██████  ██ ██      ███████ 
██   ██  ██  ██        ██      ██    ██ ████  ████ ██   ██ ██ ██      ██      
██████    ████   █████ ██      ██    ██ ██ ████ ██ ██████  ██ ██      █████   
██         ██          ██      ██    ██ ██  ██  ██ ██      ██ ██      ██      
██         ██           ██████  ██████  ██      ██ ██      ██ ███████ ███████ 
                                                                                                                                                            
"""
print(banner)

in_file = sys.argv[1];
out_file = (in_file.split('.')[0]) + ".pyc"
py_compile.compile(f"{in_file}",f"{out_file}")

print(f"{out_file} compiled")

When executed in the windows console as python compile.py cheat.py produces a file called cheat.pyc and prints the following in the console. The you can just type cheat.pyc to execute it in the console.

This was made possible with Python 3.9.6 64Bit in Windows 10

enter image description here

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