How to determine file, function and line number?
For example
import inspect
frame = inspect.currentframe()
# __FILE__
fileName = frame.f_code.co_filename
# __LINE__
fileNo = frame.f_lineno
There's more here http://docs.python.org/library/inspect.html
There is a module named inspect
which provides these information.
Example usage:
import inspect
def PrintFrame():
callerframerecord = inspect.stack()[1] # 0 represents this line
# 1 represents line at caller
frame = callerframerecord[0]
info = inspect.getframeinfo(frame)
print(info.filename) # __FILE__ -> Test.py
print(info.function) # __FUNCTION__ -> Main
print(info.lineno) # __LINE__ -> 13
def Main():
PrintFrame() # for this line
Main()
However, please remember that there is an easier way to obtain the name of the currently executing file:
print(__file__)
You can refer my answer: https://stackoverflow.com/a/45973480/1591700
import sys
print sys._getframe().f_lineno
You can also make lambda function
Building on geowar's answer:
class __LINE__(object):
import sys
def __repr__(self):
try:
raise Exception
except:
return str(sys.exc_info()[2].tb_frame.f_back.f_lineno)
__LINE__ = __LINE__()
If you normally want to use __LINE__
in e.g. print
(or any other time an implicit str()
or repr()
is taken), the above will allow you to omit the ()
s.
(Obvious extension to add a __call__
left as an exercise to the reader.)