Created
March 21, 2012 19:29
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Python - inspect - Get full caller name (package.module.function)
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| # Public Domain, i.e. feel free to copy/paste | |
| # Considered a hack in Python 2 | |
| import inspect | |
| def caller_name(skip=2): | |
| """Get a name of a caller in the format module.class.method | |
| `skip` specifies how many levels of stack to skip while getting caller | |
| name. skip=1 means "who calls me", skip=2 "who calls my caller" etc. | |
| An empty string is returned if skipped levels exceed stack height | |
| """ | |
| stack = inspect.stack() | |
| start = 0 + skip | |
| if len(stack) < start + 1: | |
| return '' | |
| parentframe = stack[start][0] | |
| name = [] | |
| module = inspect.getmodule(parentframe) | |
| # `modname` can be None when frame is executed directly in console | |
| # TODO(techtonik): consider using __main__ | |
| if module: | |
| name.append(module.__name__) | |
| # detect classname | |
| if 'self' in parentframe.f_locals: | |
| # I don't know any way to detect call from the object method | |
| # XXX: there seems to be no way to detect static method call - it will | |
| # be just a function call | |
| name.append(parentframe.f_locals['self'].__class__.__name__) | |
| codename = parentframe.f_code.co_name | |
| if codename != '<module>': # top level usually | |
| name.append( codename ) # function or a method | |
| del parentframe | |
| return ".".join(name) |
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I've never used Python before, is this too hard to use?