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If I run the following code from a terminal, I get a helpful error message in the terminal:

import Tkinter as tk

master = tk.Tk()

def callback():
    raise UserWarning("Exception!")

b = tk.Button(master, text="This will raise an exception", command=callback)
b.pack()

tk.mainloop()

However, if I run it without a terminal (say, by double-clicking an icon), the error message is suppressed.

In my real, more complicated Tkinter application, I like that the GUI is a little crash-resistant. I don't like that my users have a hard time giving me useful feedback to fix the resulting unexpected behavior.

How should I handle this? Is there a standard way to expose tracebacks or stderror or whatnot in a Tkinter application? I'm looking for something more elegant than putting try/except everywhere.

EDIT: Jochen Ritzel gave an excellent answer below that pops up a warning box, and mentioned attaching it to a class. Just to make this explicit:

import Tkinter as tk
import traceback, tkMessageBox

class App:
    def __init__(self, master):
        master.report_callback_exception = self.report_callback_exception
        self.frame = tk.Frame(master)
        self.frame.pack()
        b = tk.Button(
            self.frame, text="This will cause an exception",
            command=self.cause_exception)
        b.pack()

    def cause_exception(self):
        a = []
        a.a = 0 #A traceback makes this easy to catch and fix

    def report_callback_exception(self, *args):
        err = traceback.format_exception(*args)
        tkMessageBox.showerror('Exception', err)

root = tk.Tk()
app = App(root)
root.mainloop()

My remaining confusion: Jochen mentions the possibility of having different exception reporting functions in different frames. I don't yet see how to do that. Is this obvious?

share|improve this question
    
The exception is still output when you double click the icon. It's just that you're not printing standard out anywhere. – Falmarri Jan 22 '11 at 22:22
    
Agreed! I'm looking for people to recommend an elegant/standard way to expose stdout or stderror to the user. – Andrew Jan 22 '11 at 22:29
1  
The class App is a frame, usually derived from tk.Frame. If your program had two different frame classes that were used for different things, then each frame class could have its own version of report_callback_exception() that displays the error in a different way. – Don Kirkby Aug 24 '15 at 18:42
up vote 17 down vote accepted

There is report_callback_exception to do this:

import traceback
import tkMessageBox

# You would normally put that on the App class
def show_error(self, *args):
    err = traceback.format_exception(*args)
    tkMessageBox.showerror('Exception',err)
# but this works too
tk.Tk.report_callback_exception = show_error

If you didn't import 'Tkinter as tk', then do

Tkinter.Tk.report_callback_exception = show_error
share|improve this answer
    
Excellent, thank you! Would you mind expanding on your comment about putting that on the App class? – Andrew Jan 22 '11 at 23:06
1  
@Andrew: I just meant that usually you would write your application in a subclass that overwrites this method, instead of changing the Tk class itself. Just in case you want different report functions in different frames. – Jochen Ritzel Jan 22 '11 at 23:13

First a followup: Just today, a patch on the CPython tracker for the tkinter.Tk.report_callback_exception docstring made it clear that Jochen's solution is intended. The patch also (and primarily) stopped tk from crashing on callback exceptions when run under pythonw on Windows.

Second: here is a bare-bones beginning of a solution to making stderr function with no console (this should really be a separate SO question).

import sys, tkinter

root = tkinter.Tk()

class Stderr(tkinter.Toplevel):
    def __init__(self):
        self.txt = tkinter.Text(root)
        self.txt.pack()
    def write(self, s):
        self.txt.insert('insert', s)

sys.stderr = Stderr()

1/0 # traceback appears in window

More is needed to keep the popup window hidden until needed and then make it visible.

share|improve this answer

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