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I am creating a drop-down menu using tkinter. It has a submenu "File" and a command "Open" with an entry to allow the user to type the path of the file they want to open and click a button to open it. Currently I'm trying to use get() to retrieve the entry text when the button is clicked, as shown in my code below:

# Assign 5
from tkinter import *

def getFile():
'Displays the text in the entry'
print(E1.get())

def openFile():
'Creates enty widget that allows user file path and open it'
win = Tk()
#add label 
L1 = Label(win, text="File Name")
#display label
L1.pack()
#add entry widget
E1 = Entry(win, bd = 5)
#display entry
E1.pack(fill=X)
#create buttons 
b1 = Button(win, text="Open", width=10, command = getFile)
b2 = Button(win, text = "Cancel", width=10, command=win.quit)
#display the buttons
b1.pack(side = LEFT)
b2.pack(side = LEFT)

# create a blank window 
root = Tk()
root.title("Emmett's awesome window!")

#create a top level menu
menubar = Menu(root)  
# add drop down "File" menu with command "Open" to the menubar
fileMenu = Menu(menubar, tearoff=0)
menubar.add_cascade(label="File", menu=fileMenu)
fileMenu.add_command(label = "Open", command = openFile)    

# display the menu
root.config(menu=menubar)
root.mainloop()

But I am getting the following error:

Exception in Tkinter callback
Traceback (most recent call last):
File      "/Library/Frameworks/Python.framework/Versions/3.5/lib/python3.5/tkinter/__init__.py", line 1550, in __call__
return self.func(*args)
File "/Users/emmettgreenberg/Documents/2016/CS521/assign5/assign5_2.py", line  6, in getFile
print(E1.get())
NameError: name 'E1' is not defined

From what I understand, I do not need to pass E1 as an argument when I call getFile . How can I fix this?

1

Since E1 is a local variable inside openFile() and so it cannot be accessed inside getFile(). Either you make E1 global or pass the content of E1 via getFile():

def getFile(filename):
    print(filename)

def openFile():
    ...
    b1 = Button(win, text="Open", width=10, command=lambda: getFile(E1.get()))
    ...

Or you can define global StringVar to hold the filename and associate it with E1:

def getFile():
    print(filename.get())

def openFile():
    ...
    E1 = entry(win, bd=5, textvariable=filename)
    ...

root = Tk()
filename = StringVar()

BTW, better change win = Tk() to win = Toplevel() inside openFile().

  • Thanks, I used lambda to pass the filename and it works but I don't understand, why is lambda needed? Also, why use Toplevel() instead of Tk()? – Emmett Greenberg Nov 15 '16 at 15:58
  • @EmmettGreenberg In general, an tkinter app should have exactly 1 Tk master application widget. Having more than one can lead to subtle bugs. – Terry Jan Reedy Nov 15 '16 at 16:45
  • lambda is used in order to pass any resources defined within the scope of openFile() function to getFile() function. Using Tk() will initialize another instance of root window which is independent to the first created root window, but Toplevel() will be within the hierarchy of the first root window. Seems both can do the same effect, but the meanings behind are different. – acw1668 Nov 16 '16 at 0:35

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