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I'm a beginner in python. I am writing a code with simple GUI, in which there is a menu item "Open" which when clicked asks for image file with tkFileDialog. It does fine to read the filename and path.I want the filename to be returned so that image can be opened and displayed in tkinter Label. But i don't know how to return filename.

here is my code

from Tkinter import Frame, Tk, Label, Text, Menu, END, BOTH, StringVar
from PIL import ImageTk, Image
import numpy
import tkFileDialog

class DIP(Frame):
    def __init__(self, parent):
        Frame.__init__(self, parent) 
        self.parent = parent        
        self.initUI()

    def initUI(self):

        self.parent.title("DIP Algorithms- Simple Photo Editor")
        self.pack(fill=BOTH, expand=1)

        menubar = Menu(self.parent)
        self.parent.config(menu=menubar)
        fileMenu = Menu(menubar)
        self.fn=''
        fileMenu.add_command(label="Open", command=self.onOpen)
        menubar.add_cascade(label="File", menu=fileMenu)
        print self.fn #prints nothing here
        #self.img=Image.open(self.fn)


    def onOpen(self):

        ftypes = [('Image Files', '*.tif *.jpg *.png')]
        dlg = tkFileDialog.Open(self, filetypes = ftypes)
        filename = dlg.show()
        self.fn=filename
        print self.fn #prints filename with path here


    def onError(self):
        box.showerror("Error", "Could not open file")    

def main():

    root = Tk()
    ex = DIP(root)
    root.geometry("1280x720")
    root.mainloop()  


if __name__ == '__main__':
    main()

I even tried by creating an attribute for filename, but no help.......

share|improve this question
up vote 1 down vote accepted

Look more closely at your code. You're running initUI() before onOpen(), and then you are not running initUI(), which sets the image, after setting self.fn.

To fix this, you need to move your code that changes the image label to another function in your class, like this:

def setImage(self):
    print self.fn #prints something now!
    self.img=Image.open(self.fn)

Then, at the end of onOpen(), you need to call this function.

def onOpen(self):
    ...
    self.setImage()
share|improve this answer
    
thanks for the answer. I'll need the image in other callbacks too. How can i do this? – bistaumanga Jan 6 '13 at 2:34
1  
After self.img is set once by setImage(self), after it is opened, it should be always available to other callbacks as self.img. – 8chan Jan 6 '13 at 2:35
    
thank you very much for your guidance.My problem is solved. – bistaumanga Jan 6 '13 at 3:18
    
Can you do me 1 more favour. sorry to disturb you again but can you help me with this: stackoverflow.com/questions/14291434/… – bistaumanga Jan 12 '13 at 7:52

This behaviour is to be expected. When you print self.fn in initUI the user hasn't selected a file yet. When you print in onOpen the user has selected a file, so it displays properly. self.fn does get set properly, you are just printing it too early.

If you want to display an image, do so once the user selects a file.

def onOpen(self):
    ftypes = [('Image Files', '*.tif *.jpg *.png')]
    dlg = tkFileDialog.Open(self, filetypes = ftypes)
    filename = dlg.show()
    self.fn = filename
    if self.fn: # If a file was selected
        # Display image in label / call display function
share|improve this answer
    
thanks for the answer. I'll need the displayed image in other callbacks too. How can i do this? – bistaumanga Jan 6 '13 at 2:33

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