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I seem to have a problem with my script and I hope you guys can help me. I am just beginning with programming so please bear with me. My project is that when somebody fills in any number between 1000-1199 it has to show answer A. If it's any number between 1200-1299 it has to show answer B. But the IF and ELIF statement is not working properly. It skips both of them and goes straight to ELSE.

The script here:

import easygui

var1 = range(1000, 1200)
var2 = range(1200, 1300)

input = easygui.enterbox(msg="Fill in your number", title="Input1")

if input == var1:
    easygui.msgbox(msg="Answer A", title="title1")
elif input == var2:
    easygui.msgbox(msg="Answer B", title="title2")
else:
    easygui.msgbox(msg="Nothing", title="Title3")

Thanks in advance!

Problem solved! Thanks for all the answers.

1

Below code will help you.

  1. Don't use python keywords as variables in line input.
  2. when we receive input from GUI it returns a string, so convert it to int
  3. use in rather ==.

    import easygui
    var1 = range(1000, 1200)
    var2 = range(1200, 1300)
    input1 = int(easygui.enterbox(msg="Fill in your number", title="Input1"))
    
    if input1 in var1:
        easygui.msgbox(msg="Answer A", title="title1")
    elif input1 in var2:
        easygui.msgbox(msg="Answer B", title="title2")
    else:
        easygui.msgbox(msg="Nothing", title="Title3")
    
    print type(input1), input1
    
  • Thank you for your advice, it works. :) – Mr J. Mar 28 '17 at 9:59
  • can you mark it answered ? – AB Abhi Mar 28 '17 at 9:59
  • Can you tell me how to do that? – Mr J. Mar 28 '17 at 10:08
  • you just did... thank you :) – AB Abhi Mar 28 '17 at 10:11
  • why is there a downvote ? – AB Abhi Mar 28 '17 at 10:47
1

using in statement and parse input's value to integer type: input = int(input)

import easygui

var1 = range(1000, 1200)
var2 = range(1200, 1300)

input = easygui.enterbox(msg="Fill in your number", title="Input1")
input = int(input)

if input in var1:
    easygui.msgbox(msg="Answer A", title="title1")
elif answer in var2:
    easygui.msgbox(msg="Answer B", title="title2")
else:
    easygui.msgbox(msg="Nothing", title="Title3")
  • Thank you man! It worked. Input's value had to be a integer type. – Mr J. Mar 28 '17 at 9:55
0

Try it like this:

import easygui

var1 = range(1000, 1200)
var2 = range(1200, 1300)

my_input = easygui.enterbox(msg="Fill in your number", title="Input1")

if int(my_input) in var1:
    easygui.msgbox(msg="Answer A", title="title1")
elif int(my_input) in var2:
    easygui.msgbox(msg="Answer B", title="title2")
else:
    easygui.msgbox(msg="Nothing", title="Title3")
  • Thank you for your quick answer, I have tried it but it still won't work. Can it be that Python is not recognizing the IF statement? – Mr J. Mar 28 '17 at 9:49
  • I edited the code so you can try it again. Input is a reserved word so I changed it to my_input. – zipa Mar 28 '17 at 9:57

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