-4

So, i was working on a program with python 2.7 and the output was not showing up. Heres the source code:

print("What operator do you want to use?")
operator = input()
print("Enter the first value")
val1 = int(input())
print("Enter the second value")
val2 = int(input())
if val1 == 45 and val2 == 3 and operator == "*":
    print(555)
if val1 == 56 and val2 == 9 and operator == "+":
    print(77)
if val1 == 56 and val2 == 6 and operator == "/":
    print(4)
elif operator == "/":
    i = val1/val2
    print(i)
elif operator == "*":
    j = val1*val2
    print(j)
elif operator == "+":
    k = val1+val2
    print(k)
elif operator == "-":
    l = val1-val2
    print(l)

Heres my inputs:

What operator do you want to use?
"+"
Enter the first value
20
Enter the second value
20

Process finished with exit code 0

Where the result was supposed to appear, theres just a blank and if i enter the operator without quotes this error happens:

Traceback (most recent call last): File "C:/Users/USER/PycharmProjects/newPythonProject/Tests.py", line 2, in <module> operator = input() File "<string>", line 1 + ^ SyntaxError: unexpected EOF while parsing
1
  • 4
    Type +, not "+" with the quotes. And put the message into the input method as input("What operator do you want to use?") you get just one line and get rid of the print – azro Oct 25 '20 at 9:28
2

You included quotation marks in your input for the operator.

1
  • Ya but this is what i get when i dont put quoatation: "" Traceback (most recent call last): File "C:/Users/USER/PycharmProjects/newPythonProject/Tests.py", line 2, in <module> operator = input() File "<string>", line 1 + ^ SyntaxError: unexpected EOF while parsing"" – Nikunj Mundhra Oct 25 '20 at 9:53
-1

It seems you entered the operator in quotes

1
  • Ya but this is what i get when i dont put quoatation: "" Traceback (most recent call last): File "C:/Users/USER/PycharmProjects/newPythonProject/Tests.py", line 2, in <module> operator = input() File "<string>", line 1 + ^ SyntaxError: unexpected EOF while parsing"" – Nikunj Mundhra Oct 25 '20 at 10:00
-1

In python 3.x the input() function does not interpret, it always returns a string.

However, in python 2.x the input() function returns the most likely data-type, sloppily said. As you want your input to be a string you can use raw_input, which does not interpret the input and always returns a string.

This said, your input is already a string. Thus, your quotation marks "" are not just redundant, they alter the input string.

As python 2.7, in your case, interprets its input, the casting int(input()) is not inherently necessary, as input() will automatically assume that your input 20 is of type int.

Use the below code and your function should work.

print("What operator do you want to use?")
operator = raw_input()
print("Enter the first value")
val1 = int(input())
print("Enter the second value")
val2 = int(input())
if val1 == 45 and val2 == 3 and operator == "*":
    print(555)
if val1 == 56 and val2 == 9 and operator == "+":
    print(77)
if val1 == 56 and val2 == 6 and operator == "/":
    print(4)
elif operator == "/":
    i = val1/val2
    print(i)
elif operator == "*":
    j = val1*val2
    print(j)
elif operator == "+":
    k = val1+val2
    print(k)
elif operator == "-":
    l = val1-val2
    print(l)

With following inputs:

What operator do you want to use?
+
Enter the first value
20
Enter the second value
20

2
  • Ya but this is what i get when i dont put quoatation: "" Traceback (most recent call last): File "C:/Users/USER/PycharmProjects/newPythonProject/Tests.py", line 2, in <module> operator = input() File "<string>", line 1 + ^ SyntaxError: unexpected EOF while parsing"" – Nikunj Mundhra Oct 25 '20 at 9:55
  • You are right. You can solve your problem by using raw_input instead of input. I will adapt my answer on this one. – rot8 Oct 25 '20 at 10:07

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