-3

How I can get number from user that only includes 5 and 6? I try for loop but it's not work,also try convert the input to string,also no work.how to do?

Number = int(input('enter num')
for x in number:
    if 4<x<7:
      print('ok)
    else:
      print ('no')
3
  • 1
    Please post the required minimal, reproducible example. The code you have here fails from several syntax errors, and shows no attempt to debug. Insert a print statement or two for tracing your variable values. It's hard to write your own program when you aren't 100% sure what values you have.
    – Prune
    Mar 15, 2020 at 0:39
  • Why would you convert the input to string, when input is already string when it's entered?
    – Prune
    Mar 15, 2020 at 0:40
  • also try to convert to string, also no workz What did you try? Please provide a minimal reproducible example, and clarify what exactly the issue is.
    – AMC
    Mar 15, 2020 at 1:44

4 Answers 4

1

In python 3, input returns a string. You can easily filter the numbers you want with

val = int(''.join(c for c in input('enter num: ') if c in '56'))
0
0

Not sure, why do you need a loop there and why you use x. Try this:

number = int(input('enter num')
if number in [5, 6]:
    print('ok)
else:
    print ('no')
0
0

While I'm sure the others might work, this is yet another way to check for a specific number.

#Gets the number from the user
Number = int(input("Enter Num"))

#checks to see if the number is either 5 or 6
if (Number == 5 or Number == 6):
  print("ok") #if it is, it prints ok
else:
  print("No") #if it isn't, it prints no
-1

It is probably easier if you check for digits 5 and 6 before converting to int.

Number_str = input('enter num')
for x in Number_str:
    if not ord('4')<ord(x)<ord('7'):
        print ('no')
        break
else:
    Number = int(Number_str)
    print('ok')
0

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