1

I am trying to turn str '3' into float 3.00

va = '%.2f' % float('3')
print va
print isinstance(va, float)

3.00
False

---

vb = float('%.2f' % float('3'))
print vb
print isinstance(vb, float)

3.0
True

I need code that outputs

3.00  # correct decimal places
True  # is float
1

2 Answers 2

6

You are confusing float values with their string representation. float(3) is enough, and whenever you need to print one, use formatting.

va = float('3')
print format(va, '.2f')
print isinstance(va, float)

float objects themselves have no concept of a number of decimal places to track.

3
  • I am starting with string '3', not number 3.
    – onepiece
    Apr 4, 2014 at 13:27
  • @onepiece: that makes no difference to the answer though.
    – Martijn Pieters
    Apr 4, 2014 at 13:30
  • Actually I see what you're saying. float() is for float, format() is for string. Used for different purposes.
    – onepiece
    Apr 4, 2014 at 13:37
0

Just use float("3") to achieve that but notice that a float does not have a specific number of digits after the decimal point; that's more a feature of outputting a float using string formatting. So you can use '%.2f' % float("3") to see your float value with two decimal digits.

Your tests were all flawed in several aspects.

va = '%.2f' % float('3') created a str which looked like a float, not a float.

vb = float('%.2f' % float('3')) created a decent float but your printing test print vb then did not format the float to using two decimal digits after the point. It just used the default formatting (which prints one trailing .0 to make clear that this is not an int).

2
  • So basically for string '3', I can only display '3.00' as a string?
    – onepiece
    Apr 4, 2014 at 13:30
  • If you want to display something, it always has to be a string (unless we talk about graphics). The internal representation of a float is quite different from that 3.0, so anything with a 3 in front is a string of characters, and to display this, you first have to convert your float into such a string. Only when using print vb this is done implicitly (using default parameters for the format).
    – Alfe
    Apr 4, 2014 at 17:32

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