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Why is this behavior difference between parseInt() and parseFloat()?

I have a string that contains 08 in it.

When I write this code:

alert(hfrom[0]);
alert(parseInt(hfrom[0]));
alert(parseFloat(hfrom[0]));

The following output is generated:

08
0
8

Why does parseInt and parseFloat return two different results in this case?

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1  
Check this SO post: stackoverflow.com/questions/6900857/… It is because parseInt assume 08 to be parsed as Octal base as it starts with 0 –  Chandu Mar 2 '12 at 5:30
    
Running on jsfilddle in chrome I get 8 for both functions: jsfiddle.net/nqNvw –  gideon Mar 2 '12 at 5:31
2  
@gideon, that's because you passed in numbers which were already converted to base-10 integers. If you pass in strings it behaves differently. See: jsfiddle.net/nqNvw/1 (this is definitely a wtfjs kind of thing) –  Ben Lee Mar 2 '12 at 5:33
    
aha! Thanks @BenLee –  gideon Mar 2 '12 at 5:33

2 Answers 2

up vote 8 down vote accepted

parseInt() assumes the base of your number according to the first characters in the string. If it begins with 0x it assumes base 16 (hexadecimal). Otherwise, if it begins with 0 it assumes base 8 (octal). Otherwise it assumes base 10.

You can specify the base as a second argument:

alert(parseInt(hfrom[0], 10)); // 8

From MDN (linked above):

If radix is undefined or 0, JavaScript assumes the following:

If the input string begins with "0x" or "0X", radix is 16 (hexadecimal). If the input string begins with "0", radix is eight (octal). This feature is non-standard, and some implementations deliberately do not support it (instead using the radix 10). For this reason always specify a radix when using parseInt. If the input string begins with any other value, the radix is 10 (decimal).

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Also see the Examples section on that page. –  Paulpro Mar 2 '12 at 5:33

you should always include the radix param with parseInt() ex parseInt('013', 10) otherwise it can convert it to a different numeric base:

parseInt('013') === 11
parseInt('013', 10) === 13
parseInt('0x13') === 19
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