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Okay, I'm fairly new to java but I'm learning quickly(hopefully). So anyway here is my problem:

I have a string(For example we will use 2.9), I need to change this to either int or long or something similar that I can use to compare to another number.

As far as I know int doesn't support decimals, I'm not sure if long does either? If not I need to know what does support decimals.

This is the error: java.lang.NumberFormatException: For input string: "2.9" with both Interger.parseInt and Long.parseLong

So any help would be appreciated!

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An integer is a number that can be written without a fractional or decimal component en.wikipedia.org/wiki/Integer – Steve Kuo Jan 15 '13 at 22:19
up vote 1 down vote accepted

Both int and long are integer values (being long the representation of a long integer that is an integer with a higher capacity). The parsing fails because those types do not support a decimal part.

If you were to use them and enforce a casting you're relinquishing the decimal part of the number.

double iAmADouble = 100 / 3;
int iWasADouble = (int)iAmADouble; //This number turns out to be 33

Use double or float instead.

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Awesome thank you! – Tazmanian Tad Jan 15 '13 at 22:18

You can't directly get int (or) long from decimal point value.

One approach is:

First get a double value and then get int (or) long.

Example:

int temp =  Double.valueOf("20.2").intValue();
System.out.println(temp);

output:

20
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Or, better, (int)Double.parseDouble("20.2") so as to avoid creating a throw-away Double object. – Lawrence Dol Jan 15 '13 at 22:59

int and long are both integer datatypes, 32-bit and 64-bit respectively. You can use float or double to represent floating point numbers.

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That string (2.9) is neither integer nor long. You should use some decimal point types, for example float or double.

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