6

I want to see if a character in my string equals a certain other char value but I do not know what the char in the string is so I have used this:

if ( fieldNames.charAt(4) == "f" )

But I get the error:

"Operator '==' cannot be applied to 'char', 'jav.lang.String'"

But "g" == "h" seems to work and I know you can use '==' with char types.

Is there another way to do this correctly? Thanks!

1
  • 11
    "f"is a String, 'f' is a char. Nov 1 '14 at 11:47
21
if ( fieldNames.charAt(4) == 'f' )

because "f" is a String and fieldNames.charAt(4) is a char. you should use 'f' for check char

"g" == "h" works because both g and h are Strings

and you shouldn't use "g" == "h" you should use "g".equals("h") instead . you can use == for primitive data types like char,int,boolean....etc.but for the objects like String it's really different. To know why read this

but you can use also

'g' == 'h' 

you should wrap Strings by double quotation and char by single quotation

String s="g";

char c='g';

but char can only have one character but String can have more than one

String s="gg";  valid

char c='gg';  not valid
4
  • 2
    Thank you so much! I never knew that.
    – Mayron
    Nov 1 '14 at 11:49
  • 2
    "g" == "h" compiles but does't work. Worth pointing out that you can compare char with == but you cannot compare String. Nov 1 '14 at 11:57
  • @BoristheSpider yes.i added it to the answer.thanks! Nov 1 '14 at 12:06
  • 1
    @FastSnail Sure sorry. No clue why I didn't accept it in the first place!
    – Mayron
    Jul 17 '15 at 13:19
1

I was having the same problem, but I was able to solve it using:

if (str.substring(0,1).equals("x") )

the substring can be used in a loop str.substring(i, i + 1)

charAt(i).equals('x') will not work together

0

This works:

if (String(fieldNames.charAt(4)) == "f")

0

.equals() can still be used, but you have to remember that chars require apostrophes(') instead of quotes("). For example: someChar.equals('c') is valid for chars and someString.equals("c") is valid for strings.

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.