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Write a recursive, boolean -valued  method , containsVowel, that accepts a string  and returns true  if the string  contains a vowel. A string  contains a vowel if: The first character  of the string  is a vowel, or The rest of the string  (beyond the first character ) contains a vowel This is for my Programing Lab Here is what I have the complier sas that there is an error and it is not offering help.
Please Help me correct what is wrong thank you.

boolean containsVowel(String s)
{ 
    if(s.containsVowel("aeiouAEIOU")) 
    {
        return true;
    }
    else 
    {
        (s.substring(!=));
        return false
    }
}

Compiler error(s)

codelab analysis

Remarks: You seem to have an error in compilation

Here is another question that I did earlier:

Write a recursive, int -valued  method , len, that accepts a string  and returns the number of characters  in the string . The length of a string  is: 0 if the string  is the empty string  (""). 1 more than the length of the rest of the string  beyond the first character.

Here is the answer My Programing Lab was looking for:

int len(String s)
{
if(s.equals("")){
    return 0;
}
 else {
return (1+len(s.substring(1)));}
}
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closed as too localized by Dmitry Beransky, Luiggi Mendoza, Sotirios Delimanolis, cmbaxter, Andrew Barber May 24 '13 at 3:33

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1  
Walk through your code as if you were the Java Virtual Machine, the JVM, and you'll see that if you got it to compile it would run forever. –  Hovercraft Full Of Eels May 23 '13 at 23:01
6  
What sort of compiler just says "there is an error"? Surely, it must say something of use. –  Luchian Grigore May 23 '13 at 23:01
1  
I am My programming lab uses a Java complier without the need of the rest of the codeing –  Alorva Ex May 23 '13 at 23:08
2  
Note that your style of programming could benefit by greatly if you would compile your code very frequently, perhaps after adding only 1 or 2 lines, and then not add any new code until you fix your current code and it compiles correctly. This technique should help you avoid ending up with a rat's nest of a hundred errors. –  Hovercraft Full Of Eels May 23 '13 at 23:12
1  
@Alorva Ex You are very confused. It is not difficult to download Netbeans and test your code in Netbeans, before going to myprogramminglab.com when it fully compiles and works as tested by you, for example. –  Patashu May 23 '13 at 23:15

4 Answers 4

This code has a few problems in it.

  1. s.containsVowel. s is a String and the Java String doesn't have a containsVowel method. You should be calling your own containsVowel method instead, not that String one (that doesn't exist).

  2. If you make that change, this will be an infinite recursive method because you don't have a "base case". A case that makes it exit.

  3. (s.substring( !=)); does not compile. I don't know what you're even trying to do here.

  4. return false does not end with a semicolon. It needs to if you want your code to compile.

Here's the way you should approach this algorithm in pseudocode

containsVowel(String input)
    if (empty(input)) return false  //the base case
    char firstChar = getFirstCharOf(input)
    return firstChar.isAnyOf("vowelCharacters") || containsVowel(inputWithoutFirstChar(input))
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Also of note: his containsVowel method isn't static, so he either needs to declare it as static or call it on an instance of whatever class this belongs to. +1 for everything, especially the pseudocode (I might use "or" instead of ||) –  Henry Keiter May 23 '13 at 23:08
1  
+1 for point number three. Made my afternoon. –  Ron Dahlgren May 23 '13 at 23:12
    
and for thats where u cant do it in mt programming lab –  Alorva Ex May 23 '13 at 23:23
    
@Alorva Ex What? –  Patashu May 23 '13 at 23:28
    
when u use my programming lab u skip everything that u would write in netbeans and just write the actually method that is need look above at my second question and answer. –  Alorva Ex May 23 '13 at 23:30

Let's just throw out this code and start from base principles. (My one remark for the code you had is that programs must be written EXACTLY how the language expects them to be written - programs are not mind readers, they do not know what you want, they only know what you typed, and things like (s.substring(!=)); are 100% meaningless, even if it makes perfect sense in your head.)


The idea of a recursive method is that it has a base case and a repetition condition.

The base case for containsVowel is the empty string, "" - return false.

The repetition condition is if the current character is not a vowel, we return true, else we call containsVowel with the string one character shorter. This way every character is checked until we find a vowel, and if we run out of characters (base case) we abort.

You can check if the current character is a vowel by looking at s.charAt(0) and using indexOf to see if it is contained in "aeiouAEIOU".

You can call yourself on the string one shorter by doing return containsVowel(s.substring(1)); (which creates a string out of s starting at the second character, e.g. one shorter)

Can you see how to write the method now?

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Lines in java end with a semicolon. You seem to be missing one.

return false
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  • containsVowel() is not a valid method for String.
  • Statements end in semi-colons (so return false becomes return false;
  • s.substring(!=) is a syntax error, since != is not a valid symbol.
  • s.substring() creates a new String, and you're not capturing the result of that (after the corrected symbol, of course) in any variable.

There's an easier way to decipher if a String has a vowel - it involves regular expressions, the set of vowels you want to check (what about the word fly?), and can be verified using a graphical regex checker. I'll leave this portion as an exercise to the reader.

share|improve this answer
    
It's homework, so the answer has to be recursive. –  Patashu May 23 '13 at 23:16
    
I did say that a regex-based way was easier, not what the requirements prescribed. At least now I understand what that bare s.substring() was for, though. –  Makoto May 23 '13 at 23:18
    
yeah if u take out that code then nothing will be right cause the complier will say you need to be using substring! –  Alorva Ex May 23 '13 at 23:31

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