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what is the best way to extract a substring from a string in android?

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6 Answers 6

substring():

str.substring(startIndex, endIndex); 
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If you know the Start and End index, you can use

String substr=mysourcestring.subString(startIndex,endIndex);

If you want to get substring from specific index till end you can use :

String substr=mysourcestring.subString(startIndex);

If you want to get substring from specific character till end you can use :

String substr=mysourcestring.subString(mysourcestring.indexOf("characterValue"));
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5  
If your problem is solved then please mark this question as solved... –  Kartik Mar 24 '11 at 6:26
    
suppose i want the index of some character in my string i can use .indexof("char"). But in my situation sometimes that character might not be in the string. then i want to get an empty string. how to handle this error? –  Abhinav Raja Jun 25 '14 at 23:32
    
Just test the return value first. Something like: if (str.indexOf("char") > 0) –  Chuck Claunch Nov 11 '14 at 19:00
    
Great answer, but substring needs to be all lowercase. So it's substring() not subString() –  CodyMace Feb 6 at 16:45

Here is a real world example:

String hallostring = "hallo";
String asubstring = hallostring.substring(0, 1); 

In the example asubstring would return: h

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use text untold class from android:
TextUtils.substring (charsequence source, int start, int end)

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You can use subSequence , it's same as substr in C

 Str.subSequence(int Start , int End)
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The best way to get substring in Android is using (as @user2503849 said) TextUtlis.substring(CharSequence, int, int) method. I can explain why. If you will take a look at the String.substring(int, int) method from android.jar (newest API 22), you will see:

public String substring(int start) {
    if (start == 0) {
        return this;
    }
    if (start >= 0 && start <= count) {
        return new String(offset + start, count - start, value);
    }
    throw indexAndLength(start);
}

Ok, than... How do you think the private constructor String(int, int, char[]) looks like?

String(int offset, int charCount, char[] chars) {
    this.value = chars;
    this.offset = offset;
    this.count = charCount;
}

As we can see it keeps reference to the "old" value char[] array. So, the GC can not free it.

In the newest Java it was fixed:

String(int offset, int charCount, char[] chars) {
    this.value = Arrays.copyOfRange(chars, offset, offset + charCount);
    this.offset = offset;
    this.count = charCount;
}

Arrays.copyOfRange(...) uses native array copying inside.

That's it :)

Best regards!

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