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In my coding various places i need to change integer values to string values. To convert the cast integer to string i use concatenation with "" to integer.

i found an another way that is using String.parseInt(..); method.

my question is i do not know which is optimized method to do casting in java and how it is optimized?. is there any other way to cast except my code?

my sample code:

int total = mark1 + mark2;
String str_total = ""+total;  // currently doing.

.......

String str_total = String.parseInt(total);  // i am planning to do.
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1  
got two questions for you; 1) how many times do you intend on doing this operation? (in other words can you justify the need for optimization?) and 2) did you try to benchmark it? :) –  posdef Jul 11 '12 at 7:40
2  
There is no parseInt method in String. You probably meant valueOf. –  Denys Séguret Jul 11 '12 at 7:43
    
i want good coding for performance wise so that i need optimize. –  M.A.Murali Jul 11 '12 at 7:43
    
If you just use it a few times (as opposed to a few thousand times at least), code readability is more important than performance, because you will not win more than a few microseconds from that... –  brimborium Jul 11 '12 at 7:49
    
Beware the dangers of premature optimizations and particularly micro-optimizations. –  Steinin Jul 11 '12 at 8:03

5 Answers 5

up vote 1 down vote accepted

You can also use -

String str_total = String.valueOf(total); 

OR

Use Integer rahter than int in your code and then use toString() on Integer like

Integer total = mark1 + mark2;
String str_total = total.toString();

In your code -

String str_total = "" + total;

Actually you are creating 2 new string objects first for "" and second str_total

but in my code only one new string object will be created.

Implementation of valueOf in String class is as follows -

   public static String valueOf(int i) {
        return Integer.toString(i);
    }

here toString will create a new String object

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please explain how the code is optimized than my code? i mean fast running and memory/object utilization. –  M.A.Murali Jul 11 '12 at 7:46
    
Thanks for answer i go with String.valueOf(int). –  M.A.Murali Jul 11 '12 at 7:56

The String.valueOf(int) method calls Integer.toString(int).

Doing string concatenation (""+i), first i is converted to an Integer and then the function Integer.toString is called to get String value of the integer.

Therefor calling String.valueOf(int) will perform better than string concatenation since it skips the creation of the Integer object.

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Thanks for answer and explanation .i go with String.valueOf(int). –  M.A.Murali Jul 11 '12 at 7:55

Another method to do it:

int intValue = 1;    
String str1 = String.format("%d", intValue);

You can also control how the value is shown (leading zeros, base, etc). Find more information here.

The cool thing about this is, that in my opinion, this

String str2 = String.format("Blabla %d blupp %dm etc", intValue1, intValue2);

looks much more readable (if you are familiar with the formats), then

String str3 = "Balbla " + intValue1 + " blupp " + intValue2 + "m etc"; 

(+ you get more control over how it's shown).

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String str_total = String.valueOf(total); 

String.valueOf(int) is more efficient than ""+int so prefer to use String.valueOf(int)

Refer this link for measurement in performance .

In Jdk > 1.5 you can also use this.

String str_total= String.format ("%d", total);
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Since the Integer cannot hold such big values which will cause it to be represented with the scientific notation I think that

Integer.toString()

will totally work.

If you want to format your number in some way you should use NumberFormat like this:

Integer myInt = 31535468;
NumberFormat nf = NumberFormat.getInstance();
String myString = nf.format(myInt);

I think that using NumberFormat is the most conventional way here.

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