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I have found lots of books in java saying switch statement is faster than if else statement. But I didnot find antwhere saying why switch is faster than if.


I have a situation i have to choose any one item out of two i can use either of the following way


case BREAD:
     //eat Bread
    //leave the restaurant


or using if statement like the following

if(item== BREAD){
//eat Bread
//leave the restaurant

considering item and BREAD is constant int value

In the above example which is faster in action and why?

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Maybe this is an answer also for java:… – Tobiask Jul 15 '11 at 10:56
In general, from Wikipedia: If the range of input values is identifiably 'small' and has only a few gaps, some compilers that incorporate an optimizer may actually implement the switch statement as a branch table or an array of indexed function pointers instead of a lengthy series of conditional instructions. This allows the switch statement to determine instantly what branch to execute without having to go through a list of comparisons. – Felix Kling Jul 15 '11 at 10:56
The top answer to this question explains it pretty well. This article explains everything pretty well too. – bezmax Jul 15 '11 at 10:56
I would hope that in most circumstances, an optimising compiler would be able to generate code that had similiar performance characteristics. In any case, you would have to be calling many millions of times to notice any difference. – Mitch Wheat Jul 15 '11 at 10:58
You should be wary of books that make statements like this without explanation/proof/reasoning. – matt b Jul 15 '11 at 12:08

4 Answers 4

up vote 39 down vote accepted

Because there are special bytecodes that allow efficient switch statement evaluation when there are a lot of cases.

If implemented with IF-statements you would have a check, a jump to the next clause, a check, a jump to the next clause and so on. With switch the JVM loads the value to compare and iterates through the value table to find a match, which is faster in most cases.

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Doesn't iterate translate to "check, jump"? – fivetwentysix Jul 15 '11 at 11:06
@fivetwentysix: No, refer to this for info: . Quote from article: When the JVM encounters a tableswitch instruction, it can simply check to see if the key is within the range defined by low and high. If not, it takes the default branch offset. If so, it just subtracts low from key to get an offset into the list of branch offsets. In this manner, it can determine the appropriate branch offset without having to check each case value. – bezmax Jul 15 '11 at 11:11
(i) a switch may not be translated into a tableswitch bytecode instruction - it may become a lookupswitch instruction which performs similarly to an if/else (ii) even a tableswitch bytecode instructions may be compiled into a series of if/else by the JIT, depending on factors such as the number of cases. – assylias Mar 31 '14 at 13:58

A switch statement is not always faster than an if statement. It scales better than a long list of if-else statements as switch can perform a lookup based on all the values. However, for a short condition it won't be any faster and could be slower.

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Please constrain "long". Greater than 5? Greater than 10? or more like 20 - 30? – Geronimo Jan 17 '12 at 18:25
I suspect it depends. For me its 3 or more suggests switch would be clearer if not faster. – Peter Lawrey Jan 17 '12 at 22:49
Thanks, I agree on clarity too – Geronimo Jan 17 '12 at 22:59

At the bytecode level, subject variable is loaded only once into processor register from a memory address in the structured .class file loaded by Runtime,and this is in a switch statement; whereas in an if-statement, a different jvm instruction is produced by your code-compiling DE, and this requires that each variable be loaded in to registers although same variable is used as in next preceeding if-statement. If you know of coding in assembly language then this would be commonplace; although java compiled coxes are not bytecode, or direct machine code, the conditional concept hereof is still consistent. Well, I tried to avoid deeper technicality upon explaining. I hope I had made the concept clear and demystified. Thank you.

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If you are performing an insane amount of checks like 100+ you may want to consider some abstraction.

You have incoming packets that range from ids 0 through 255. You use maybe 150 of them. You may want to consider something like the below instead of a switch of 150 ids.

Packets[] packets = new Packets[150];

static {
     packets[0] = new Login();
     packets[2] = new Logout();
     packets[3] = new GetMessage();
     packets[7] = new AddFriend();
     packets[9] = new JoinGroupChat(); // etc... not going to finish.

static final byte[] INDEX_LIST = { 
  0, 2, 3, 7, 9, // etc... Not going to do it, but this will convert packet id to index.

public void handlePacket(IncomingData data)
    int id = data.readByte();


I should also point out that index list isn't really needed and would probably slow the code down anyways. It was merely a suggestion so you don't have empty locations. Also not to mention is this situation you're only losing out of 106 indexes. I'm not 100% sure, but I believe each of these are pointing to null anyways so no real memory issues would be present.

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Why the double indirection? Since ID must be constrained anyway, why not just bounds-check the incoming id as 0 <= id < packets.length and ensure packets[id]!=null and then do packets[id].execute(data)? – Lawrence Dol Jul 30 '14 at 18:02

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