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I have to swap two variables number value without using third variable. What is the simple solution ?

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The simple solution is to use a third variable and smack the guy in the face who insists you do without. –  Will Mar 17 '11 at 20:29
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Please tag this as homework if it is homework. –  Håvard S Mar 17 '11 at 20:30
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marked as duplicate by Michael Mrozek, ChrisF, J Cooper, Andrew, Federico Culloca Mar 17 '11 at 20:36

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6 Answers

up vote 10 down vote accepted

Let us see one of the method namely by using arithmetic operators. Consider 2 variables say x=50 and y=70 and let us see how to swap the value of two variables that is make x=70 and y=50 without using third variable. This can be done by using following arithmetic operations namely
x= x + y
y= x - y
x= x - y
Which gives
• x= x + y gives x= 70 + 50 an so x is equal to 120
• y= x - y gives y = 120 - 70 which makes the value of y as 50
• x= x - y gives x= 120 - 50 and thus value of x becomes 70

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What if x or y was very large in proportion to the other? –  jonsca Mar 17 '11 at 20:34
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that's a good solution, but have to be careful with overflows –  Fede Mar 17 '11 at 20:34
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Answer x -= y = (x += y) - y; and tell the teacher that's one of the lamest questions ever. –  Amadan Mar 17 '11 at 20:40
    
nice one thanks –  Rajpurohit Aug 26 '13 at 5:36
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You can achieve it with XOR

int A = ...;
int B = ...;
A = A ^ B;
B = A ^ B;
A = A ^ B;
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@Bertrand, I just made a "mind test" and still believe it's ok. If A equals B, in the first assignment, the result of A would be 0, then B is assigned 0 XOR B which is B, and then A is assigned 0 XOR B which is B again (which was equal to the starting A). –  Fede Mar 17 '11 at 20:57
    
A=1, B=1. Step 1: A=A^B=1^1=0. Step2: B=A^B=0^1=1. Step3: A=A^B=0^1=1. Looks like it works to me. –  Jim Mischel Mar 17 '11 at 21:42
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Depending on the type of variable, you can use Interlocked.Exchange. This uses an atomic operation to do the swap.

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Another popular way is the XOR swapping strategy. http://en.wikipedia.org/wiki/XOR_swap_algorithm

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 int x = 15;
 int y = 5;

 x = x + y;
 y = x - y;
 x = x - y; 
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Here we have this in mips assembler, the first solution is long and bad. The second one with xor ist better.

addi $t0, $0, -5
addi $t1, $0, 15


add $t0, $t0, $t1
sub $t1, $t1, $t0
nor $t1, $0, $t1
addi $t1, $t1, 1
sub $t0, $t0, $t1

####

xor $t0, $t0, $t1
xor $t1, $t0, $t1
xor $t0, $t0, $t1
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You really need to get out more often. –  Hans Passant Mar 17 '11 at 20:39
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