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So, I tried to write a simple C program which would calculate multiplication of two numbers without using * operator. But the result is not coming as expected. I can't understand why. This is the code:

#include<stdio.h>
int main()
{
    int a=1,b=1,c=1,i;
    printf("\n 1st element=");
    scanf("%d",&a);
    printf("\n 2nd element=");
    scanf("%d",&b);
    for(i=0;i<b;i++)
    {
        a=a+a;
    }
    printf("\n result=%d",a);
    return 0;
}
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1  
What are a and b when you print them out? –  dcaswell Sep 14 '13 at 4:00
1  
Before the for loop what are a & b? –  dcaswell Sep 14 '13 at 4:02
2  
@Mistu4u Since you're doing work with b, a good first step would be to find out what it is equal to. –  Thomas Sep 14 '13 at 4:02
1  
"But the result is not coming as expected" It's also a complete mystery. Mind telling us what it was? –  WhozCraig Sep 14 '13 at 4:03
2  
WTH is with all the code-only answers in this question. Is it friday already? –  WhozCraig Sep 14 '13 at 4:06

4 Answers 4

up vote 2 down vote accepted

Multiply using shifts and adds. O(log(b)). Watch for overflow.

I recommend this method over a for (t = 0; t < b; t++). Imagine if you were using 64-bit math, the for loop would take a long time, even on a computer. OP doubling method of a=a+a was on track, but incomplete.

unsigned a;
unsigned b;
unsigned product = 0;
scanf("%u%u", &a, &b);
while (b > 0) {
  if (b & 1) {
    unsigned OldProduct = product;
    product += a;
    if (product < OldProduct) {
      printf("\nOverflow\n"); 
      break;
    }
  b >>= 1;  // Halve b
  a += a;  // Double a - avoid using multiplication
}
printf("\nProduct = %u\n", product); 
share|improve this answer
    
a *= 2? a <<= 1 –  Havenard Sep 14 '13 at 4:09
    
@Havenard Some folks like *= 2 others, <<= 1. The same until the sign bit gets involved. Likely best to do this exercise all in unsigned. –  chux Sep 14 '13 at 4:22
    
Sure but if the idea is to not use multiplication, what is that * doing there? See my point? –  Havenard Sep 14 '13 at 4:34
    
@Havenard I've taken off my foggy spectacles and I see the light. –  chux Sep 14 '13 at 4:36

You are actually exponentially doubling a with your loop.

Say b = 3 and a = 5, for example. Then the loop will run three times.

Unrolling the loop would yield:

a = 5; /* initial value of a */

/* now run a=a+a; three times */
a = 5 + 5 = 10;
a = 10 + 10 = 20;
a = 20 + 20 = 40;

So you won't get 15, but you will get 40.

Instead, make a new variable, like sum = 0, and then add the value of a onto sum, like this:

sum = 0;
for (i=0; i<b; i++)
    sum += a;

By the way, the += operator is a great operator which simply adds the value on the right side of itself onto the variable that is on its left side. It's so much nicer and less ugly than the misleading equation a = a + a, which doesn't even make mathematical sense unless a = 0.

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1  
The mis-leading a = a + a may be part of a far more efficient method than the incremental for loop as this answer proposes. It is standard idiom to multiply by doubling a each time through a loop. The problem is that b should be halved each loop and a conditional product sum is needed. This method could take quintillion iterations with 64 bit math. –  chux Sep 14 '13 at 4:34
int a=1,b=1,c=0,i;

a=a+a; ==>c=c+a ;    

printf("\n result=%d",c);
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int a=1,b=1,c=0,i;
for(i=0;i<b;i++)
    {
        c=c+a;
    }
printf("\n result=%d",c);
share|improve this answer

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