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I was going through a programming class and was asked this tricky question which was left unanswered till the end of the class.

Question:

How can I multiply any input(Float,int etc) by 7, without using the * operator in TWO steps.

If anyone can give me the answer for this question with the explanation , that would be very helpful.

With TWO STEPS I mean suppose you are running a loop (i=0;i<7;i++) in that case number of steps will be >2, also TYPE CONVERSION, DIVISION,ADDITION etc ( Counts for steps ).

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closed as not constructive by Oleg V. Volkov, djechlin, Sébastien Renauld, Colonel Panic, 0x499602D2 Apr 29 '13 at 1:00

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4  
I'm guessing bit shifting is supposed to be part of this, but that shouldn't work overly well with floating-point bits. –  chris Apr 22 '13 at 10:57
18  
you could use the / operator –  Marco Forberg Apr 22 '13 at 10:57
3  
What counts as a step? Also, what kind of correctness is expected? –  R. Martinho Fernandes Apr 22 '13 at 10:57
3  
It would seem to me that a + a + a + a + a + a + a is just one step; at least, it's a single expression. –  James Kanze Apr 22 '13 at 11:21
4  
@chris no matter the teacher challenged or what, there should be reason behind it, be it performance, memory limits etc...., it helps suggest a good solution, –  ay89 Apr 22 '13 at 11:26

8 Answers 8

up vote 34 down vote accepted

Assuming float x or double x is defined in the scope. Then I see the following possibilities to multiply it by 7 without using the * operator:

In C++, you can use the standard functors (first step: create functor, second step: call functor):

x = std::multiplies<float>()(x, 7.0f);  // if x is a float
x = std::multiplies<double>()(x, 7.0);  // if x is a double

Or only use division (Since the compiler already evaluates 1.0 / 7.0, this is only one step):

x = x / (1.0f / 7.0f);  // if x is a float
x = x / (1.0  / 7.0);   // if x is a double

Or use the *= operator (technically, it's not the * operator, but it's only one single step):

x *= 7.0f;  // if x is a float
x *= 7.0;   // if x is a double

Or use addition in the logarithmic scale (this is not to be taken very serious, as well as this requires more than two "steps"):

x = exp(log(x) + log(7.0));

Another option is to use an assembly instruction, but I don't want to write that now, since it's overly complicated.

If x is an integer, bit shifting is another option, but not recommended:

x = (x << 3) - x;   // (x * 8) - x
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5  
I like the logarithm solution. I would definitely pick that one. See where applying one logarithmic identity can get you. –  chris Apr 22 '13 at 11:26
    
I believe x = x / (1.0 / 7.0) (or (1.0f / 7.0f)) will likely be optimized into a multiplication operation in most compilers, so there should not be any performance issues. Though you need to take care of integer division if the type is int, just beware not to write (1 / 7). –  Alvin Wong Apr 22 '13 at 13:07
    
If the type of x is int, I guess it would be calculated as double (since 1.0 / 7.0) is a double, and afterwards converted back to int, so I guess it would be equal to x * 7, though not sure. –  leemes Apr 22 '13 at 13:08
    
I don't know what OP is looking for, but I would consider 1-3 to be "cheating" because they call a multiply operation. I'm not sure the implementation of exp and log in 4, but if they call a multiply operation, I would think that's "cheating" as well. Thus, #5 is the one I like the best. I think the easiest solution is the for loop Aswin provides, though. –  Ryan Amos Apr 22 '13 at 18:12
2  
The log solution is broken when x<=0. –  fgrieu Apr 22 '13 at 19:42

You could simply use division by a seventh:

x / (1.0 / 7)

Whether this counts as "two steps" is entirely up to your definition.

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3  
This will divide by zero. –  leemes Apr 22 '13 at 10:58
3  
Erm, no. Dividing by 0 doesn't really help. –  R. Martinho Fernandes Apr 22 '13 at 10:58
1  
I meant it as mathematics, rather than C++. But sure. –  Joseph Mansfield Apr 22 '13 at 11:00
1  
In case it matters: in Java for integer types this behaves differently on overflow from multiplying by 7. In C++ for integer types overflow has UB, so it's not defined by the standard whether it behaves the same or differently. –  Steve Jessop Apr 22 '13 at 11:09
1  
@emory: The compiler would already do that for you of course –  Joren Apr 22 '13 at 15:50

add it

//initialise s as the number to be multiplied
 sum=0
for(i=0;i<7;i++)
    sum+=s
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6  
in loop it will count for 7 steps. –  Piyush Bhardwaj Apr 22 '13 at 11:01
    
what do you mean by steps exactly? –  Aswin Murugesh Apr 22 '13 at 11:04
    
@AswinMurugesh, Look in the OP comments. –  chris Apr 22 '13 at 11:06
1  
@AswinMurugesh you asked for two step ans not for 2 statement ans –  Anirudha Apr 22 '13 at 11:12

In C, the following hack should work for floats stored in IEEE single precision floating point format:

#include <stdint.h>

float mul7 (float x) {
    union {
        float f;
        uint32_t i;
    } u;
    u.f = x;
    u.i += (3 << 23);  /* increment exponent by 3 <=> multiply by 8 */
    return u.f - x;    /* 8*x - x == 7*x */
}

That's two steps (one integer addition, one float subtraction), sort of, depending on what you count as a step. Given that C++ is more or less backwards-compatible with C, I believe a similar trick should be possible there too.

Note, however, that this hack generally won't give correct results for subnormal, infinite or NaN inputs, nor for inputs so large in magnitude that multiplying them by 8 would overflow.

Adjusting the code to use doubles instead of float is left as an exercise for the reader. (Hint: the magic number is 52.)

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The endianness of the platform must also be checked. On big endian machine the line u.i += (3 << 23); becomes simply u.i += 3;. –  tristopia May 15 '13 at 11:24
    
Therefore it would be better to use union { float f; uint8_t i[4]; } and u.i[3] += 3 or something like that. –  tristopia May 15 '13 at 11:26

You may also do the following for integers:

( x<< 3) - x
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2  
doesn't work for float –  Hazem El-Raffiee Apr 22 '13 at 11:00
    
@HazemEl-Raffiee yeah,bit shift does not work for float or double, updated, thanks! –  taocp Apr 22 '13 at 11:02
// String num = "10";
// int num = 10;
float num = 10;

BigDecimal bigD = new BigDecimal(num);
BigDecimal seven = new BigDecimal(7);
System.out.println(seven.multiply(bigD));

You could use the BigDecimal & its multiply method. Works for pretty much everything.

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Define "two steps"...

float result = 0.0f;
float input = 3.14f;
int times = 7;

// steps

while (times--)
    result += input;

Edit: dividing by (1 / 7) won't work with int type. Also in some languages for it to work with float type, you'd have to mark them as floats:

result = input / (1.0f / 7.0f);
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1  
but doesn't that become input power 7? –  Aswin Murugesh Apr 22 '13 at 11:02
    
You're totally right, corrected. :) Thanks. –  Michal Rus Apr 22 '13 at 11:05
1  
result should be initialized to 0, not 1. –  fgrieu Apr 22 '13 at 19:41
    
@fgrieu, you're right. It was 1, because I was multiplying, not adding before. See Aswin's comment above. –  Michal Rus Apr 22 '13 at 22:09

Add 7 by x times.

for(int i=0; i<10; i++)
    result = result+7;
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2  
The OP asked for a way to multiply by 7 not to add 70. –  Marco Forberg Apr 22 '13 at 11:41
    
makes sense :). –  Whoami Apr 22 '13 at 12:20

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