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Yesterday on an interview the interviewer asked me a question:

Why doesn't the following code give the desired answer?

int a = 100000, b = 100000;

long int c = a * b ;

The language is C.

I've told the interviewer that we count first the 100,000 * 100,000 as an int(overflow) and just then cast it to long.

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I don't know which language you used, but I tried this with c# and it works properly. You tagged c#, c++ and c. Please be more specific –  Christian Feb 17 '11 at 12:32
    
The question as is, without saying what the desired answer is sounds like some of the "It doesn't work" questions we see here on SO everyday and have to tediously milk for details. It seems to produce the answer I desire. @Christian: are you sure? My C# compiler refuses to compile this code. –  R. Martinho Fernandes Feb 17 '11 at 12:32
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I tried it in Visual C++ 9 and the result is 100M as I would expect. What's wrong? –  sharptooth Feb 17 '11 at 12:33
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So, did the interviewer tell you what the expected answer is, or did she/he leave you wondering? –  darioo Feb 17 '11 at 12:35
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So what did you answer? What answers did you consider? Did you ask the interviewer any questions, like how large an int is on the machine where it gives the wrong answer? –  Jim Balter Feb 17 '11 at 12:36
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3 Answers

up vote 5 down vote accepted

I'm guessing the clue would be an integer overflow to occur, but with such low values, I don't see that happening.

Maximum (positive) value for int (usually 32bit) is: 2,147,483,647

The result of your calculation is: 100,000,000

UPDATE:

With your updated question: 100000 * 100000 instead of 10000 * 10000 results in 10,000,000,000, which will cause an overflow to occur. This value is then cast to a long afterwards.

To prevent such an overflow the correct approach would be to cast one of the two values in the multiplication to a long (usually 64bit). E.g. (long)100000 * 100000

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In C# it wouldn't, because int is always 32 bits signed. In C or C++, int can be as small as 8 bits, depending on the machine. –  Thomas Feb 17 '11 at 12:34
    
@Thomas: Yup, just realized that, so I quickly added the "in general". :) –  Steven Jeuris Feb 17 '11 at 12:36
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@Thomas: how can int be as small as 8 bits and hold integer values in the range [-32768,32767]? –  R. Martinho Fernandes Feb 17 '11 at 12:37
    
<nitpick> It doesn't hold "in general" at all, but only in specific cases. The word "usually" might be more appropriate. </nitpick> –  Thomas Feb 17 '11 at 12:38
    
@Martinho: Pardon me, I was wrong. The minimum seems to be 16 bits. –  Thomas Feb 17 '11 at 12:40
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That's cause it first calculates it as an int, and only then casts it into a long variable.(so it first overflows as an integer and then becomes a long) the code should be

long int c = a*(long int)b;
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it will most likely still give the correct answer tho. the questions is faulty; it should be "why would you raise your eye browns" ;) –  stefan Feb 17 '11 at 12:35
    
@stefan exactly! This particular piece of code works, but the general idea of an overflow is maybe what the interviewer was after. –  Christian Feb 17 '11 at 12:37
    
Of course, it only fails on machines with 16 bit ints. –  Jim Balter Feb 17 '11 at 12:38
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100000*100000 is 10000000000 (10,000,000,000) which is greater than the maximum value a 32bit int can represent (2,147,483,647), thus it overflows.

a*b is still an int, it's not a long int, since the members of expression a*b are both of type int, thus they aren't converted to long int: this conversion will only happen after a*b has been evaluated, when the result is assigned c. If you want the result of a*b to be long int you need to convert at least one of the operands as long int:

long int c = (long int)a * (long int)b.

Moreover long int could be of the same size of int (it could be represented on 32 bits too): this is most likely to happen with 32 bit application where, usually, sizeof(int) == sizeof(long int) == 4.

If you need c to be of 64 bits you should better use a variable like int64_t, that ensures you to be of 64 bits.

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