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I need to make four random generated numbers which sum have to be 100. Those numbers have to be in range from 1 to 100.

How can I do this?

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3  
Generate three random numbers and take the fourth to be 100 - sum. –  Kerrek SB Feb 26 '13 at 11:47
7  
xkcd.com/221 –  John Zwinck Feb 26 '13 at 11:49
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@Alen If the three numbers that you get sum up to 100 or more, throw them away, and try generating three new numbers. Do it in a loop until you get three numbers that sum up to less than 100. –  dasblinkenlight Feb 26 '13 at 11:50
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but OP didn't say anything about negative numbers. the range is not specified. statistical properties are not specified. the xkcd is appropriate :p –  thang Feb 26 '13 at 11:56
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Ok, now I'm confused. –  Peter Wood Feb 26 '13 at 14:58

5 Answers 5

up vote 5 down vote accepted

You can generate four random numbers, for example in range 0..100, then rescale them to have 100 as sum:

x_i' = 1 + x_i*96.0/sum

This solution does not provide uniform distribution of {x_i}.

@PeterWood found better answer for this question Random numbers that add to 100: Matlab

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I don't understand this, can you explain please. –  Alen Feb 26 '13 at 12:02
    
double x1 = random(0, 100); double x2 = random(0, 100); double x3 = random(0, 100); double x4 = random(0, 100); double sum = x1+x2+x3+x4; x1 *= 100.0/sum; x2 *= 100.0/sum; x3 *= 100.0/sum; x4 *= 100.0/sum; Note: thats just pseudocode –  kassak Feb 26 '13 at 12:04
    
correct, but if integers are required, you need to make sure the rounding happens properly. C++ uses floor for integer division, so in a bad case the integers x_i' would sum up to 97 only. Consider the numbers [24.9, 24.9, 24.9, 25.3], as floats they sum up to 100.0, but their integer sum would be 24+24+24+25=97. –  Piotr99 Feb 26 '13 at 12:04
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Thanks, solution is awesome. –  Alen Feb 26 '13 at 12:07
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@PeterWood They must add up to 100 (according to the question). So of course you'll be able to predict the 4th. They should be random subject to this constraint. –  Dukeling Feb 26 '13 at 12:59

Generate the first between 1 and 100-3, the second between 1 and 100-first-2, the third between 1and 100-(first+second)-1 and the fourth = 100-(first+second+third).

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You don't want to generate for the fourth. –  James Kanze Feb 26 '13 at 11:54
    
@James Kanze: Indeed! –  Kamouth Feb 26 '13 at 11:57
    
Downvote ? Hmmm –  Kamouth Feb 26 '13 at 12:16
    
(not mine) Your method might produce {1,1,1,2}. The fourth number is definitely between 1 and (100-1-1-1). –  MSalters Feb 26 '13 at 19:07
    
Could you write: ...and the fourth = 100-(first+second+third). –  qPCR4vir Feb 27 '13 at 11:40

Generate first random number from range 1..97.

Then generate second random number from range 1..(98-first)

Then generate third random number from range 1..(99-(first+last))

Finally set the last number as 100 - (first+second+third)

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1  
I'm pretty sure that will be an uneven probability distribution, if that's something OP cares about. –  Dukeling Feb 26 '13 at 11:53
    
Besides that the OP asked for the range to start at 1, is there any rationale behind the limiting of the ranges instead of just taking three random numbers in the full range? –  PlasmaHH Feb 26 '13 at 11:55
    
OP didn't requested specific probability distribution. The fact, that numbers have to sum to 100 is the main reason for inequal distribution, because one big number will always produce another three small ones. –  Spook Feb 26 '13 at 11:55
    
@PlasmaHH Let's say, that these three numbers from the full range are 99, 87 and 76, what should be the last one? I wrote a solution, which will work with any pseudorandom generator. Imagine a broken one, which always returns a maximum value from the range. If you persistently tried to find three values from the whole range, your program would hang. –  Spook Feb 26 '13 at 11:59
    
@Spook: Your method breaks as well, when I have a broken RNG that returns -1. Since you cannot reason about the possible outcomes of broken components, everyone assumes sane components. –  MSalters Feb 26 '13 at 19:06

If integer in range [1,100] (with obviusly decay to [1,97]) is what you need:

double x1 = random(0, 1); 
double x2 = random(0, 1); 
double x3 = random(0, 1); 
double x4 = random(0, 1); 

double sum = x1+x2+x3+x4; 

int n1 = 1 + x1*96.0/sum; 
int n2 = 1 + x2*96.0/sum; 
int n3 = 1 + x3*96.0/sum; 

int n4 = 100 - n1 - n2 -n3;
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What is the problem? –  qPCR4vir Feb 26 '13 at 12:00
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Ok... I was writing... deleting –  qPCR4vir Feb 26 '13 at 12:02
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@Dukeling This is quite common on SO for few people to write similar answers in the same time, I see no reason go give downvote for that. Downvotes are for poor quality answers and this one perfectly answers the question. –  Spook Feb 26 '13 at 12:06
    
Upss.. thank to both... I finded the way to salve the answer :-) –  qPCR4vir Feb 26 '13 at 12:25

Nothing in the problem description says that each number has to be in the range of 1 to 100. You could just vary the mod with each pass. Something like:

int sum = 0;
std::vector<int> randomNums();
while (sum != 100) {
    const int randomNum = std::rand() % (99 - sum);
    sum += randomNum
    randomNums.push_back(randomNum);
}
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