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Generating a random number between [0, 1.0]

i = (float) rand() / RAND_MAX / 1;

I don't just want to print one decimal point, i want the variable to have one decimal point How do we do that?

(i.e. 0.1 ; not 0.1224828)

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Try as hard as you want. The variable is always going to have more than one. –  chris Mar 28 '13 at 14:09
    
Multiply by ten, floor, divide by ten? –  Waleed Khan Mar 28 '13 at 14:10
    
@chris boy were you wrong –  echad Mar 28 '13 at 14:11
    
@echadromani, I didn't know you meant rounding it to one decimal place. Even if you do, it can still be 0.600000001. You're not ever going to make a float simply 0.6 or 0.8 or whatever you will unless it's a value that's able to be represented exactly. –  chris Mar 28 '13 at 14:13
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@echadromani What chris means is what I state in the final paragraph of my answer. –  David Heffernan Mar 28 '13 at 14:16

3 Answers 3

up vote 6 down vote accepted

What you actually describe is a random integer with possible values in the range 0 to 10. So you would write:

int i = rand() / (RAND_MAX / 11 + 1);

or indeed some other way to generate an integer i such that 0 <= i <= 10.

Now, i is your value scaled by 10.

If you then want to divide by 10, do just that:

float f = i / 10.0;

Do be aware that a binary floating point variable cannot exactly represent 0.1, 0.2, 0.3, 0.4, 0.6, 0.7, 0.8 and 0.9. The only values in your list that can be exactly expressed are 0.0, 0.5 and 1.0. This is why it is better to store the information in an integer variable.

Note: As has been pointed by others (thank you), the obvious rand() % 11 has poor randomness properties. I updated the answer to avoid using that.

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You might find this page to be an interesting read. –  undefined behaviour Mar 28 '13 at 14:14
    
@modifiablelvalue, Too bad there's no mention of <random> (yes, I know it's older than C++11). –  chris Mar 28 '13 at 14:15

When you store a value 'R' in a floating-point variable, you don't often get to store 'R'. Instead, you have to store the legitimate floating-point value that's closest to 'R'. comp.lang.c FAQ

Even if you're not trying to produce random integers within a range, you should read How can I get random integers in a certain range? This expression

(int)((double)rand() / ((double)RAND_MAX + 1) * N)

is better than the obvious rand() % N; Also, its lessons apply in other contexts.

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you posted good link now I understood my code not good –  Grijesh Chauhan Mar 28 '13 at 14:26
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@GrijeshChauhan: If you have to write a lot of code in C, read that FAQ from front to back once a month. –  Mike Sherrill 'Cat Recall' Mar 28 '13 at 14:31
    
nice!.. book marked thanks :) –  Grijesh Chauhan Mar 28 '13 at 14:35

Try:

i = ((float)( rand()%11) ) /10;
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This does not compile, because % does not accept float operands. Also, % is a poor way to distribute values from rand because it clusters the extra values (due to RAND_MAX+1 not being a multiple of the modulus) at the low end of the interval. –  Eric Postpischil Mar 28 '13 at 14:46
    
@EricPostpischil Fixed brackets, but what is a better way to get the distribution in a fixed range? –  Alex Mar 28 '13 at 14:51
    
If your application is okay with a slightly non-uniform distribution, then you can use code such as that in another answer here, which spreads the excess values throughout the interval, although in certain circumstances floating-point rounding can be an issue. If your application needs a completely uniform distribution, then the excess values must be rejected and a new random value selected (hence a loop that runs until a satisfactory result is obtained). –  Eric Postpischil Mar 28 '13 at 15:03

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