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I have done this before, but now I'm struggling with it again, and I think I am not understanding the math underlying the issue.

I want to set a random number on within a small range on either side of 1. Examples would be .98, 1.02, .94, 1.1, etc. All of the examples I find describe getting a random number between 0 and 100, but how can I use that to get within the range I want?

The programming language doesn't really matter here, though I am using Pure Data. Could someone please explain the math involved?

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12  
What kind if distribution do you want, and how close to 1 is close enough? –  Kevin Dec 7 '09 at 15:50
3  
What are your bounds for the random number? 0.0 to 2.0? –  Jordan Ryan Moore Dec 7 '09 at 15:50
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15 Answers

Uniform

If you want a (psuedo-)uniform distribution (evenly spaced) between 0.9 and 1.1 then the following will work:

  range = 0.2
  return 1-range/2+rand(100)*range/100

Adjust the range accordingly.

Pseudo-normal

If you wanted a normal distribution (bell curve) you would need special code, which would be language/library specific. You can get a close approximation with this code:

sd = 0.1
mean = 1
count = 10
sum = 0
for(int i=1; i<count; i++) 
  sum=sum+(rand(100)-50)
}
normal = sum / count
normal = normal*sd + mean
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Uniform? p(0.9) != p(0.9001). I admit it's a non-trivial problem with IEEE754. –  MSalters Dec 7 '09 at 16:07
    
fair point - but given the lack of precision in the question I doubt this will matter to the questioner. Would pesudo-uniform be fair? :-) –  Nick Fortescue Dec 7 '09 at 16:29
    
this is nice, but perhaps should mention what the parameter to rand means? sometimes it is the case that the standard library random number function gives you a float from 0..1, it depends on language - rand(100) is a very BASIC style thing... –  jheriko Nov 24 '12 at 17:15
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Generally speaking, to get a random number within a range, you don't get a number between 0 and 100, you get a number between 0 and 1. This is inconsequential, however, as you could simply get the 0-1 number by dividing your # by 100 - so I won't belabor the point.

When thinking about the pseudocode of this, you need to think of the number between 0 and 1 which you obtain as a percentage. In other words, if I have an arbitrary range between a and b, what percentage of the way between the two endpoints is the point I have randomly selected. (Thus a random result of 0.52 means 52% of the distance between a and b)

With this in mind, consider the problem this way:

  1. Set the start and end-points of your range.

    var min = 0.9;

    var max = 1.1;

  2. Get a random number between 0 and 1

    var random = Math.random();

  3. Take the difference between your start and end range points (b - a)

    var range = max - min;

  4. Multiply your random number by the difference

    var adjustment = range * random;

  5. Add back in your minimum value.

    var result = min + adjustment;

And, so you can understand the values of each step in sequence:

var min = 0.9;
var max = 1.1;
var random = Math.random();      // random     == 0.52796 (for example)
var range = max - min;           // range      == 0.2
var adjustment = range * random; // adjustment == 0.105592
var result = min + adjustment;   // result     == 1.005592

Note that the result is guaranteed to be within your range. The minimum random value is 0, and the maximum random value is 1. In these two cases, the following occur:

var min = 0.9;
var max = 1.1;
var random = Math.random();      // random     == 0.0 (minimum)
var range = max - min;           // range      == 0.2
var adjustment = range * random; // adjustment == 0.0
var result = min + adjustment;   // result     == 0.9 (the range minimum)

var min = 0.9;
var max = 1.1;
var random = Math.random();      // random     == 1.0 (maximum)
var range = max - min;           // range      == 0.2
var adjustment = range * random; // adjustment == 0.2
var result = min + adjustment;   // result     == 1.1 (the range maximum)
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return 0.9 + rand(100) / 500.0

or am I missing something?

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If rand() returns you a random number between 0 and 100, all you need to do is:

(rand() / 100) * 2

to get a random number between 0 and 2.

If on the other hand you want the range from 0.9 to 1.1, use the following:

0.9 + ((rand() / 100) * 0.2)
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You can construct any distribution you like form uniform in range [0,1) by changing variable. Particularly, if you want random of some distribution with cumulative distribution function F, you just substitute uniform random from [0,1) to inverse function for desired CDF.

One special (and maybe most popular) case is normal distribution N(0,1). Here you can use Box-Muller transform. Scaling it with stdev and adding a mean you get normal distribution with desired parameters.

You can sum uniform randoms and get some approximation of normal distribution, this case is considered by Nick Fortescue above.

If your source randoms are integers you should firstly construct a random in real domain with some known distribution. For example, uniform distribution in [0,1) you can construct such way. You get first integer in range from 0 to 99, multiply it by 0.01, get second integer, multiply it by 0.0001 and add to first and so on. This way you get a number 0.XXYYZZ... Double precision is about 16 decimal digits, so you need 8 integer randoms to construct double uniform one.

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Box-Müller to the rescue.

var z2_cached;
function normal_random(mean, variance) {

    if ( z2_cached ) {
            var z2 = z2_cached;
            z2_cached = 0
            return z2 * Math.sqrt(variance) + mean;
    }

    var x1 = Math.random();
    var x2 = Math.random();

    var z1 = Math.sqrt(-2 * Math.log(x1) ) * Math.cos( 2*Math.PI * x2);
    var z2 = Math.sqrt(-2 * Math.log(x1) ) * Math.sin( 2*Math.PI * x2);

    z2_cached = z2;
    return z1 * Math.sqrt(variance) + mean;
}

Use with values of mean 1 and variance e.g. 0.01

for ( var i=0; i < 20; i++ ) console.log( normal_random(1, 0.01) );
0.937240893365304
1.072511121460833
0.9950053748909895
1.0034139439164074
1.2319710866884104
0.9834737343090275
1.0363970887198277
0.8706648577217094
1.0882382154101415
1.0425139197341595
0.9438723605883214
0.935894021237943
1.0846400276817076
1.0428213927823682
1.020602499547105
0.9547701472093025
1.2598174560413493
1.0086997644531541
0.8711594789918106
0.9669499056660755

Function gives approx. normal distribution around mean with given variance.

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low + (random() / 100) * range

So for example:

0.90 + (random() / 100) * 0.2

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How near? You could use a Gaussian (a.k.a. Normal) distribution with a mean of 1 and a small standard deviation.

A Gaussian is suitable if you want numbers close to 1 to be more frequent than numbers a bit further away from 1.

Some languages (such as Java) will have support for Gaussians in the standard library.

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Divide by 100 and add 1. (I assume you are looking for a range from 0 to 2?)

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You want a range from -1 to 1 as output from your rand() expression.

( rand(2) - 1 )

Then scale that -1 to 1 range as needed. Say, for a .1 variation on either side:

(( rand(2) - 1 ) / 10 )

Then just add one.

(( rand(2) - 1 ) / 10 ) + 1
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Rand() already gives you a random number between 0 and 100. The maximum different random number you can get with this are 100 thus Assuming that you want up to three decimal numbers 0.950-1.050 is the range you would be looking at.

The distribution can then be achieved by

0.95 + ((rand() / 100) 
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Are you looking for the random no. from range 1 to 2, like 1.1,1.5,1.632, etc. if yes then here is a simple python code:

import random
print (random.random%2)+1
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var randomNumber = Math.random();
while(randomNumber<0.9 && randomNumber>0.1){
    randomNumber = Math.random();
}

if(randomNumber>=0.9){
    alert(randomNumber);
}
else if(randomNumber<=0.1){
    alert(1+randomNumber);
}
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For numbers from 0.9 to 1.1

seed = 1

range = 0,1

if your random is from 0..100

f_rand = random/100

the generated number

gen_number = (seed+f_rand*range*2)-range

You will get 1,04; 1,08; 1,01; 0,96; ...

with seed 3, range 2 => 1,95; 4,08; 2,70; 3,06; ...

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I didn't understand this (sorry):

I am trying to set a random number on either side of 1: .98, 1.02, .94, 1.1, etc.

So, I'll provide a general solution for the problem instead.


Converting a random number generator

If you have a random number generator in a give range [0, 1)* with uniform distribution you can convert it to any distribution using the following method:

1 - Describe the distribution as a function defined in the output range and with total area of 1. So this function is f(x) = the probability of getting the value x.

2 - Integrate** the function.

3 - Equate it to the "randomic"*.

4 - Solve the equation for x. So ti gives you the value of x in function of the randomic.

*: Generalization for any input distribution is below.

**: The constant term of the integrated function is 0 (that is, you just discard it).

**: That is a variable the represents the result of generating a random number with uniform distribution in the range [0, 1). [I'm not sure if that's the correct name in English]

Example:

Let's say you want a value with the distribution f(x)=x^2 from 0 to 100. Well that function is not normalized because the total area below the function in the range is 1000000/3 not 1. So you normalize it scaling the curve in the vertical axis (keeping the relative proportions), that is dividing by the total area: f(x)=3*x^2 / 1000000 from 0 to 100.

Now, we have a function with the a total area of 1. The next step is to integrate it (you may have already have done that to get the area) and equte it to the randomic.

The integrated function is: F(x)=x^3/1000000+c. And equate it to the randomic: r=x^3/1000000 (remember that we discard the constant term).

Now, we need to solve the equation for x, the resulting expression: x=100*r^(1/3). Now you can use this formula to generate numbers with the desired distribution.

Generalization

If you have a random number generator with a custom distribution and want another different arbitrary distribution, you first need the source distribution function and then use it to express the target arbirary random number generator. To get the distribution function do the steps up to 3. For the target do all the steps, and then replace the randomic with the expression you got from the source distribution.

This is better understood with an example...

Example:

You have a random number generator with uniform distribution in the range [0, 100) and you want.. the same distribution f(x)=3*x^2 / 1000000 from 0 to 100 for simplicity [Since for that one we already did all the steps giving us x=100*r^(1/3)].

Since the source distribution is uniform the function is constant: f(z)=1. But we need to normalize for the range, leaving us with: f(z)=1/100.

Now, we integrate it: F(z)=z/100. And equate it to the randomic: r=z/100, but this time we don't solve it for x, instead we use it to replace r in the target:

x=100*r^(1/3) where r = z/100
=>
x=100*(z/100)^(1/3)
=>
x=z^(1/3)

And now you can use x=z^(1/3) to calculate random numbers with the distribution f(x)=3*x^2 / 1000000 from 0 to 100 starting with a random number in the distribution f(z)=1/100 from 0 to 100 [uniform].

Note: If you have normal distribution, use the bell function instead. The same method works for any other distribution. Take care of possible asymptote some distributions make create, you may need to try different ways to solve the equations.

On discrete distributions

Some times you need to express a discrete distribution, for example, you want to get 0 with 95% chance and 1 with 5% chance. So how do you do that?

Well, you divide it in rectangular distributions in such way that the ranges join to [0, 1) and use the randomic to evaluate:

         0 if r is in [0, 0.95)
f(r) = {
         1 if r is in [0.95, 1)

Or you can take the complex path, which is to write a distribution function like this (making each option exactly a range of length 1):

         0.95 if x is in [0, 1)
f(x) = {
         0.5 if x is in [1, 2)

Since each range has a length of 1 and the assigned values sum up to 1 we know that the total area is 1. Now the next step would be to integrate it:

         0.95*x if x is in [0, 1)
F(x) = {
         (0.5*(x-1))+0.95 = 0.5*x + 0.45 if x is in [1, 2)

Equate it to the randomic:

         0.95*x if x is in [0, 1)
r = {
         0.5*x + 0.45 if x is in [1, 2)

And solve the equation...

Ok, to solve that kind of equation, start by calculating the output ranges by applying the function:

[0, 1) becomes [0, 0.95)
[1, 2) becomes [0.95, {(0.5*(x-1))+0.95 where x = 2} = 1)

Now, those are the ranges for the solution:

         ? if r is in [0, 0.95)
x = {
         ? if r is in [0.95, 1)

Now, solve the inner functions:

         r/0.95 if r is in [0, 0.95)
x = {
         2*(r-0.45) = 2*r-0.9 if r is in [0.95, 1)

But, since the output is discrete, we end up with the same result after doing integer part:

         0 if r is in [0, 0.95)
x = {
         1 if r is in [0.95, 1)

Note: using random to mean pseudo random.


Edit: Found it on wikipedia (I knew I didn't invent it).

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