Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.
generate(vec.begin(), vec.end(), [=](){return static_cast<T>(static_cast<double>(ran())
/RAND_MAX*(max-min)+min); });

Problem: RAND_MAX*(max-min)+min);

Ok, so I know the algorithms, lambda expressions, and, capture clause in this thing. My question is quite ridiculous to all of that. What is the bolded text above mean. I mean, I know its part of the random value generation process. But don't know exactly what the hell is going on. So can someone pls break down that tinny tiny little code.

share|improve this question

5 Answers 5

up vote 7 down vote accepted

static_cast<double>(ran())/RAND_MAX*(max-min)+min);

I'm assuming you mistyped rand(), which returns a pseudorandom integer from 0 to RAND_MAX. Let's rewrite that in a way that clarifies the precedence a bit:

(T) ( (((double) rand() / RAND_MAX) * (max-min) ) + min

So what it does is:

  1. rand(): take a random integer between 0 and RAND_MAX
  2. (double) / RAND_MAX: divide as double by RAND_MAX, yielding a uniformly distributed double between 0 and 1:
  3. * (max-min): multiply by the range (max-min), yielding a double from 0 to (max-min)
  4. +min: add the minimum to yield a random double between min and max
  5. static_cast<T>: cast it back to the original type

The result is a uniformly distributed random number of type T between min and max.

share|improve this answer
3  
And uniform_*_distribution<T>(min,max) would probably be a better way to do it. –  bames53 May 11 '12 at 3:56
1  
+1 I didn't want to nag because he just asked what it does, but using the STL would certainly make more sense. –  smocking May 11 '12 at 4:02
    
yeah I realize my stupid parenthesis. Curse me sky gods. –  Joey Arnold Andres May 11 '12 at 23:10

It's a random function limited on the downside by min (because the rand piece could return zero) and limited to max because even if it returned 100% of max-min, and added to min, you'd be at max

share|improve this answer

The expression static_cast<double>rand()/RAND_MAX creates a number between 0.0 and 1.0
When you multiply it by (max-min), you change the range, and when you add to min you shift the range. So, after that expression you have a random number (double) that ranges from min to max.

share|improve this answer

You'll need to look at the entire expression: static_cast<double>(rand()) /RAND_MAX*(max-min)+min). Which with explicit grouping looks like: (static_cast<double>(rand()) /RAND_MAX)*(max-min)+min).
The first group returns a random value between 0 & 1 since rand() returns a value in the range 0 to RAND_MAX. The second group translates the 0 to 1 range to a min to max range.

share|improve this answer

the ran() function returns a random value between min and max ?

but sometimes we need a random value between A and B (min and max). So we can adjust the result for it.

a is double, so we use a static_cast! 
a = rand()      ; 0     <=   a   <= RAND_MAX
a = a/RAND_MAX  ; 0     <=   a   <= 1
a = B * a       ; 0     <=   a   <= B
a = min +a      ; 0+min <=   a   <= B+min

to produce min <= a <= max,

B+min = max
B = max-min

in other hands

a = rand()/RAND_MAX*(max-min) + min

is a random number between min and max.

share|improve this answer
    
rand()/RAND_MAX is zero unless rand() == RAND_MAX. –  James Custer May 11 '12 at 4:11
    
rand() return a integer or a float? I think it is a float. so rand()/RAND_MAX cannot be zero if rand() return something positive. –  Tiago Peczenyj May 11 '12 at 4:22
    
rand() returns an integer: en.cppreference.com/w/cpp/numeric/random/rand –  James Custer May 11 '12 at 4:23
    
Humm... now I understand the static_cast<double> –  Tiago Peczenyj May 11 '12 at 4:52

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.