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I am trying to take 3 arrays and add each combination of elements to see if any are equal to 91 and must make sure that the result has the red value smaller than the blue value smaller than the green value. I cannot for the life of me think of how to store so many instances and then refer to them at the end.

As you can see, I am missing code because I do not know how to proceed.

#include<stdio.h>
#include<stdlib.h>
#include<math.h>

int main(void) {

int i = 0;
int j = 0;
int k = 0;
int redSize = 6;
int blueSize = 9;
int greenSize = 9;
int red[] = (9, 22, 21, 18, 34, 13);
int blue[] = (20, 60, 14, 17, 39, 16, 6, 33, 18);
int green[] = (40, 7, 51, 26, 8, 24, 12, 11, 27);
for(i; i < redSize; i++){

    result = red[i] + blue[j] + green[k] 

    while (j < blueSize){

        // need to iterate over each item in array "blue"

        while(k < greenSize){
          //same for green

        } 

    }

    if (result == 91 && red[i] < blue[i] && blue[i] < green[i]){
    printf("The red value is %d, the blue value is %d, and the green value is %d", red[i], blue[i], green[i]);  


    }   

return 0;
}   

}
share|improve this question
    
So you need to give an output only when the sum is 91 right?? –  Aditi Jan 16 '13 at 6:21
    
have you even tried to compile this? it is not valid C/C++ code –  mvp Jan 16 '13 at 6:24
    
This is pretty clearly homework, you should really be trying to solve this yourself. –  Ben Jan 16 '13 at 6:39

5 Answers 5

You were not that far. A few glitches

  • array initialization is with {} not ()
  • you want all combinations so 3 nested loops are required: one for red(i), one for blue(j) and one for green(k). As you can see, for each red[i] you do all blue[j] and for each of them you do all green[k]. You compute i*j*k elements.
  • The test is to be performed at the very inner center of your nested loops, when red, blue and green are known (ie i, j and k have a value).

For instance: (I just fixed your program, without optimizing anything)

#include<stdio.h>
#include<stdlib.h>
#include<math.h>

int main(void){


int i = 0;
int j = 0;
int k = 0;
int redSize = 6;
int blueSize = 9;
int greenSize = 9;
int red[] = {9, 22, 21, 18, 34, 13};
int blue[] = {20, 60, 14, 17, 39, 16, 6, 33, 18};
int green[] = {40, 7, 51, 26, 8, 24, 12, 11, 27};

for(i=0 ; i < redSize; i++){
  for(j=0 ; j < blueSize; j++){
    for(k=0 ; k < greenSize; k++){

      int result = red[i] + blue[j] + green[k];
      if (result == 91 && red[i] < blue[j] && blue[j] < green[k]){
        printf("The red value is %d, the blue value is %d, and the green value is %d\n", red[i], blue[j], green[k]);  
      }   

    }
  }
}

return 0;
}   
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Notes: Your array declarations were wrong, your loop scopes were not correct, and the loop organization could allow substantial skipping by testing for the less-than condition and eliminating entire sub-loops. There is no need to run through all the greens-to-blues comparisons for a red value already known to not be less than the current green.

Algorithm:

for each red value
   for each blue value "greater" then the current red value
      for each green value "greater" than the current blue value
           if (red+blue+green)=91, the trio is a candidate.

After throwing out a lot of cruft, it should look something like this:

#include<stdio.h>

int main(void)
{
    int red[] = {9, 22, 21, 18, 34, 13};
    int blue[] = {20, 60, 14, 17, 39, 16, 6, 33, 18};
    int green[] = {40, 7, 51, 26, 8, 24, 12, 11, 27};
    int i,j,k;

    for(i=0;i<sizeof(red)/sizeof(red[0]); ++i)
    {
        for (j=0;j<sizeof(blue)/sizeof(blue[0]);++j)
        {
            if (red[i] < blue[j])
                for (k=0;k<sizeof(green)/sizeof(green[0]);++k)
                {
                    if (blue[j] < green[k] && red[i]+blue[j]+green[k]==91)
                        printf("red:%d blue:%d green:%d\n", red[i], blue[j], green[k]);
                }
        }
    }

    return 0;
}

Output

red:18 blue:33 green:40
share|improve this answer
#include <stdio.h>

int main(void) {

    int red[] = {9, 22, 21, 18, 34, 13};
    int blue[] = {20, 60, 14, 17, 39, 16, 6, 33, 18};
    int green[] = {40, 7, 51, 26, 8, 24, 12, 11, 27};

    int r, g, b;

    for (r = 0; r < (sizeof(red) / sizeof(int)); ++r) {
        for (g = 0; g < (sizeof(green) / sizeof(int)); ++g) {
            for (b = 0; b < (sizeof(green) / sizeof(int)); ++b) {
                int s = red[r] + green[g] + blue[b];
                if (s == 91 && red[r] < blue[b] && blue[r] < green[g]) {
                    printf("%d %d %d", red[r], blue[b], green[g]);
                }
            }
        }
    }

    return 0;
}
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From your brief on question, I think this may help you, Please comment if its not what you really need.

for(i=0 to redSize){
 for(j=0 to blueSize){
  for(k=0 to greenSize){
   if(red[i]<blue[j]<green[k]){
    if(91 == red[i]+blue[j]+green[k]){
       printf(red[i],blue[j],green[k]);
    }
   }
  }
 }
}
share|improve this answer

Or we could avoid addition everytime, by checking in the green loop for a particular value.

#include<stdio.h>

int main(void)
{
    int red[] = {9, 22, 21, 18, 34, 13};
    int blue[] = {20, 60, 14, 17, 39, 16, 6, 33, 18};
    int green[] = {40, 7, 51, 26, 8, 24, 12, 11, 27};
    int i = 0, j = 0, k = 0;
while(i < redSize){
      while (j < blueSize){
             kValue = 91 - red[i] - blue[j];
             while(k < greenSize){
                  if(green[k] == kValue && red[i] < blue[j] && blue[j] < green[k])
                  {
                      printf("The red value is %d, the blue value is %d, and the green value is %d", red[i], blue[j], green[k]); 
                  }
                  k++;
                }
                j++;
            }
            i++;
        }
        return 0;
}
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