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Suppose you have one array a[]=1,2,4,6 and a second array b[]=3,5,7. The merged result should have all the values, i.e. c[]=1,2,3,4,5,6,7. The merge should be done without using functions from <string.h>.

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duplicate stackoverflow.com/questions/1696074/… –  Naveen Nov 9 '09 at 10:28
    
osama you can edit the old question instead of submitting a new one. –  user181548 Nov 9 '09 at 10:33
    
Not a duplicate. In the other question, osama (presumably) asked about concatenation; this question is about merging two ordered arrays. –  Thomas Nov 9 '09 at 10:58
    
and this is a better-worded question, too –  warren Nov 9 '09 at 13:49
1  
Use std::merge or std::inplace_merge. –  KennyTM Jan 24 '10 at 8:11

5 Answers 5

I haven't compiled and tested the following code, but I am reasonably confident. I am assuming both input arrays are already sorted. There is more work to do to make this general purpose as opposed to a solution for this example only. No doubt the two phases I identify could be combined, but perhaps that would be harder to read and verify;

void merge_example()
{
    int a[] = {1,2,4,6};
    int b[] = {3,5,7};
    int c[100];     // fixme - production code would need a robust way
                    //  to ensure c[] always big enough
    int nbr_a = sizeof(a)/sizeof(a[0]);
    int nbr_b = sizeof(b)/sizeof(b[0]);
    int i=0, j=0, k=0;

    // Phase 1) 2 input arrays not exhausted
    while( i<nbr_a && j<nbr_b )
    {
        if( a[i] <= b[j] )
            c[k++] = a[i++];
        else
            c[k++] = b[j++];
    }

    // Phase 2) 1 input array not exhausted
    while( i < nbr_a )
        c[k++] = a[i++];
    while( j < nbr_b )
        c[k++] = b[j++];
}
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I am learning c myself at them moment, so don't take this as the perfect solution, but maybe you can get some ideas from what I did to solve your own problem.

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

int compare (const void * first, const void * second){
    return  *(int*)first - *(int*)second ;
}

int main(){
    int a[] = {1,2,4,6};
    int b[] = {3,5,7};
    size_t sizeA =sizeof(a)/sizeof(a[0]);
    size_t sizeB = sizeof(b)/sizeof(b[0]); 
    size_t sizeC = sizeA + sizeB; 
    /*allocate new array of sufficient size*/
    int *c = malloc(sizeof(int)*sizeC);
    unsigned i;
    /*copy elements from a into c*/
    for(i = 0; i<sizeA; ++i){
        c[i] = a[i];
    } 
    /*copy elements from b into c*/
    for(i = 0; i < sizeB; ++i){
        c[sizeA+i] = b[i];
    }
    printf("array unsorted:\n");
    for(i = 0; i < sizeC; ++i){
        printf("%d: %d\n", i, c[i]);
    }
    /*sort array from smallest to highest value*/
    qsort(c, sizeC, sizeof(int), compare);
    printf("array sorted:\n");
    for(i = 0; i < sizeC; ++i){
        printf("%d: %d\n", i, c[i]);
    }
    return 0;
}
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In case the 2 given arrays are sorted:

while (true):
{
    if (a[i] < b[j])
    {
        c[k] = a[i];
        i++;
    } else {
        c[k] = b[j]
        j++
    }
    k++
}

i,j,k are indices and start at zero. Mind you, this code does not check for array lengths. Also you will need to break it when you reach end of both arrays. But is easy to deal with.

If the arrays are not pre-sorted, you can just easily concatenate them and call a search function on them such as BubbleSort or QuickSort. Google those.

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while(true)? Also, what happens when one index runs out of bounds? –  pbos Nov 9 '09 at 13:50
void merge(int *input1, size_t sz1, 
           int *input2, size_t sz2,
           int *output, size_t sz3) {
    int i = 0;
    int index1 = 0, index2 = 0;

    while (i < sz3 && index1 < sz1 && index2 < sz2)
    	if (input1[index1] <= input2[index2])
    		output[i++] = input1[index1++];
    	else
    		output[i++] = input2[index2++];

    if (index1 < sz1)
    	for (; i < sz3 && index1 < sz1; ++i, ++index1)
    		output[i] = input1[index1];
    else if (index2 < sz2)
    	for (; i < sz3 && index2 < sz2; ++i, ++index2)
    		output[i] = input2[index2];
}

which you use that way:

#define TAB_SIZE(x) (sizeof(x)/sizeof(*(x)))

int tab1[] = { 1, 2, 4, 6 };
int tab2[] = { 3, 5, 7 };

int tabMerged[TAB_SIZE(tab1)+TAB_SIZE(tab2)];
merge(tab1, TAB_SIZE(tab1), tab2, TAB_SIZE(tab2), tabMerged, TAB_SIZE(tabMerged));
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I could live with 'input1' and 'input2' but not 'sz1', 'sz2' and 'sz3'... –  foraidt Nov 9 '09 at 13:53

Merging 2 unsorted integer arrays:

void main()
{
    clrscr();
    int A[10],B[10],C[26],a,b,n1,n2;
    cout<<"\n enter limit for array1     ";
    cin>>n1;
    cout<<"\n enter limit for array2     ";
    cin>>n2;
    a=0;b=0;int i=0;
    clrscr();
    while(1)
    {
        if(a<n1)
        {
            cout<<"\n enter element "<<a+1<<"for array1   ";
            cin>>A[a];
            clrscr();
            a++;
        }
        if(b<n2)
        {
            cout<<"\n enter element "<<b+1<<"for array2  ";
            cin>>B[b]; clrscr();
            b++;
        }
        if(a==n1&&b==n2)
            break;
    }
    a=0;b=0;
    cout<<"\n array merged";
    while(1)
    {
        if(a<n1)
        {
            C[a]=A[a];
            a++;
        }
        if(a>=n1&&b<n2)
        {
            C[a]=B[b];
            a++;b++;
        }
        if(a==(n1+n2))
        {
            if(i<(n1+n2))
            {
                cout<<endl<<C[i];
                i++;
            }
            else
                break;
        }
    }
    getch();// \m/
}
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