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.

A book I have says this:

a) Place each value of the one-dimensional array into a row of the bucket array based on the value's ones digit. For example, 97 is placed in row 7, 3 is placed in row 3, and 100 is placed in row 0. This is called a "distribution pass."

b) Loop through the bucket array row by row, and copy the values back to the original array. This is called a "gathering pass." The new order of the preceding values in the one-dimensional array is 100, 3, and 97.

c) Repeat this process for each subsequent digit position.

I am having a lot of trouble trying to understand and implement this. So far I have:

void b_sort(int sarray[], int array_size) {
    const int max = array_size;
    for(int i = 0; i < max; ++i)
        int array[i] = sarray[i];

    int bucket[10][max - 1];
}

I'm thinking that in order to sort them by ones, tens, hundreds, etc, I can use this:

for(int i = 0; i < max; ++i)
    insert = (array[i] / x) % 10;
    bucket[insert];

where x = 1, 10, 100, 1000, etc. I am totally lost on how to write this now.

share|improve this question
    
int get_digit(int number, int digit) { return number/int((std::pow(10.0,digit))%10;} –  Mooing Duck Feb 16 '12 at 18:56
    
That should work fine, assuming x == 1, 10, 100, .... –  500 - Internal Server Error Feb 16 '12 at 18:57
    
You might want to use hex digits, not decimal digits: Shifting by 4*n bits and ANDing with 0xf seems a lot more natural than using a modulo calculation. –  Eugen Rieck Feb 16 '12 at 18:59
    
@Eugen Rieck and a call to pow... –  crush Feb 16 '12 at 19:16

2 Answers 2

up vote 3 down vote accepted

Here's a bucket sort based on the info in the OP question.

void b_sort(int sarray[], int array_size) {
    const int max = array_size;
    // use bucket[x][max] to hold the current count
    int bucket[10][max+1];
    // init bucket counters
    for(var x=0;x<10;x++) bucket[x][max] = 0;
    // main loop for each digit position
    for(int digit = 1; digit <= 1000000000; digit *= 10) {
        // array to bucket
        for(int i = 0; i < max; i++) {
            // get the digit 0-9
            int dig = (sarray[i] / digit) % 10;
            // add to bucket and increment count
            bucket[dig][bucket[dig][max]++] = sarray[i];
        }
        // bucket to array
        int idx = 0;
        for(var x = 0; x < 10; x++) {
            for(var y = 0; y < bucket[x][max]; y++) {
                sarray[idx++] = bucket[x][y];
            }
            // reset the internal bucket counters
            bucket[x][max] = 0;
        }
    }
}

Notes Using a 2d array for the bucket wastes a lot of space... an array of queues/lists usually makes more sense.

I don't normally program in C++ and the above code was written inside the web browser, so syntax errors may exist.

share|improve this answer
    
you may now use ideone.com to programming inside web browser –  zinking Jan 7 at 14:32

The following code uses hex digits for a bucket sort (for BITS_PER_BUCKET=4). Ofcourse it is meant to be instructive, not productive.

#include <assert.h>
#include <stdio.h>

#define TEST_COUNT 100
#define BITS_PER_BUCKET 4
#define BUCKET_COUNT (1 << BITS_PER_BUCKET)
#define BUCKET_MASK (BUCKET_COUNT-1)
#define PASS_COUNT (8*sizeof(int)/BITS_PER_BUCKET)

int main(int argc, char** argv) {

  printf("Starting up ...");
  assert((PASS_COUNT*BITS_PER_BUCKET) == (8*sizeof(int)));
  printf("... OK\n");

  printf("Creating repeatable very-pseudo random test data ...");
  int data[TEST_COUNT];
  int x=13;
  int i;
  for (i=0;i<TEST_COUNT;i++) {
    x=(x*x+i*i) % (2*x+i);
    data[i]=x;
  }
  printf("... OK\nData is ");
  for (i=0;i<TEST_COUNT;i++) printf("%02x, ",data[i]);
  printf("\n");

  printf("Creating bucket arrays ...");
  int buckets[BUCKET_COUNT][TEST_COUNT];
  int bucketlevel[BUCKET_COUNT];
  for (i=0;i<BUCKET_COUNT;i++) bucketlevel[i]=0;
  printf("... OK\n");

  for (i=0;i<PASS_COUNT;i++) {

    int j,k,l;

    printf("Running distribution pass #%d/%d ...",i,PASS_COUNT);
    l=0;
    for (j=0;j<TEST_COUNT;j++) {
      k=(data[j]>>(BITS_PER_BUCKET*i)) & BUCKET_MASK;
      buckets[k][bucketlevel[k]++]=data[j];
      l|=k;
    }
    printf("... OK\n");

    if (!l) {
      printf("Only zero digits found, sort completed early\n");
      break;
    }

    printf("Running gathering pass #%d/%d ...",i,PASS_COUNT);
    l=0;
    for (j=0;j<BUCKET_COUNT;j++) {
      for (k=0;k<bucketlevel[j];k++) {
        data[l++]=buckets[j][k];
      }
      bucketlevel[j]=0;
    }
    printf("... OK\nData is ");
    for (l=0;l<TEST_COUNT;l++) printf("%02x, ",data[l]);
    printf("\n");

  }
}
share|improve this answer

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.