I'm trying to implement merge sort in Python, but I keep getting the same mistake: IndexError: list assignment index out of range. I based my code on the Java code by Sedgewick and Wayne found here: https://algs4.cs.princeton.edu/22mergesort/Merge.java.html

Am I doing something wrong with the auxiliar array while trying to pass the items from vetorNum to vetorAux? What is it then?

vetorAux = [] * len(vetorNum)
nTrocas = 0
mergeSort(vetorNum, vetorAux, 0, len(vetorNum)-1)


def mergeSort(vetorNum, vetorAux, i, f):
    if(f > i):
        m = (i+f)//2
        mergeSort(vetorNum, vetorAux, i, m)
        mergeSort(vetorNum, vetorAux, m+1, f)
        intercala(vetorNum, vetorAux, i, m, f)


def intercala(vetorNum, vetorAux, i, m, f):
    global nTrocas

    if(i == f):
        return

    k = i
    while(k <= f):
        vetorAux[k] = vetorNum[k]
        k += 1

    i_aux = i
    m_aux = m+1
    k = i
    while(k <= f):
        if(i_aux > m):
            vetorNum[k] = vetorAux[m_aux]
            m_aux += 1
        elif(m_aux > f):
            vetorNum[k] = vetorAux[i_aux]
            i_aux += 1
        elif(vetorAux[i_aux] > vetorAux[m_aux]):
            vetorNum[k] = vetorAux[m_aux]
            m_aux += 1
            nTrocas += 1
        else:
            vetorNum[k] = vetorAux[i_aux]
            i_aux += 1
        k += 1
  • You can find great examples of codes (including merge sort) in python on Rosetta Code. rosettacode.org/wiki/Sorting_algorithms/Merge_sort#Python – Ulysse BN Apr 1 at 2:52
  • 1
    You need to change your line vetorAux = [] * len(vetorNum) to vetorAux = [0] * len(vetorNum) instead. Otherwise vetorAux will be empty. – lcastillov Apr 1 at 2:56
  • Worked now, thanks lcastillov. Also thanks Ulysse for the useful link. – F.G. Apr 1 at 2:59

Your Answer

 

By clicking "Post Your Answer", you acknowledge that you have read our updated terms of service, privacy policy and cookie policy, and that your continued use of the website is subject to these policies.

Browse other questions tagged or ask your own question.