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I'm trying to wrote a MPI program with C++, to sum the values of a very large array. The code below works well with array dimension up to 1 million, but when I try to execute with 10 million elements or more, I receive a sigmentation error. Someone can help me? Thanks

#include <stdio.h>
#include "mpi.h"

int main(int argc, char *argv[]) {
    double t0, t1, time; //variabili per il calcolo del tempo
int nprocs, myrank;
    int root=0;
long temp, sumtot, i, resto, svStartPos, dim, intNum;

//Dimensione del vettore contenente i valori da sommare
const long A_MAX=10000000;

MPI_Init(&argc, &argv);
MPI_Comm_size(MPI_COMM_WORLD, &nprocs);
MPI_Comm_rank(MPI_COMM_WORLD, &myrank);


    long vett[A_MAX];
long parsum[B_MAX];

long c=-1;
int displs[nprocs];
int sendcounts[nprocs];

//printf("B_MAX: %ld\n", B_MAX);

//Inviamo (int)(A_MAX/nprocs) elementi tramite una scatter, resto è il 
//numero di elementi restanti che verranno inviati tramite la scatterv
resto= A_MAX % nprocs;
//printf("Resto: %d\n", resto);

//Posizione da cui iniziare lo Scatterv
svStartPos = A_MAX - resto;
//printf("svStartPos: %d\n", svStartPos);

// numero di elementi per processore senza tener conto del resto 
dim= (A_MAX-resto)/nprocs; 
//printf("dim: %d\n", dim);

//Il processore 0 inizializza il vettore totale, del quale vogliamo
//calcolare la somma
if (myrank==0){
    for (i=0; i<A_MAX; i++)
        vett[i]=1;
}

//Ciascun processore inizializza il vettore locale del quale calcoleremo la
//somma parziale dei suoi elementi. tale somma parziale verrà utilizzata
//nell'operazione di reduce
for (i=0; i<B_MAX; i++)
    parsum[i]=-1;

//Ciascun processore inizializza i vettori sendcounts e displs necessari per
//l'operazione di scatterv
for (i=0; i<nprocs; i++){
    if (i<A_MAX-svStartPos){
        //Se il rank del processore è compreso tra 0 e resto ...
        sendcounts[i]=1;            //...verrà inviato 1 elemento di vett...
        displs[i]= svStartPos+i;    //...di posizione svStartPos+i
    }
    else {
        //se il rank del processore è > resto ...
        sendcounts[i]=0;            //...non verrà inviato alcun elemento
        displs[i]= A_MAX;           
    }
}

root = 0;    //Il processore master

sumtot = 0;  //Valore della domma totale degli elementi di vett
temp = 0;    //valore temporaneo delle somme parziali

MPI_Barrier(MPI_COMM_WORLD);

if (A_MAX>=nprocs){
   MPI_Scatter(&vett[dim*myrank], dim, MPI_LONG, &parsum, dim, MPI_LONG, 0, MPI_COMM_WORLD);
   printf("Processore: %d - Scatter\n", myrank);
}

//La scatterv viene effettuata solo dai processori che hanno il rank 
//0<myrank<resto
if (sendcounts[myrank]==1){       
   MPI_Scatterv(&vett,sendcounts,displs,MPI_LONG,&c,1,MPI_LONG,0,MPI_COMM_WORLD); 
   parsum[B_MAX-1]=c; 
   printf("Processore: %d - effettuo la Scatterv\n", myrank);
} 

MPI_Barrier(MPI_COMM_WORLD);

if(myrank==0){
    t0 = MPI_Wtime(); //inizio conteggio tempo
}

for(i=0; i<B_MAX; i++){
    if (parsum[i]!=-1)     
        temp = temp + parsum[i]; //somma degli elementi 
}
printf("Processore: %d - Somma parziale: %ld\n", myrank, temp);

MPI_Barrier(MPI_COMM_WORLD);

//il risultato di somma di ogni processore viene mandato al root che somma 
//i risultati parziali
MPI_Reduce(&temp,&sumtot,1,MPI_LONG,MPI_SUM,root,MPI_COMM_WORLD);

MPI_Barrier(MPI_COMM_WORLD);

if(myrank==0){
    t1 = MPI_Wtime(); //stop al tempo

    //calcolo e stampa del tempo trascorso
    time = 1.e6 * (t1-t0);
    printf("NumProcessori: %d  Somma: %ld  Tempo: %f\n", nprocs, sumtot, time);

    //verifica del valore somma. Se è corretto sumtot è pari a 0.
    sumtot = sumtot - A_MAX;
    printf("Verifica: %ld\n", sumtot);
}

MPI_Finalize();

return 0;

}

share|improve this question

The first real error I found was this line:

MPI_Scatterv(&vett,sendcounts,displs,MPI_LONG,&c,1,MPI_LONG,0,MPI_COMM_WORLD);

Which passes the address of an ::std::vector<int> to a function that expects a void* in that argument. The conversion of any pointer type (like ::std::vector<int>*) to void* is allowed as an implicit conversion, so there are no compile errors at this point. However, MPI_Scatterv expects its first argument to be the address of the send buffer, which MPI expects to be a normal array.

I guess that you changed your code recently from the commented out sections, where vett is an array and tried to get your call to work by adding the address-of operator in your MPI_Scatterv call. The original array probably caused segfaults at some point since it was stack-allocated and you ran out of stack space with those monsters (default stack size on linux systems is on the order of megabytes iirc, which would exactly fit that assumption - test this with ulimit -s).

The change to ::std::vector<int> caused the actual data to be placed on the heap instead, which has a much larger maximum size (and on 64 bit systems you can expect to run out of physical memory much earlier). You actually already implemented a solution to your particular problem a few lines earlier:

MPI_Scatter(&vett[dim*myrank], dim, MPI_LONG, &parsum, dim, MPI_LONG, 0, MPI_COMM_WORLD);

Here, you access an element and then take its address (note that [] binds tighter than &). This is O.K. as long as you do not modify the underlying vector. If you just apply that solution to the previous call, you can solve this problem quite easily:

MPI_Scatterv(&vett[0],sendcounts,displs,MPI_LONG,&c,1,MPI_LONG,0,MPI_COMM_WORLD);

In any case, except for the two vector objects, your code looks like it was written for the old C standard, not C++ - for example you might consider having a look into things like the new operator family instead of malloc.h, you can put your variable declarations in line with their definitions (even inside for loop headers!), ease your life with using the ostream cout instead of printf...

share|improve this answer
    
Sorry, the original program was different. I update the question with the original version of my code... Unfortunately if I try to use new operator I have compilation error, because I'm running this program on a cluster, and I don't know which version of compilator it uses. So.. How can I manage these arrays without support of vector? – Giovanni Nov 18 '11 at 14:51
    
if you can compile the code with vector you probably have access to the new operator.... did you have a look at the stack limit vs. the size of your two arrays...? – gha.st Nov 18 '11 at 15:08
    
if I try to #include "vector.h" I receive "No such file or directory" error. I don't know the stack limit because I run the program on the cluster of my university, and I don't have too much details of the machine.. – Giovanni Nov 18 '11 at 15:16
    
That would be because the header is not named "vector.h" but <vector>, since we are talking about a part of the C++ standard library. Are you sure you are using C++...? – gha.st Nov 20 '11 at 11:25

The program seems to me a C one, since you are not using any C++ facility, or any header (which would have been cstdio, without .h).

Anyway, can you please replace the array allocation, A[very huge number], with a standard allocation? If you want C, malloc, otherwise, new. Then post the results.

This seems to be a heap allocation problem (http://c-faq.com/strangeprob/biglocal.html).

Let me know.

share|improve this answer

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