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Last week i had a project from my teacher asking me to develop a program which takes in a string (stream of integers to be precise) and calculates the sum of the numbers in the string for each number in the string ie.

if input is 31456

  • 1st loop does nothing (no number to left of 3 with result of sum as 0)
  • 2nd loop ends on 3 (with result of sum as 3)
  • 3rd loop ends on 1 (with result of 3+1 = 4)
  • 4th loop ends on 4 (with result of 3+1+4 = 8)
  • 5th loop ends on 5 (with result of 3+1+4+5 = 13)
  • 6th loop ends on 6 (with result of 3+1+4+5+6 = 19)

I did submit a working project but it is full of spaghetti code (nested loops which ends if string length is less than the number of loops) which is not a clean approach. I wondered and studied a quite a lot over this situation in vain. I have not found any way of doing this without nested for loops in C (or maybe i gave up too fast ?)

Again, i am not asking you guys for an answer to my problem but wanted to know if there is a way of doing this without the nested loops (which will have problem if length of input > number of nested loops).

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You SHOULD post the spaghetti code to let others know what you have tried –  prusswan Dec 1 '11 at 12:17
1  
Why nested loops ? It looks like you need only one –  ziu Dec 1 '11 at 12:20
    
@ziu , nested loops would be required like for i; i<strlen; i++ // This loop goes through each digit in the stream for j; j<i; j++ // This loop goes through each digit before the digit at "i" in the stream So for 20 digits, i required 20 nested for loops, it works though but is as i said unrequired complication. –  user1075375 Dec 1 '11 at 12:23
1  
@user1075375 there's no reason to move back and forth in the number stream –  ziu Dec 1 '11 at 12:29
    
This should be very simple and straight-forward. If you're struggling, step back and think about the flow logic of the program for a bit. (There should be one single loop, and it should be while (std::cin >> n).) –  Kerrek SB Dec 1 '11 at 12:29
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6 Answers

up vote 3 down vote accepted

Here is my advice: stop thinking in "loops" and start thinking in "steps". If the input string has n characters, you have n+1 steps.

Now, ponder the following three questions:

  1. Do you know the solution to the first step (no digits)?
  2. Given the solution to step k, how can you compute the solution to step k+1?
  3. How can you combine questions 1 and 2 to solve your entire problem with just a single loop?

Since this is homework, I'll let you take it from here.

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In other words, think about how to reuse the result of step k in step k+1 –  prusswan Dec 1 '11 at 12:29
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If i am getting you right

double temp = 0;
for(int i = 0; i < str.Length; i++)  // str is your complete number
{
   temp += Convert.ToDouble(str[i]);
}

Hope it helps.

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That calculates just the sum of digits (ie, total = 19 as in my example), i require the result of sum at every digit (ie, the 3,4,8,13,19 as calculated in my example) –  user1075375 Dec 1 '11 at 12:26
    
save it as array and can be used. –  Sandy Dec 1 '11 at 12:27
    
IF you need to store the sum at each digit and I understood you correctly, then store intermediate sums in another vector, i.e.: double result = new double[str.size()]; for(int i = 0; i < str.size(); i++) // str is your complete number, use std::vector::size() for C++ { temp += str[i]; result[i] = temp; } delete result; // do not forget to free array from memory –  Pavlo Dyban Dec 1 '11 at 12:29
    
as Pavlo said....use a simple array for this –  Sandy Dec 1 '11 at 12:32
    
Or simpler yet, just output the subtotals as you go. –  Karl Knechtel Dec 1 '11 at 12:53
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A pseudo-code:

array of sums
sums[0] = 0;              // That first time that you want to get 0!!
for i = 1 to length of str
    sums[i] <- sums[i-1] + str[i]
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#include <stdio.h>

int sum(const char ch){
    static int sum = 0;
    int retValue = sum;

    sum += ch -'0';

    return retValue;
}

int main(){
    char nums[] = "314156";/* "31456" ? */
    int size = sizeof(nums)/sizeof(char);
    int i;

    for(i=0 ; i< size ; ++i){
        printf("%d time loop sum is %d\n", i+1, sum(nums[i]));
    }

    return 0;
}

DEMO

1 time loop sum is 0
2 time loop sum is 3
3 time loop sum is 4
4 time loop sum is 8
5 time loop sum is 9
6 time loop sum is 14
7 time loop sum is 20
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There's a C++ Standard Library function called partial_sum() that performs the series of sums you describe in a single pass over the input.

int sums[] = { 0, 3, 1, 4, 1, 5, 6 };

std::partial_sum(sums, sums + 7, sums);

// The results are left in sums[0]..sums[6]
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#include<iostream>
#include<cctype>
using namespace std;
void main()
{
const int SIZE=10;
char myArray[SIZE];
int length=0,sum=0;
cout<<"enter Array of digit from 1-9\n\n ";
cin>>myArray;
cout<<myArray<<endl;
for(int i=0;i<myArray[i];i++)
{
    if(!isspace(myArray[i]))
    //if(myArray[i]!=NULL)

    length++;
}
    cout<<length<<endl;


for(int i=0;i<length;i++)
{
    sum+=myArray[i]-'0';

}



    cout<<sum;
    }
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