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I'm working on the following codingbat problem:

Return the sum of the numbers in the array, except ignore sections of numbers starting with a 6 and extending to the next 7 (every 6 will be followed by at least one 7). Return 0 for no numbers.

sum67([1, 2, 2]) → 5
sum67([1, 2, 2, 6, 99, 99, 7]) → 5
sum67([1, 1, 6, 7, 2]) → 4

My solution is:

def sum67(nums):
    sum = 0 
    throwaway = 0
    for i in range(len(nums)):
        if throwaway == 0:
            if nums[i] == 6:
                throwaway = 1
        elif throwaway == 1 and i > 0 and nums[i-1] == 7:
            throwaway = 0
        if throwaway == 0:
            sum += nums[i]
    return sum

I totally know this is not the best solution, but I'm just curious to know why this is wrong. Could you please explain me why this is wrong and in which particular case it gives a wrong result?

share|improve this question
    
First of all, the code is not properly indented, please fix it (I do not have edit privileges ;) ). – hochl Dec 5 '11 at 12:15
    
Are you aware of the bool type? – Chris Morgan Dec 5 '11 at 12:23
    
for i in range(len(nums))? Eek! – Chris Morgan Dec 5 '11 at 12:26
    
Hey he just started programming ... :( – hochl Dec 5 '11 at 12:29
    
@hochl: at first I was going to explain about Python iteration, then I saw that he was using [i-1] and decided that he was probably doing it on purpose. If not, @Jeezus, in Python you don't use for i in range(len(seq)): seq[i] in general, you use for i in seq: i. – Chris Morgan Dec 5 '11 at 12:35
up vote 5 down vote accepted

Well, your program has a bug. Check the results of the following:

print sum67([1,2,5])
print sum67([1,2,6,5,7])
print sum67([1,2,6,5,7,6,7])

This will print:

8
3
16 <-- wrong

If a 7 is followed by a 6 immediately, you will add the 6 and all following numbers. I'm not sure if more than one range of 6 ... 7 is allowed in the input, but if it is, you have to fix your algorithm.

This simple implementation does return correct numbers:

def sum67(nums):
        state=0
        s=0
        for n in nums:
                if state == 0:
                        if n == 6:
                                state=1
                        else:
                                s+=n
                else:
                        if n == 7:
                                state=0
        return s

Besides, if you don't need to use an index for some obscure reasons, you can directly iterate over the elements of a list ( for element in list: ... ).

share|improve this answer
    
+1: Multiple 6-7 ranges are allowed (there are tests for that); the simplest test case that fails for the OP's solution would be sum67([6,7,6,7]) -> 0 – Ferdinand Beyer Dec 5 '11 at 12:37
    
Thanks man, I overcomplicated it without any reason: my solution would work if I added " and nums[i]!=6 at line 8, but obviously yours is much better. Yes, I used an index because I wanted to access the previous element of the list, but as you show this is not necessary. – Wilco Dec 5 '11 at 12:56
    
Actually you could make the state variable in my solution a bool (True or False), but the integer solution has the advantage that you can have more than two states and is, in my opinion, more educational. Glad I could help! – hochl Dec 5 '11 at 12:59
public int sum67(int[] nums) {
 int sum=0;
  for(int i=0; i<nums.length ; i++)



{
          if(nums[i]==6)
               for(int k=i+1 ; k<nums.length ; k++ )
                  {if(nums[k]==7)
                                {i=k; break;}
                  }   
           else if(nums[i]==6) 
              sum=sum+nums[i];
          else
              sum=sum+nums[i];


  }
  return sum;
}
share|improve this answer

Below is my solution for your reference:

def sum67(nums):
flag=False
sum=0

for num in nums:
    if(num==6):                  #Turn the flag on if the number is 6
        flag=True
        continue
    if(num==7 and flag is True): #Turn the flag Off when 7 is seen after 6
        flag=False
        continue
    if(flag is False):           #Keep on adding the nums otherwise
       sum+=num
return sum
share|improve this answer

Here's my solution to that problem. As answered already, the issue is when a 6 occurs immediately after a 7. I solved this in a slightly different way, so I thought I'd post it.

def sum67(nums):
  total = 0
  i=0  
  while i < len(nums):
    if nums[i] == 6:
      while nums[i] != 7:
        i+=1
      i+=1
    if i<len(nums) and nums[i]!=6:  
      total+=nums[i]
      i+=1
  return total
share|improve this answer

My solution:

def sum67(nums):
    result = 0
    flag = True
    for num in nums:
        if num == 6:
            flag = False
        if flag:
            result += num
        if num == 7:
            flag = True
    return result
share|improve this answer

I hate my solution but it works, brute force I'd say. Let me know what you think.

  def sum67(nums):
        i = 0
        sum = 0
        summing = True
        while i < len(nums):
            if nums[i] == 6:
                summing = False
                i += 1
                continue
            if nums[i] == 7:
                if summing:
                    sum += nums[i]
                summing = True
                i += 1
                continue
            if summing:
                sum += nums[i]
            i +=1
        return sum
share|improve this answer
    
you should really use a for loop – bugmenot123 May 8 at 19:22

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