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CODE:

struct Stringdata
{
  // Length of data in buffer.
  size_t len;
  // Allocated size of buffer.
  size_t alc;
  // Buffer.
  char data[1];
};

typedef std::list<Stringdata*> Stringdata_list;
Stringdata_list strings_;

Stringdata *psd = this->strings_.front();

//...
if (len > psd->alc - psd->len)
alc = sizeof(Stringdata) + buffer_size;
else
{
  char* ret = psd->data + psd->len;
  memcpy(ret, s, len - sizeof(Stringpool_char));
  memset(ret + len - sizeof(Stringpool_char), 0,
     sizeof(Stringpool_char));

  psd->len += len;

  return reinterpret_cast<const Stringpool_char*>(ret);
}

In the code sample above, I have confused about the operations in the else

branch.

Does it create a new element and insert it after the front element or just place a new element after within the first element of list?

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3 Answers

up vote 1 down vote accepted

Your code appears to do neither. The code in the else branch does not modify the strings_ structure at all. The code is only modifying the element return from the front of the list. This should have no affect on the actual list structure.

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It's a list of pointers, so it is modifying the thing pointed to by the front list element. –  anon Jun 7 '09 at 15:27
    
@Neil: If iterating the new list,does the modified list have to take care of the first element or iterate as usual? –  Kim Jun 7 '09 at 15:30
    
@Neil, yes but this should not affect the structure of the list with respect to ordering. That appears to be what the OP is asking. –  JaredPar Jun 7 '09 at 15:30
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It doesn't create a new element -- just appends data from s to the data that's already in the front element, if there's space. Very confusingly written code, though.

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As far as I can tell (some important code is missing from your excerpt), you have a block of data, which is essentially an array of Stringdata object, and a list<> of pointers into that block. The else block is expanding that array.

You probably would be better off with a vector<Stringdata> rather than a list<Stringdata*>

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