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I am finding a better logic to combine 2 vectors.

vector_A[id][mark1];
vector_B[id][mark2];

vector_A: id = [300 , 502, 401 , 900 , 800 ,700 , 250 , 001] 
          mark1 = [55 , 50 , 30 , 28 , 25 , 11 , 04 , 03]

vector_B: id = [800 , 005 , 502 , 925 ,025 ,300 , 52] 
          mark2 = [75, 60 , 50 ,35 , 30 , 25 , 04]

combination rule is If same id find in two vectors add mark1 and mark2. If not just display.

vector_combined: id = [800 , 300 , 502 , 005 , 925 , 401] 
                 mark_combine = [100, 80 , 100 , 60 , 35 ,30]

Please help me with a optimal solution.

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when you say "a better logic" you imply you already have a way to combine them. can you show it so that we can figure if something can be done better? –  Marius Bancila Jun 23 '11 at 10:51
2  
Isn't this a duplicate of this question of yours from a couple of hours ago which got an amazing 15 downvotes? –  Jean-François Corbett Jun 23 '11 at 10:58
    
@Jean: Yes it is an exact dup, but it looks like the original is now closed and at -15 with little chance for an answer. Yes the problem description is terrible, but given that s/he was upfront about tagging it as homework I'm inclined to give the benefit of the doubt. –  j_random_hacker Jun 23 '11 at 11:53
    
Your question is stated very imprecisely -- for example, the word "display" doesn't make any sense. It's OK for people whose first language isn't English to have spelling/grammar mistakes, but you need to get the meaning across, which you're not doing here. Luckily it's possible to infer from your code snippets what you actually want to know. –  j_random_hacker Jun 23 '11 at 12:03
    
The way I would ask this question is: "Given the following 4 vectors:" (followed by your 1st code snippet) "I want to create the following 2 vectors:" (followed by the 2nd code snippet) "That is, if a number appears in both vector_A and vector_B, then it should appear in vector_C, and the corresponding element of mark_combine should be the sum of the corresponding elements from mark1 and mark2." –  j_random_hacker Jun 23 '11 at 12:04

2 Answers 2

up vote 1 down vote accepted

Here on SO we're happy to assist people with hints for homework questions, provided they have been up-front about acknowledging the question as homework -- as you have been :)

As things are now, to find a match for a particular element in vector_A, you need to scan every element of vector_B. So if there are m elements in vector_A and n elements in vector_B, this will take O(mn) time to find all matches -- quite slow.

Suppose we sort these two vectors, and reorder mark1 and mark2 accordingly as well. What you now notice is that when looking for a particular element in vector_B, you can stop as soon as you get to an element that is too large -- since you know that all later elements must be even larger. That will save some time.

In fact you can go one step further and look at just the 1st element of vector_A and vector_B. Let's call these a and b respectively. Now only one of 3 cases can occur:

  1. a < b. In this case, we can conclude that a cannot appear anywhere in vector_B, since all later elements will be at least as large as b, which is already too large.
  2. a > b. Similarly we can conclude that b cannot appear anywhere in vector_A, since all later elements will be at least as large as a, which is already too large.
  3. a = b. In that case, clearly this number appears in both vectors!

Bearing in mind that sorting takes just O(nlog n) time, this should give you a big hint for a faster algorithm. If you need a bit more help understanding, leave a comment.

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I am not sure if I understand your problem correctly... but, are you by any chance looking for std::set_intersection ?

The algorithm requires your ranges to be sorted. So, sort them and feed them to set_intersection

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