-1

Me and my friend have been working on a problem for school. We are traversing a graph with DFS and are counting the number of nodes in each given component. We get widely different results and have identified where the difference lies.

When going into the next recursion, my friend uses the syntax

componentSize += DFS_visit(nextNodeToVisit);

whereas I use

componentSize = 1 + DFS_visit(nextNodeToVisit);

I originally thought these two were the same, so what is the difference? And which one should be used in our case?

New contributor
thestarwarsnerd is a new contributor to this site. Take care in asking for clarification, commenting, and answering. Check out our Code of Conduct.
9
  • 2
    a += b is synonymous with a = a + b
    – jsotola
    May 14 at 7:45
  • 3
    They're only the same in the case where componentSize starts as 1.
    – jonrsharpe
    May 14 at 7:46
  • 1
    @S3DEV and jonrsharpe Thank you for good explanations!:D May 14 at 7:53
  • 1
    just note that a += b is not exactly the same as a = a + b - the first one includes an implicit cast and a is only evaluated once! JLS 15.26.2. Compound Assignment Operators May 14 at 8:16
  • 1
    The second part of your question ("... which one should be used in our case ...") can't really be answered unless you show us how you're using these lines. In this regard @jsotola is correct. But a big part of software development is trying something, checking if the results are correct, and fixing it if they're not. No successful software developer writes an entire program correctly before running it. We build a little, test it, build a little more, test it, and so on. So jsotola's comment about producing "... correct results ..." is more insightful than your sarcastic response ... May 14 at 8:55

1 Answer 1

3
 componentSize += DFS_visit(nextNodeToVisit); 

means

 componentSize = componentSize + DFS_visit(nextNodeToVisit);

Compare that with

 componentSize = DFS_visit(nextNodeToVisit) + 1;

See the difference?

In general a <op>= b means roughly the same as a = a <op> b where <op> an operator. (There is also a typecast of the LHS to the type of a.)


And which one should be used in our case?

It is not clear which is correct. We would need to see the data structure and more of the algorithm.

Your Answer

thestarwarsnerd is a new contributor. Be nice, and check out our Code of Conduct.

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.