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I have no egrets.

3h
reviewed Approve suggested edit on extensibility tag wiki excerpt
22h
comment common overlap of N circles
One speedup: If there's no point common to all circles, it's likely that there is some pair of circles that don't intersect. So for many "No"-instances, you can get a correct "No" answer in just O(n^2), and the 2-circle intersection test is very quick: is (r1+r2)^2 < (x1-x2)^2 + (y1-y2)^2? (This doesn't catch all "No"-instances though: e.g. it's possible to arrange 3 circles so that any pair of them has some slight overlap, but no point is in the common intersection of all 3. Thus the full O(n^3) is still needed in the worst case.)
1d
comment Creating Objects of same Class with different Functions at Compiletime
Whatever you do, don't store derived objects in an STL container of base class type -- this causes object slicing, i.e. badness that the compiler won't object to.
1d
comment C++ find words in string with if statments
You're not only new to C++, you're new to programming. No shame in that, but why claim otherwise?
1d
comment Creating Objects of same Class with different Functions at Compiletime
Any reason why you can't use the standard OO approach of making void module::work(mainclass*) a virtual function in module, and then deriving a different base class for each different implementation? You would then need m_ModuleList to be a vector of pointers to module (or unique_ptr<module> or smart_ptr<module>, etc.)
2d
answered How to design a data structure which supports the following operations in constant time?
2d
comment How to generate n^r variations of an array (i.e. variations with repetition of nCk)
Sounds right to me @gmch. OP, think of it this way: if you wanted to generate all 5-digit numbers, allowing repetition of digits, how would you do it? This is much easier than generating permutations IMHO.
2d
answered Bipartite matching with a twist
Jul
26
comment Tricky algorithm for finding alternative route in graph with few added edges
Seems like a decent heuristic to me, although as you say, it unnecessarily forces in all internal vertices. I would suggest a greedy postprocessing step in which every alternative/damaged edge ending at an internal vertex is examined to see whether it can be safely deleted (that is, whether all the leaves that are descendants of this internal vertex can be covered by adding other undamaged edges). Repeat until no more edges to internal vertices can be deleted.
Jul
26
comment Tricky algorithm for finding alternative route in graph with few added edges
+1. I'm wondering whether the OP forgot to mention a constraint, though -- it might be that the new graph that connects all the leaves to the root is also required to be a (directed) tree. But then the problem becomes equivalent to Exact Cover, which is still NP-Hard. :(
Jul
26
comment Tricky algorithm for finding alternative route in graph with few added edges
Is it required that the edges you add (or repair) cause the resulting graph to be a tree again? Or is it OK if some leaf is connected to the root via two or more different paths?
Jul
26
comment Coin sum with negative coin values
Second, assuming that you want to continue treating the problem as a set of coins rather than coin types, I would suggest starting by dealing with all the negative coins first, and building "downwards": conceptually, you want to calculate table[i][j] for all min <= i < 0, where min is the sum of all negative coins. (Of course you can't index an array with a negative subscript, so you'll need some other scheme, e.g. an offset.) Then you can work back up as usual.
Jul
26
comment Coin sum with negative coin values
First, do you realise that your current solution is never allowed to choose the same coin more than once? I mention this because problems stated in terms of making change with coins often use a set of coin types, which can be used as many times as you want, rather than a fixed set of coins.
Jul
25
comment generate a master key as short as possible
@Fanckush: That already fails for n=2: (1) Check whether 0000 is a substring of what we have so far; it's not, so append it. (2) Check whether 0001 is a substring of what we have so far; it's not, so append it, giving 00000001, which is 8 digits when the shortest representation is 00001 at 5 digits.
Jul
25
comment What are the known techniques to avoid pixelation?
If you don't go with vector graphics, it seems to me that the only solution is to make sure that you have an original image at least as large as it needs to be for a maximum-resolution device. You can then scale that image down for lower-resolution devices without losing quality. To save bandwidth and client-side CPU you might decide to keep several already-scaled-down versions, and just send the smallest one that with size >= what the client needs.
Jul
25
comment I'll never have any questions
Most people get most of their reputation by answering questions, not by asking them.
Jul
24
comment Optimal pairing algorithm with few-value integer data
Thanks, but I'm afraid I've spent a lot of time on this question. I'll try to come back to it, but right now I need to do some other work.
Jul
24
answered Printing all alignments of two sequences with maximum score
Jul
24
comment When would you swap two numbers without using a third variable?
Not exactly the same thing, but under certain conditions it's possible to use a linked list that contains just a single pointer in each node as a bidirectional linked list by storing pNext ^ pPrevious in this pointer entry. Then, provided you know the address of the {previous,next} node as well as the current one, you can get to the {next,previous} node with an XOR.
Jul
24
comment When would you swap two numbers without using a third variable?
"In a programming interview."