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I have this algorithmic problem to resolve, I have a vector with numbers and I must find the longest unimodal streak (that means it can increase then decrease, but not more than one time).

i.e : in the vector [4 5 8 5 9 6 3], 45863 is an unimodal streak while 458593 isn't because it's increasing to 8 then decreasing to 5 then increasing again (which is not permitted).

Using dynamic programming I managed to create 3 vectors : the first one with the length of the longest increasing streak that stops at the element x, the second one with the length of the longest decreasing streak that starts at the element x, and the third one is the sum of the first two.

Basically if I take the maximum of the third vector it's the length of the longest unimodal streak+1 (because the element x is counted twice).

What I want to do now is to display that streak. I'm thinking of using these vectors that way : using a "for" starting at the position of the maximum and going to the beginning of the vector. The I'm going to check the value in the first vector and if that value is exactely 1 less than the previous value (the first time it will be the value of the maximum in the first vector) I will keep that value in a queue and display it later, then continue. I will then do nearly the same thing for the second part of the vector using the second vector.

I know that sounds messy and complicated but with this example it will be clearer.

I have this base vector :  
9 4 5 6 9 7 8 3 4 3

1 1 2 3 4 4 5 1 2 1 (first vector) = A
4 2 3 3 4 3 3 1 2 1 (second vector) = B
5 3 5 6 8 7 8 2 4 2 (sum of the two) = C

So the longest streak here is 7 and the peak is 9 (or 8 but thats the same thing).

So what I want to do is : The value of the peak is "4" in the first vector so I'll check the first being "3" going left, it's 6, I put it in the queue, I'm now looking for the first "2", it's 5, in the queue, and then it's 4 because it's the first with the value "1".

I will then display the queue, then the peak, then do the same thing with the second part. I will have 4 5 6 9 7 4 3. (Which is the good sequence).

My question is : Will this work every time? I have the feeling that something can screw up so I did some tests and every time it went fine. I'd like to know if there are specific base vectors that screw the thing up. If you could please tell me what you think that would be great!

Thank you for reading all this, I hope that someone can help me.

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Why is the peak 4 and not 5? Are you taking the maximum of the base vector or the maximum of A? –  IVlad Apr 15 '11 at 14:07
    
The peak is 9, which has the value 4 in A. The only maximum I track is the maximum of C which give me the position of the peak. –  Sword22 Apr 15 '11 at 15:10

2 Answers 2

up vote 0 down vote accepted

Looks good to me. The dynamic programming solution, if implemented correctly, is guaranteed to find the optimum because it indirectly checks all possible selections. In this case, the sequence needs to have a "center" (the point where it stops increasing and starts decreasing). That's the parameter you're brute-forcing.

One remark, though

The I'm going to check the value in the first vector and if that value is exactely 1 less than the previous value (the first time it will be the value of the maximum in the first vector) I will keep that value in a queue and display it later.

I think what you really want here is a stack, not a queue, given that the last element you'll find is the first one you want to display. That applies to the first vector.

More generally, you can use a regular array and that'll work for both vectors.

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Yeah I coded a stack but I wrote queue here, no clues why. I fact what I'm afraid of, is that if by any chance when I put elements in the stack I put two elements that are not in the same streak that could go wrong. –  Sword22 Apr 15 '11 at 14:58
    
i.e. 7 4 9 5 10 ... There are three good sequences : 7 9 10, 4 9 10 and 4 5 10, I don't want to get 7 5 10 for instance. That's what I'm not sure of. Until now it looks that it's not gonna happen. About using a regular array that would simplify my code what do you mean, creating a vector of the right size and putting them in the right place directly? –  Sword22 Apr 15 '11 at 15:04
    
the thing about using an array is that you can later access it in either direction. –  abeln Apr 15 '11 at 15:45
    
About your first question. Once you have the two arrays with 1) the longest non-decreasing sequence ending at position i and 2) the longest non-increasing sequence starting at position i, then you can be certain of where the "center" of the sequence you're looking for should be. After that, you're good to go. In your example, say you find that 5 should be the center. When scanning to the left, you would never pick 7 5 10 because 7 > 5. You do have to keep track of what the last element you picked was, it's not enough with the length being one less than the previous one. –  abeln Apr 15 '11 at 15:51
    
I meant 10 the center but with two possible increasing streaks intersecting themselves like 7 4 9 5 10 2 1 => 4 5 10 2 1 and not 7 5 10 2 1. But the problem doesn't occur and it's not easy to be sure he won't. Anyway I ran a lots of tests and it works every time. Thank you for your time. –  Sword22 Apr 15 '11 at 16:49

I think it's sound. If the maximum element of the best unimodal streak is e, then the best possible left half and right half will be found in A and B. Since the left and right sequences are totally independent, this method will always work.

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