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Is it possible to avoid using do and while loops to calculate the sum of the elements of a vector until the appearance of the last positive element or the last negative element.

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Try the following:

x <- 5:-5
# sum until last positive:
sum(x[1:max(which(x > 0))])

x <- -5:5
# sum until last negative:
sum(x[1:max(which(x < 0))])

Explanation:

Which(x > 0) gives a vector of index numbers at which x is greater than 0. Taking the max of this gives the last such index. Then all that remains is summing up x from 1 up to this element. I hope this helps.

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I'll keep that in mind going forward, thanks Tyler. – Edward Aug 7 '12 at 13:11
    
I think this is what I needed. What did u wanted me to do Tyler. – Ali H Aug 7 '12 at 13:11
1  
Ali here's a LINK on how to make a reproducible example. it'll get you better results and faster. – Tyler Rinker Aug 7 '12 at 13:18
2  
There's also which.max which handles this common use case. – Ari B. Friedman Aug 7 '12 at 13:45
1  
@Edward this fails when x has length 0, or no elements satisfy the condition. – Martin Morgan Aug 7 '12 at 14:01

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