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I am facing a problem on creating pascal triangle. The code is given below. Here sumLstElts will sum the elements on a row, putBetween will put the sum at the right side of the [1]. pascal n will give us the series of pascal sequences in a row.

    sumLstElts (x:[])=[x]
    sumLstElts []=[]
    sumLstElts xs=[head xs+head(tail xs)]++sumLstElts (tail xs)

    putBetween xs'= [1]++xs''
            where xs''=sumLstElts xs'

    pascal 0=[1]
    pascal n= putBetween(pascal (n-1)) ++ pascal(n-1)

Would u pls help me to identify my error? thnx in advance.

saugata

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1  
What's the error? Does it fail to compile? If so, what's the error message? Does it produce the wrong result? If so, provide examples of input, expected output and actual output. –  hammar Nov 13 '12 at 15:10
1  
Tell us the error message! Also, it would probably help to narrow down the problem if you would use type signatures for your functions. –  sth Nov 13 '12 at 15:11
    
THNX HAMMER AND STH. –  sabu Nov 13 '12 at 15:27
    
I get anser only for pascal nth row. suppose i write pascal 4. it shows [1,4,6,4,1].NOTED DAT at that time i did nt use pascal(n-1)at the end. BUt when i used pascal(n-1) to get the full list of triangle den it shoes abnormal result.SO i m coming here to identify whts da mistake i made –  sabu Nov 13 '12 at 15:29

1 Answer 1

up vote 1 down vote accepted

If you want just the n-th row,

pascal n= putBetween(pascal (n-1))

is the right way, putBetween already constructs the complete next row from a given. If you want to create the triangle as a list of rows, something like

pascal :: Int -> [[Integer]]
pascal n = take (n+1) $ iterate putBetween [1]

would construct the triangle starting with row 0. If you want the part of the triangle in reverse order, longer rows first,

pascal :: Int -> [[Integer]]
pascal 0 = [[1]]
pascal n = putBetween top : previous
  where
    previous = pascal (n-1)
    top = head previous

does that.

The problem with your attempt is that putBetween is applied to the entire result of pascal (n-1), which is intended to contain not only the n-1-st row, but also the previous rows. So pascal 1 gave the concatenation of the first row [1,1] with the zeroth [1], and when pascal 2 applies putBetween to that, it's not a row of Pascal's triangle, so the result isn't one either. You could also get the concatenation of the rows by

pascal 0 = [1]
pascal n = putBetween (take n previous) ++ previous
  where
    previous = pascal (n-1)

but in my opinion it's better to have the triangle as a list of rows.

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u r right. I already get answer only for pascal nth row and its true if i dont include pascal(n-1). BUt when i try to get full list with adding pascal(n-1) den it shows abnormal results. –  sabu Nov 13 '12 at 15:26
    
I dont get ur last code.MY OBJECTIVE IS TO GET THE FULL TRAINGLE LIST STARTING WITH PASCAL 0 –  sabu Nov 13 '12 at 15:26
    
adding ur last line shows me the following error: No instance for (Num [t]) arising from a use of pascal' at <interactive>:1:0-7 Possible fix: add an instance declaration for (Num [t]) In the expression: pascal 4 In the definition of it': it = pascal 4 –  sabu Nov 13 '12 at 15:33
    
That's what the iterate does, *PascalT> take 4 $ iterate putBetween [1] ~> [[1],[1,1],[1,2,1],[1,3,3,1]]. Ah, I see. For that, you have to remove the first line, you don't add the line, you replace the definition. –  Daniel Fischer Nov 13 '12 at 15:34
    
fantastic daniel. it works now. i just delete da frst line: pascal[0]=1. I am really glad to get da triangle. BUt its not triangle, CAn u pls suggest me how can i create the triangle? –  sabu Nov 13 '12 at 15:46

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