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Say I have the following XML

    <A>100</A>
    <B>200</B>
    <C>300</C>

and the following XSLT

  <TEST>
    <xsl:value-of select="A + B + C"/>
  </TEST>

It produces the following output

<TEST>600</TEST>

however, when one of the nodes is blank

    <A></A>
    <B>200</B>
    <C>300</C>

I get the following.

<TEST>NaN</TEST>

I only want to add the nodes that are valid numbers. I could do this if xsl allowed me to dynamically replace a variable value by adding to the already existing variable, but even that would be messy. I assume there is an easy way that I'm missing?

I want XSLT 1.0 answers only please.

Thanks!

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possible duplicate of Using fn:sum in XSLT with node-set containing null-values –  Filburt Sep 4 '12 at 19:53
    
Not a duplicate because the other is the sum of one node name, this is summing different nodes together. Plus thats xslt 2.0. I asked for 1.0. –  james31rock Sep 5 '12 at 13:04
    
Not an exact duplicate of course but contains a hint on how to test against empty nodes (not specific to xslt 2.0). –  Filburt Sep 5 '12 at 14:15
    
I already knew how to use filters how to test against empty nodes. The issue I was trying to test three different nodes at once that was giving me the problem. Tried A[.!=''] + B[.!=''] + C[.!=''] and had the same issue. got to this before i saw a better answer sum(A[.!=''] | B[.!=''] | C[.!='']). problem is mine doesn't test if its a number, plus I using three filters inside of one. –  james31rock Sep 5 '12 at 15:47

4 Answers 4

up vote 6 down vote accepted
  <TEST>
    <xsl:value-of select="sum((A | B | C)[number(.) = .])"/>
  </TEST>

That is, sum the subset of the elements A,B,C consisting of those whose contents can be used as numbers.

Note that number('') yields NaN, and (NaN = NaN) is false, so this will not include elements without text content.

We test for numbers as discussed at http://stackoverflow.com/a/3854389/423105

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3  
It will work in XPath 2.0 if there is no schema, or if the schema says that A, B, and C are numeric. You can compare xs:double to xs:untypedAtomic. –  Michael Kay Sep 4 '12 at 22:20
1  
@MichaelKay: Hmm. The above error was what I received with XPath 2.0 on an XML document that had no schema associated. This was in the XPath 2.0 evaluator in Oxygen XML Editor. I wonder if there was some hidden or default schema that I wasn't aware of? –  LarsH Sep 5 '12 at 1:39
1  
@LarsH. Thanks I was looking for something simple like that. I had a solution, but it seemed overkill and messy. –  james31rock Sep 5 '12 at 13:05
1  
Sorry, I was wrong. [number(.)=.] means [number(.)=xs:double(data(.))], and unlike number(), xs:double() doesn't convert '' to NaN, it throws an error. –  Michael Kay Sep 5 '12 at 14:46
1  
@james31rock: glad to help. Also consider Dimitre's answer, which is a little longer but more robust against errors (especially in XPath 2.0). –  LarsH Sep 5 '12 at 15:11
<xsl:value-of select="sum(/root/*[self::A or self::B or self::C][.!=''])"/>

This will add values from A, B, and C under the "Root" element so long as the value isn't blank.

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There are other elements to that I do not want to sum. I specifically want elements A, B and C. –  james31rock Sep 4 '12 at 20:35
    
Updated it to check for element name, try the new one. –  Parker Sep 4 '12 at 21:14
    
Thanks @Parker. Your answer will work, but LarsH's I went with. Still +1 –  james31rock Sep 5 '12 at 13:02

A little variation of LarsH's answer:

sum((A|B|C)[number(.) = number(.)])

the expression in the predicate doesn't cause any type error in XPath 2.0, because both arguments of = are of the same type -- xs:double.

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There is also:

For XSLT 1.0:

sum((A|B|C)[string(number())!='NaN'])

For XSLT 2.0:

sum((A,B,C)[string(number())!='NaN'])

For interest, here is another one. It works for both XSLT 1.0 and 2.0

sum((A|B|C)[number()>-99999999])

In the above, replace -99999999 with one less than the lower bound of the possible values. This works because NaN > any-thing always returns false. This is probably the most efficient solution yet, but it may be seen as a little ugly.

For example, if you know for a fact that none of A, B or C will be negative values, you could put:

sum((A|B|C)[number()>0])

...which looks a little cleaner and is still quiet readable.

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