1

I am trying to sum some XML values in one node based on a value in another node.

The node in Entry that relates to Item is always one RecordNo less than the RecordNo in Item. So the Entry with RecordNo 1 is related to the Item with RecordNo 2.

I want to sum all Item/Cost nodes where IsValid = 1 for the corresponding Entry Node. I can only use XSLT version 1.0.

I have tried

Sum(../Items/Item[../Entries/Entry[IsValid=1 and RecordNo -1 = ../Entries/Entry/RecordNo]])

My desired output from the example below would be 22.

<Root>
<Items>
    <Item>
        <Cost>10</Cost>
        <RecordNo>2</RecordNo>
        <Type>1</Type>
    </Item>
    <Item>
        <Cost>12</Cost>
        <RecordNo>5</RecordNo>
        <Type>1</Type>
    </Item>
    <Item>
        <Cost>10</Cost>
        <RecordNo>9</RecordNo>
        <Type>2</Type>
    </Item>
</Items>
<Entries>
    <Entry>
        <IsValid>1</IsValid>
        <RecordNo>1</RecordNo>
    </Entry>
    <Entry>
        <IsValid>1</IsValid>
        <RecordNo>4</RecordNo>
    </Entry>
    <Entry>
        <IsValid>0</IsValid>
        <RecordNo>8</RecordNo>
    </Entry>
</Entries>
</Root>
  • What have you tried? What isn't working? What should the transform output? Please clarify. – Carlo Cannas Jan 18 '14 at 1:12
  • 1
    I have updated the question with my desired output and something I have tried – Davem Jan 18 '14 at 1:18
  • Much better now. Please give a look at my answer. – Carlo Cannas Jan 18 '14 at 1:50
1

You should solve with this expression:

sum(/Root/Items/Item[RecordNo -1=/Root/Entries/Entry[IsValid=1]/RecordNo]/Cost)

The problem with yours is that you are messing up with the context node, remember that any relative path expression in the predicate (the expression you put between the brackets) refers to the current element, the one that will be picked in case the expression evaluates to true.

  • I get it now! thanks for the insight. This works great. – Davem Jan 20 '14 at 17:26

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.