10

I have a date(string) value in an XML file in this format:

Tue Apr 17 03:12:47 IST 2012

I want to use XSL transformation to convert the string/date into this format:

4/17/2012 03:12:47 AM

How can I do that in my XSL transform?

  • Which xslt version (1.0, 2.0) can/would you use? – hr_117 Jun 3 '13 at 8:05
  • I can use both in fact. Would prefer 1.0. – Rg90 Jun 3 '13 at 8:08
20

If you are using

But my suggestion is to

Have a standard XSD datetime format on XML, on the code-behind (that is, on rendering time) you can format as you like.

Update:

Always XML to process through XSLT, dates should be in standard XSD format. Currently your input is not in standard format so that it throws error.

Example:

<xsl:variable name="dt" as="xs:dateTime" select="xs:dateTime('2012-10-21T22:10:15')"/>
<xsl:value-of select="format-dateTime($dt, '[Y0001]/[M01]/[D01]')"/>

OUTPUT:

2012/10/21

  • I am using the format-dateTime function (2.0) and its giving me this error: 'Invalid dateTime value "Tue Apr 17 03:12:47 IST 2012" (Non-numeric year component)' – Rg90 Jun 3 '13 at 8:38
  • @RohitGupta: Show your xslt – Siva Charan Jun 3 '13 at 8:53
  • 3
    <Date><xsl:value-of select="format-dateTime(CreatedDate, '[Y0001]-[M01]-[D01]T[H01]:[m01]:[s01]')" /></Date> – Rg90 Jun 3 '13 at 9:02
  • @RohitGupta: Refer the update – Siva Charan Jun 3 '13 at 10:48
  • Thanks a lot Siva! – Rg90 Jun 3 '13 at 18:07

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