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(Chilkat2-Python) XML Path Performance OptimizationsDiscusses some important things to know about using Chilkat paths in the Chilkat XML API.
import sys import chilkat2 xml = chilkat2.Xml() # Let's load XML containing the following: # <?xml version="1.0" encoding="utf-8"?> # <xyz> # <licenses> # <license> # <id>1234</id> # </license> # <license> # <id>1234</id> # </license> # ... # My sample XML contains 64,000 "license" nodes .. # ... # <license> # <id>1234</id> # </license> # <license> # <id>1234</id> # </license> # </licenses> # </xyz> # success = xml.LoadXmlFile("qa_output/large.xml") if (success != True): print(xml.LastErrorText) sys.exit() # Iterating over the individual "license" nodes with this code snippet is # extremely slow: licCount = xml.NumChildrenHavingTag("licenses|license") print("license count = " + str(licCount)) i = 0 # If "10" is changed to licCount, then it becomes apparent that this loop gets slower with each iteration. while i < 10 : xml.I = i s = xml.GetChildContent("licenses|license[i]|id") print(str(i) + ": " + s) i = i + 1 # The reason it is extremely slow is that the "license[i]" part of the path passed to GetChildContent # says: find the i'th child of "licenses" having the tag "license". Chilkat cannot assume that all # children of an XML node have the same tag. Therefore it's not possible to directly access the i'th child. # Internally, Chilkat must start at the 1st child and iterate until it reaches the i'th child having the # tag "license". # For example, imagine if the XML was like this: # <?xml version="1.0" encoding="utf-8"?> # <xyz> # <licenses> # <license> # <id>1234</id> # </license> # <somethingElse> # <a>abc</a> # </somethingElse> # <license> # <id>1234</id> # </license> # ... # In the above XML, the 1st "license" is the 1st child of "licenses", but the 2nd "license" # is the 3rd child of "licenses". # If you already know that all children have the same tag, there is a shortcut that allows # for direct access to that child. Just leave off the tag name, like this: i = 0 # If "10" is changed to licCount, then we can see the time for each loop is the same, and it's fast. while i < 10 : xml.I = i s = xml.GetChildContent("licenses|[i]|id") print(str(i) + ": " + s) i = i + 1 # When we pass just the index "[i]", we're saying: Get the i'th child regardless of tag. # This is extremely fast because internally we can just access the i'th child directly. # Another performance improvement is to call NumChildrenAt rather than NumChildrenHavingTag. # For example: licCount = xml.NumChildrenAt("licenses") print("licCount = " + str(licCount)) # NumChildrenAt returns the total number of children at the tag path. If we already know # all children will have the same tag, we can just get the count |
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