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I try to check how many nodes are ready (not including nodes tainted NoSchedule) and write the number to text file output.txt.

Could you give me any advice?

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5 Answers 5

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I believe that kubectl get nodes doesn't show taints, so you can't just filter with grep. In that case you can set the output as json and use jq (or yaml and use yq) to process it:

kubectl get nodes -o json | jq -c '.items[].spec.taints' | grep -v NoSchedule | wc -l > output.txt

-c option in jq is to output each element in a single line, instead of pretty printing it, in case you have multiple taints. The rest has already been explained in Abdennour TOUMI's answer

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kubectl get nodes | grep Ready | grep -v NotReady | grep -v NoSchedule \
  | wc -l  > output.txt

This single command will do the job for you:

Notes:

  • While grep includes lines, grep -v excludes lines
  • wc -l counts the number of lines.
  • number of output's lines is the same number of nodes with criteria you described
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Full proof Query to get nodes except node has taint effect NoSchedule on it

kubectl get node -o=jsonpath='{range .items[*]}{.metadata.name}{"\t"}{.spec.taints[*].effect}{"\n"}{end}' | grep -v NoSchedule | wc -l
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The following command can be used without jq or where jq is not installed.

kubectl get nodes --selector='!node-role.kubernetes.io/master' --no-headers | grep -v SchedulingDisabled | wc -l > output.txt
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One liner

kubectl describe nodes | grep -i taint | grep -v NoSchedule | wc -l

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