21

Is there a way to delete files older than 10 days on HDFS?

In Linux I would use:

find /path/to/directory/ -type f -mtime +10 -name '*.txt' -execdir rm -- {} \;

Is there a way to do this on HDFS? (Deletion to be done based on file creation date)

18
  • There is no find command, but hdfs dfs -ls -R /path/to/directory | egrep .txt$ is a good start. May 29, 2017 at 5:17
  • @cricket_007 but how do we do the older than 'x' days?
    – Ani Menon
    May 29, 2017 at 5:18
  • 1
    You'd have to cut out the date portion of the standard output, store that filtered file list, and run hdfs dfs -rm in a loop... In other words, it needs to be scripted. May 29, 2017 at 5:20
  • 2
    I use this script May 29, 2017 at 6:55
  • 1
    @jww Please go back to the link you pointed to in the earlier comment and read through it. Questions related to a framework/tool commonly used by programmers(in this case - Hadoop) is apt for SO. Reference: SO on-topic
    – Ani Menon
    May 7, 2018 at 3:16

7 Answers 7

20

Solution 1: Using multiple commands as answered by daemon12

hdfs dfs -ls /file/Path    |   tr -s " "    |    cut -d' ' -f6-8    |     grep "^[0-9]"    |    awk 'BEGIN{ MIN=14400; LAST=60*MIN; "date +%s" | getline NOW } { cmd="date -d'\''"$1" "$2"'\'' +%s"; cmd | getline WHEN; DIFF=NOW-WHEN; if(DIFF > LAST){ print "Deleting: "$3; system("hdfs dfs -rm -r "$3) }}'

Solution 2: Using Shell script

today=`date +'%s'`
hdfs dfs -ls /file/Path/ | grep "^d" | while read line ; do
dir_date=$(echo ${line} | awk '{print $6}')
difference=$(( ( ${today} - $(date -d ${dir_date} +%s) ) / ( 24*60*60 ) ))
filePath=$(echo ${line} | awk '{print $8}')

if [ ${difference} -gt 10 ]; then
    hdfs dfs -rm -r $filePath
fi
done
2
  • 1
    The grep "^d" would return only directories (pending approval of my edit). It may be advisable to use something like ... | grep "/file/Path/" | ... to avoid header lines in the processed output, as well as grep -v "^d" to avoid directories, if that is necessary.
    – LLlAMnYP
    Apr 29, 2019 at 7:55
  • fix $(date -d ${dir_date} +%s) to $(date -d ${dir_date} +'%s') May 6, 2021 at 9:40
16

How about this:

hdfs dfs -ls /tmp    |   tr -s " "    |    cut -d' ' -f6-8    |     grep "^[0-9]"    |    awk 'BEGIN{ MIN=14400; LAST=60*MIN; "date +%s" | getline NOW } { cmd="date -d'\''"$1" "$2"'\'' +%s"; cmd | getline WHEN; DIFF=NOW-WHEN; if(DIFF > LAST){ print "Deleting: "$3; system("hdfs dfs -rm -r "$3) }}'

A detailed description is here.

2
  • 1
    And skipTrash??
    – jedijs
    May 30, 2017 at 16:20
  • Yes, if the user wants to delete the files without moving them to trash. May 31, 2017 at 3:29
3

Yes, you can try with HdfsFindTool:

hadoop jar /opt/cloudera/parcels/CDH/lib/solr/contrib/mr/search-mr-job.jar \
  org.apache.solr.hadoop.HdfsFindTool \
  -find /pathhodir -mtime +10 -name ^.*\.txt$ \
  | xargs hdfs dfs -rm -r -skipTrash
2
  • 5
    For those of us not using CDH, how do we get that? May 29, 2017 at 14:08
  • This is reallyyy slow. Sep 17, 2019 at 17:27
1

I attempted to implement the accepted solution above.

Unfortunately, it only partially worked for me. I ran into 3 real world problems.

First, hdfs didn't have enough RAM to load up and print all the files.

Second, even when hdfs could print all the files awk could only handle ~8300 records before it broke.

Third, the performance was abysmal. When implemented it was deleting ~10 files per minute. This wasn't useful because I was generating ~240 files per minute.

So my final solution was this:

tmpfile=$(mktemp)
HADOOP_CLIENT_OPTS="-Xmx2g" hdfs dfs -ls /path/to/directory    |   tr -s " "    |    cut -d' ' -f6-8    |     grep "^[0-9]"    |    awk 'BEGIN{ MIN=35*24*60; LAST=60*MIN; "date +%s" | getline NOW } { cmd="date -d'\''"$1" "$2"'\'' +%s"; cmd | getline WHEN; DIFF=NOW-WHEN; if(DIFF > LAST){ print $3}}; close(cmd);' > $tmpfile
hdfs dfs -rm -r $(cat $tmpfile)
rm "$tmpfile"

I don't know if there are additional limits on this solution but it handles 50,000+ records in a timely fashion.

EDIT: Interestingly, I ran into this issue again and on the remove, I had to batch my deletes as hdfs rm statement couldn't take more than ~32,000 inputs.

0
hdfs dfs -ls -t /file/Path|awk -v dateA="$date" '{if ($6" "$7 < {target_date}) {print ($8)}}'|xargs -I% hdfs dfs -rm "%" /file/Path
0
today=`date +'%s'`
days_to_keep=10

# Loop through files
hdfs dfs -ls -R /file/Path/ | while read f; do
  # Get File Date and File Name
  file_date=`echo $f | awk '{print $6}'`
  file_name=`echo $f | awk '{print $8}'`

  # Calculate Days Difference
  difference=$(( ($today - $(date -d $file_date +%s)) / (24 * 60 * 60) ))
  if [ $difference -gt $days_to_keep ]; then
    echo "Deleting $file_name it is older than $days_to_keep and is dated $file_date."
    hdfs dfs -rm -r $file_name
  fi
done
1
-1

Just to add another variation of previously submitted answers (I do not try to pretend to be original). The script can be modified to remove sub-folders or files recursively

#!/bin/bash
function hdfs-list-older-than () {
# list all content | filter out sub-folders | filter by creation datetime and isolate filepath
  hdfs dfs -ls  $1 | grep ^- | awk -v d=$2 -v t=$3 '{if($6 < d || ($6 == d && $7 < t) ){print $8}}'
}
hdfs-list-older-than $1 `date -d "-10 days"  +'%Y-%m-%d %H:%M'` | xargs hdfs dfs -rm {}
1
  • Your answer could be improved with additional supporting information. Please edit to add further details, such as citations or documentation, so that others can confirm that your answer is correct. You can find more information on how to write good answers in the help center.
    – Community Bot
    Dec 6, 2021 at 1:56

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.