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							| @ -1,10 +0,0 @@ | ||||
| # ignore the R studio docker image needed by hyak  | ||||
| rstudio_latest.sif | ||||
| 
 | ||||
| 
 | ||||
| # do not need to include any R items  | ||||
| .Rhistory | ||||
| .cache/ | ||||
| .config/ | ||||
| .local/ | ||||
| 
 | ||||
| @ -1,37 +0,0 @@ | ||||
| library(tidyverse) | ||||
| # data directory: /gscratch/comdata/users/mjilg/mw-repo-lifecycles/bot_activity_counts | ||||
| # load in the paritioned directories | ||||
| library(dplyr) | ||||
| monthly_file_dir = "/gscratch/comdata/users/mjilg/mw-repo-lifecycles/bot_activity_counts/011625_dab_monthly/" | ||||
| yearly_file_dir = "/gscratch/comdata/users/mjilg/mw-repo-lifecycles/bot_activity_counts/011625_dab_yearly/" | ||||
| single_file_dir = "/gscratch/comdata/users/mjilg/mw-repo-lifecycles/bot_activity_counts/011625_dab_single/" | ||||
| column_names <- c("wiki_db", "date", "event_entity", "event_action", "count") | ||||
| # define a function to combing the multiple csv files in each directory | ||||
| consolidate_csv <- function(directory, column_names) { | ||||
|   file_list <- list.files(path = directory, pattern = "*.csv", full.names = TRUE) | ||||
|   df_list <- lapply(file_list, function(file){ | ||||
|     df = read.csv(file, header = FALSE)  | ||||
|     colnames(df) <- column_names | ||||
|     return(df) | ||||
|     }) | ||||
|   combined_df <- do.call(rbind, df_list) | ||||
|   return(combined_df) | ||||
| } | ||||
| #apply the function to our three directories of data  | ||||
| monthly_df <- consolidate_csv(monthly_file_dir, column_names) | ||||
| yearly_df <- consolidate_csv(yearly_file_dir, column_names) | ||||
| single_df <- consolidate_csv(single_file_dir, column_names) | ||||
| #rbind  | ||||
| combined_df <- rbind(monthly_df, yearly_df, single_df) | ||||
| rm(monthly_df) | ||||
| rm(yearly_df) | ||||
| rm(single_df) | ||||
| #making sure data columns are of the right type | ||||
| combined_df <- combined_df |>  | ||||
|   mutate(  | ||||
|     wiki_db = as.factor(wiki_db), | ||||
|     date = as.Date(date), | ||||
|     event_entity = as.factor(event_entity), | ||||
|     event_action = as.factor(event_action), | ||||
|     count = as.numeric(count) | ||||
|   ) | ||||
| @ -1,100 +0,0 @@ | ||||
| #!/bin/sh | ||||
| 
 | ||||
| #SBATCH --job-name=mgaughan-rstudio-server | ||||
| #SBATCH --partition=cpu-g2-mem2x | ||||
| 
 | ||||
| #SBATCH --time=02:00:00 | ||||
| #SBATCH --nodes=1 | ||||
| #SBATCH --ntasks=4 | ||||
| #SBATCH --mem=20G | ||||
| 
 | ||||
| #SBATCH --signal=USR2 | ||||
| #SBATCH --output=%x_%j.out | ||||
| 
 | ||||
| # This script will request a single CPU with four threads with 20GB of RAM for 2 hours.  | ||||
| # You can adjust --time, --nodes, --ntasks, and --mem above to adjust these settings for your session. | ||||
| 
 | ||||
| # --output=%x_%j.out creates a output file called rstudio-server_XXXXXXXX.out  | ||||
| # where the %x is short hand for --job-name above and the X's are an 8-digit  | ||||
| # jobID assigned by SLURM when our job is submitted. | ||||
| 
 | ||||
| RSTUDIO_CWD="/mmfs1/home/mjilg/git/mw-lifecycle-analysis" | ||||
| RSTUDIO_SIF="rstudio_latest.sif" | ||||
| 
 | ||||
| # Create temp directory for ephemeral content to bind-mount in the container | ||||
| RSTUDIO_TMP=$(/usr/bin/python3 -c 'import tempfile; print(tempfile.mkdtemp())') | ||||
| 
 | ||||
| mkdir -p -m 700 \ | ||||
|         ${RSTUDIO_TMP}/run \ | ||||
|         ${RSTUDIO_TMP}/tmp \ | ||||
|         ${RSTUDIO_TMP}/var/lib/rstudio-server | ||||
| 
 | ||||
| cat > ${RSTUDIO_TMP}/database.conf <<END | ||||
| provider=sqlite | ||||
| directory=/var/lib/rstudio-server | ||||
| END | ||||
| 
 | ||||
| # Set OMP_NUM_THREADS to prevent OpenBLAS (and any other OpenMP-enhanced | ||||
| # libraries used by R) from spawning more threads than the number of processors | ||||
| # allocated to the job. | ||||
| # | ||||
| # Set R_LIBS_USER to a path specific to rocker/rstudio to avoid conflicts with | ||||
| # personal libraries from any R installation in the host environment | ||||
| 
 | ||||
| cat > ${RSTUDIO_TMP}/rsession.sh <<END | ||||
| #!/bin/sh | ||||
| 
 | ||||
| export OMP_NUM_THREADS=${SLURM_JOB_CPUS_PER_NODE} | ||||
| export R_LIBS_USER=/gscratch/scrubbed/mjilg/R | ||||
| exec /usr/lib/rstudio-server/bin/rsession "\${@}" | ||||
| END | ||||
| 
 | ||||
| chmod +x ${RSTUDIO_TMP}/rsession.sh | ||||
| 
 | ||||
| export APPTAINER_BIND="${RSTUDIO_CWD}:${RSTUDIO_CWD},/gscratch:/gscratch,${RSTUDIO_TMP}/run:/run,${RSTUDIO_TMP}/tmp:/tmp,${RSTUDIO_TMP}/database.conf:/etc/rstudio/database.conf,${RSTUDIO_TMP}/rsession.sh:/etc/rstudio/rsession.sh,${RSTUDIO_TMP}/var/lib/rstudio-server:/var/lib/rstudio-server" | ||||
| 
 | ||||
| # Do not suspend idle sessions. | ||||
| # Alternative to setting session-timeout-minutes=0 in /etc/rstudio/rsession.conf | ||||
| export APPTAINERENV_RSTUDIO_SESSION_TIMEOUT=0 | ||||
| 
 | ||||
| export APPTAINERENV_USER=$(id -un) | ||||
| export APPTAINERENV_PASSWORD=$(openssl rand -base64 15) | ||||
| 
 | ||||
| # get unused socket per https://unix.stackexchange.com/a/132524 | ||||
| # tiny race condition between the python & apptainer commands | ||||
| readonly PORT=$(/mmfs1/sw/pyenv/versions/3.9.5/bin/python -c 'import socket; s=socket.socket(); s.bind(("", 0)); print(s.getsockname()[1]); s.close()') | ||||
| cat 1>&2 <<END | ||||
| 1. SSH tunnel from your workstation using the following command: | ||||
| 
 | ||||
|    ssh -N -L 8787:${HOSTNAME}:${PORT} ${APPTAINERENV_USER}@klone.hyak.uw.edu | ||||
| 
 | ||||
|    and point your web browser to http://localhost:8787 | ||||
| 
 | ||||
| 2. log in to RStudio Server using the following credentials: | ||||
| 
 | ||||
|    user: ${APPTAINERENV_USER} | ||||
|    password: ${APPTAINERENV_PASSWORD} | ||||
| 
 | ||||
| When done using RStudio Server, terminate the job by: | ||||
| 
 | ||||
| 1. Exit the RStudio Session ("power" button in the top right corner of the RStudio window) | ||||
| 2. Issue the following command on the login node: | ||||
| 
 | ||||
|       scancel -f ${SLURM_JOB_ID} | ||||
| END | ||||
| 
 | ||||
| source /etc/bashrc | ||||
| module load apptainer | ||||
| 
 | ||||
| apptainer exec --cleanenv --home ${RSTUDIO_CWD} ${RSTUDIO_CWD}/${RSTUDIO_SIF} \ | ||||
|     rserver --www-port ${PORT} \ | ||||
|             --auth-none=0 \ | ||||
|             --auth-pam-helper-path=pam-helper \ | ||||
|             --auth-stay-signed-in-days=30 \ | ||||
|             --auth-timeout-minutes=0 \ | ||||
|             --rsession-path=/etc/rstudio/rsession.sh \ | ||||
|             --server-user=${APPTAINERENV_USER} | ||||
| 
 | ||||
| APPTAINER_EXIT_CODE=$? | ||||
| echo "rserver exited $APPTAINER_EXIT_CODE" 1>&2 | ||||
| exit $APPTAINER_EXIT_CODE | ||||
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