Worked on variants in user navigation
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# 09_case-clustering.R
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# 09_user_navigation.R
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#
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# content: (1) Read data
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# (1.1) Read log event data
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# (1.2) Extract additional infos for clustering
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# (2) Clustering
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# (3) Investigate variants
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#
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# input: results/haum/event_logfiles_2024-01-18_09-58-52.csv
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# output: results/haum/event_logfiles_pre-corona_with-clusters_cases.csv
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#
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# last mod: 2024-02-04
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# last mod: 2024-02-07
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# setwd("C:/Users/nwickelmaier/Nextcloud/Documents/MDS/2023ss/60100_master_thesis/analysis/code")
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@ -79,20 +80,16 @@ datcase <- na.omit(datcase)
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df <- datcase[, c("duration", "distance", "scaleSize", "rotationDegree",
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"length", "nitems", "npaths")] |>
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scale()
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df <- cbind(df, datcase[, c("vacation", "holiday", "weekend", "morning")])
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#df <- cbind(df, datcase[, c("vacation", "holiday", "weekend", "morning")])
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mat <- dist(df)
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hc <- hclust(mat, method = "ward.D2")
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hc <- hclust(mat)
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grp <- cutree(hc, k = 3)
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grp <- cutree(hc, k = 6)
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datcase$grp <- grp
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table(grp)
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# k1 <- kmeans(mat, 4)
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# datcase$kcluster <- k1$cluster
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fviz_cluster(list(data = df, cluster = grp),
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palette = c("#78004B", "#000000", "#3CB4DC", "#91C86E",
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"#FF6900", "#434F4F"),
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@ -123,7 +120,8 @@ write.table(res,
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quote = FALSE,
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row.names = FALSE)
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# Look at variants
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#--------------- (2) Investigate variants ---------------
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res$start <- res$date.start
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res$complete <- res$date.stop
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@ -133,7 +131,7 @@ alog <- activitylog(res,
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resource_id = "path",
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timestamps = c("start", "complete"))
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trace_explorer(alog, n_traces = 30)
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trace_explorer(alog, n_traces = 25)
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# --> sequences of artworks are just too rare
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tr <- traces(alog)
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@ -145,22 +143,19 @@ tr[trace_varied > 1, ]
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table(tr[trace_varied > 2, "absolute_frequency"])
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table(tr[trace_varied > 3, "absolute_frequency"])
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longest_case <- datcase[datcase$length == max(datcase$length), "case"]
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alog_often <- activitylog(res[res$case == longest_case, ],
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case_id = "case",
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activity_id = "item",
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resource_id = "path",
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timestamps = c("start", "complete"))
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process_map(alog_often)
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summary(tr$absolute_frequency)
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vioplot::vioplot(tr$absolute_frequency)
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# Power law for frequencies of traces
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tab <- table(tr$absolute_frequency)
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x <- as.numeric(tab)
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y <- as.numeric(names(tab))
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plot(log(y) ~ log(x))
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abline(lm(log(y) ~ log(x)))
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plot(x, y, log = "xy")
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p1 <- lm(log(y) ~ log(x))
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pre <- exp(coef(p1)[1]) * x^coef(p1)[2]
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lines(x, pre)
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# Look at individual traces as examples
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tr[trace_varied == 5 & trace_length > 50, ]
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@ -169,10 +164,25 @@ datcase[datcase$nitems == 5 & datcase$length > 50,]
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sapply(datcase[, -c(1, 9)], median)
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ex <- datcase[datcase$nitems == 10 & datcase$length == 30,]
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#ex <- datcase[datcase$nitems == 4 & datcase$length == 15,]
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ex <- datcase[datcase$nitems == 5,]
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ex <- ex[sample(1:nrow(ex), 20), ]
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# --> pretty randomly chosen... TODO:
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case_ids <- NULL
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for (case in ex$case) {
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if ("080" %in% res$item[res$case == case] | "503" %in% res$item[res$case == case]) {
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case_ids <- c(case_ids, TRUE)
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} else {
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case_ids <- c(case_ids, FALSE)
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}
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}
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cases <- ex$case[case_ids]
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for (case in cases) {
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alog <- activitylog(res[res$case == case, ],
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case_id = "case",
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@ -193,29 +203,3 @@ for (case in ex$case) {
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}
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## --> not interesting!
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# Just "flipCard"
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res_case <- res[!duplicated(res[, c("case", "path")]), ]
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for (case in ex$case) {
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alog <- activitylog(res_case[res_case$case == case, ],
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case_id = "case",
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activity_id = "item",
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resource_id = "path",
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timestamps = c("start", "complete"))
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dfg <- process_map(alog,
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type_nodes = frequency("absolute", color_scale = "Greys"),
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type_edges = frequency("absolute", color_edges = "#FF6900"),
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rankdir = "LR",
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render = FALSE)
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export_map(dfg,
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file_name = paste0("results/processmaps/dfg_example_cases_", case, "_fc_R.pdf"),
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file_type = "pdf",
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title = paste("Single case", case))
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}
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