Refactor call features to produce a single file
parent
79e126bc92
commit
1d1c8e6bf1
12
Snakefile
12
Snakefile
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@ -14,16 +14,10 @@ rule all:
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sms_type = config["COM_SMS"]["SMS_TYPES"],
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sms_type = config["COM_SMS"]["SMS_TYPES"],
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day_segment = config["COM_SMS"]["DAY_SEGMENTS"],
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day_segment = config["COM_SMS"]["DAY_SEGMENTS"],
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metric = config["COM_SMS"]["METRICS"]),
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metric = config["COM_SMS"]["METRICS"]),
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expand("data/processed/{pid}/com_call_{call_type}_{segment}_{metric}.csv",
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expand("data/processed/{pid}/call_{call_type}_{segment}.csv",
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pid=config["PIDS"],
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pid=config["PIDS"],
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call_type = config["COM_CALL"]["CALL_TYPE_MISSED"],
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call_type=config["CALLS"]["TYPES"],
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segment = config["COM_CALL"]["DAY_SEGMENTS"],
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segment = config["CALLS"]["DAY_SEGMENTS"]),
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metric = config["COM_CALL"]["METRICS_MISSED"]),
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expand("data/processed/{pid}/com_call_{call_type}_{segment}_{metric}.csv",
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pid=config["PIDS"],
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call_type = config["COM_CALL"]["CALL_TYPE_TAKEN"],
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segment = config["COM_CALL"]["DAY_SEGMENTS"],
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metric = config["COM_CALL"]["METRICS_TAKEN"]),
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expand("data/processed/{pid}/location_barnett.csv", pid=config["PIDS"]),
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expand("data/processed/{pid}/location_barnett.csv", pid=config["PIDS"]),
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expand("data/processed/{pid}/bluetooth_{segment}.csv",
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expand("data/processed/{pid}/bluetooth_{segment}.csv",
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pid=config["PIDS"],
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pid=config["PIDS"],
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11
config.yaml
11
config.yaml
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@ -30,12 +30,13 @@ COM_SMS:
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# Communication call features config
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# Communication call features config
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# Separate configurations for missed and taken calls
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# Separate configurations for missed and taken calls
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COM_CALL:
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CALLS:
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CALL_TYPE_MISSED : [missed]
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TYPES: [missed, incoming, outgoing]
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CALL_TYPE_TAKEN : [incoming, outgoing]
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METRICS:
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missed: [count, distinctcontacts]
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incoming: [count, distinctcontacts, meanduration, sumduration, hubermduration, varqnduration, entropyduration]
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outgoing: [count, distinctcontacts, meanduration, sumduration, hubermduration, varqnduration, entropyduration]
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DAY_SEGMENTS: *day_segments
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DAY_SEGMENTS: *day_segments
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METRICS_MISSED: [count, distinctcontacts]
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METRICS_TAKEN: [count, distinctcontacts, meanduration, sumduration, hubermduration, varqnduration, entropyduration]
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PHONE_VALID_SENSED_DAYS:
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PHONE_VALID_SENSED_DAYS:
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BIN_SIZE: 5 # (in minutes)
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BIN_SIZE: 5 # (in minutes)
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@ -10,15 +10,15 @@ rule communication_sms_metrics:
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script:
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script:
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"../src/features/communication_sms_metrics.R"
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"../src/features/communication_sms_metrics.R"
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rule communication_call_metrics:
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rule call_metrics:
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input:
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input:
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"data/raw/{pid}/calls_with_datetime.csv"
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"data/raw/{pid}/calls_with_datetime.csv"
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params:
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params:
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call_type = "{call_type}",
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call_type = "{call_type}",
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day_segment = "{day_segment}",
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day_segment = "{day_segment}",
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metric = "{metric}"
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metrics = lambda wildcards: config["CALLS"]["METRICS"][wildcards.call_type]
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output:
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output:
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"data/processed/{pid}/com_call_{call_type}_{day_segment}_{metric}.csv"
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"data/processed/{pid}/call_{call_type}_{day_segment}.csv"
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script:
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script:
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"../src/features/communication_call_metrics.R"
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"../src/features/communication_call_metrics.R"
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@ -4,27 +4,37 @@ library(dplyr)
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library(entropy)
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library(entropy)
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library(robustbase)
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library(robustbase)
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calls <- read.csv(snakemake@input[[1]])
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filter_by_day_segment <- function(data, day_segment) {
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day_segment <- snakemake@params[["day_segment"]]
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if(day_segment %in% c("morning", "afternoon", "evening", "night"))
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metric <- snakemake@params[["metric"]]
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data <- data %>% filter(local_day_segment == day_segment)
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type <- snakemake@params[["call_type"]]
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output_file <- snakemake@output[[1]]
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metrics <- calls %>% filter(call_type == ifelse(type == "incoming", "1", ifelse(type == "outgoing", "2", "3")))
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return(data %>% group_by(local_date))
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if(day_segment == "daily"){
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metrics <- metrics %>% group_by(local_date)
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} else {
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metrics <- metrics %>% filter(day_segment == local_day_segment) %>% group_by(local_date)
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}
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}
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metrics <- switch(metric,
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compute_call_feature <- function(calls, metric, day_segment){
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"count" = metrics %>% summarise(!!paste("com", "call", type, day_segment, metric, sep = "_") := n()),
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calls <- calls %>% filter_by_day_segment(day_segment)
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"distinctcontacts" = metrics %>% summarise(!!paste("com", "call", type, day_segment, metric, sep = "_") := n_distinct(trace)),
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feature <- switch(metric,
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"meanduration" = metrics %>% summarise(!!paste("com", "call", type, day_segment, metric, sep = "_") := mean(call_duration)),
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"count" = calls %>% summarise(!!paste("call", type, day_segment, metric, sep = "_") := n()),
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"sumduration" = metrics %>% summarise(!!paste("com", "call", type, day_segment, metric, sep = "_") := sum(call_duration)),
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"distinctcontacts" = calls %>% summarise(!!paste("call", type, day_segment, metric, sep = "_") := n_distinct(trace)),
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"hubermduration" = metrics %>% summarise(!!paste("com", "call", type, day_segment, metric, sep = "_") := huberM(call_duration)$mu),
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"meanduration" = calls %>% summarise(!!paste("call", type, day_segment, metric, sep = "_") := mean(call_duration)),
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"varqnduration" = metrics %>% summarise(!!paste("com", "call", type, day_segment, metric, sep = "_") := Qn(call_duration)),
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"sumduration" = calls %>% summarise(!!paste("call", type, day_segment, metric, sep = "_") := sum(call_duration)),
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"entropyduration" = metrics %>% summarise(!!paste("com", "call", type, day_segment, metric, sep = "_") := entropy.MillerMadow(call_duration)))
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"hubermduration" = calls %>% summarise(!!paste("call", type, day_segment, metric, sep = "_") := huberM(call_duration)$mu),
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"varqnduration" = calls %>% summarise(!!paste("call", type, day_segment, metric, sep = "_") := Qn(call_duration)),
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"entropyduration" = calls %>% summarise(!!paste("call", type, day_segment, metric, sep = "_") := entropy.MillerMadow(call_duration)))
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return(feature)
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}
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write.csv(na.omit(metrics), output_file, row.names = F)
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calls <- read.csv(snakemake@input[[1]], stringsAsFactors = FALSE)
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day_segment <- snakemake@params[["day_segment"]]
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metrics <- snakemake@params[["metrics"]]
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type <- snakemake@params[["call_type"]]
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features = data.frame(local_date = character(), stringsAsFactors = FALSE)
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calls <- calls %>% filter(call_type == ifelse(type == "incoming", "1", ifelse(type == "outgoing", "2", "3")))
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for(metric in metrics){
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feature <- compute_call_feature(calls, metric, day_segment)
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features <- merge(features, feature, by="local_date", all = TRUE)
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}
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write.csv(features, snakemake@output[[1]], row.names = FALSE)
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