library(lubridate) library(ggplot2) library(StreamMetabolism) library(xts) library(reshape) library(scales) DE__Heist <- sunrise.set(53.654902,9.656757, "2024/01/01", timezone="MET", num.days=370) sunrise <- DE__Heist$sunrise sunset <- DE__Heist$sunset sunrise <- strftime(sunrise, format="%R", tz="MET") sunset <- strftime(sunset, format="%R", tz="MET") DE__Heist["sr"] <- as.POSIXct(sunrise, format = "%H:%M") DE__Heist["ss"] <- as.POSIXct(sunset, format = "%H:%M") DE__Heist["timestamp"] <- align.time(DE__Heist$sunrise, 60*10) DE__Heist <- DE__Heist[c("timestamp", "sr", "ss")] locsrss <- ggplot(DE__Heist, aes(x=DE__Heist$timestamp)) + geom_line(aes(y=DE__Heist$sr)) + geom_line(aes(y=DE__Heist$ss)) + labs(title = " Sonnenauf-/Sonnenuntergang - DE__Heist 2024", x = "Datum", y = "Zeit") pdf("DE__Heist_SA_SU.pdf", paper="a4r", width=11) locsrss dev.off() png(filename="DE__Heist_SA_SU.png", width = 1400, height = 800, units = "px") locsrss dev.off() DE__Heist["Sonnenaufgang"] <- strftime(DE__Heist$sr, format="%H:%M") DE__Heist["Sonnenuntergang"] <- strftime(DE__Heist$ss, format="%H:%M") write.table(DE__Heist, file="DE__Heist_SaSu.csv", dec=',', sep=';', row.names=FALSE)