Contributor: LEE BARKER { "Does anyone have a decent routine for converting a date to and from the number of days since 1/1/1970, which properly takes into account leap years?" While you can use Julian math, I use/wrote the following- (Note: An integer can hold up to a little over 89 years, or a word can hold upto 65536 days or about 179 years) } function leapyear (c,y : byte) : boolean; begin if (y and 3) <> 0 then leapyear := false else if y=0 then leapyear := (c and 3)=0 else leapyear := true; end; function DaysInMonth (c,y,m : byte) : integer; begin if m=2 then if leapyear(c,y) then DaysInMonth := 29 else DaysInMonth := 28 else DaysInMonth := 30 + (($15AA shr m) and 1); end; function DaysInYear (c,y : byte) : integer; begin DaysInYear := DaysInMonth(c,y,2)+337; end; Function DayOfYear (c,y,m,d :byte) : integer; var i,j : integer; begin j := d; for i := 1 to pred(m) do j := j + DaysInMonth(c,y,i); DayOfYear := j; end; So for date2-date1 x := DaysInYear(date1) - DatOfYear(Date1); for i := succ(date1) to pred(date2) do x := x + DaysInYear(i); x := x + DayOfYear(date2);