I have a string in the form "yyyy-mm-dd hh:mm:ss.mmm" (where the end is milliseconds)
I'd like to convert it to a number, preferably a Date, which preserves all the information
I've tried CDate(), eg.
Dim dateValue As Date
dateValue = CDate("2017-12-23 10:29:15.223")
But get a type mismatch error
A Date type holds the number of days since December 30 1899 with a precision of one second. Though it's still possible to hold the milliseconds by storing the date in a currency type since it can hold 4 extra digits compared to a Date/Double.
So an alternative would be to store the date as a timestamp in a Currency type representing the number of seconds since December 30 1899:
Public Function CDateEx(text As String) As Currency
Dim parts() As String
parts = Split(text, ".")
CDateEx = CCur(CDate(parts(0)) * 86400) + CCur(parts(1) / 1000)
End Function
And to convert the timestamp back to a string:
Public Function FormatDateEx(dt As Currency) As String
FormatDateEx = Format(dt / 86400, "yyyy-mm-dd HH:mm:ss") & "." & ((dt - Fix(dt)) * 1000)
End Function
Why not use DateAdd to add the last 0.233 seconds after obtaining the whole second as a date Value?
Dim Str As String, MS As String
Dim DateValue As Date
Dim L as Integer
Str = "2017-12-23 10:29:15.223"
For L = 1 to Len(Str)
If Left(Right(Str, L), 1) = "." Then
MS = "0" & Right(Str, L)
Str = Left(Str, Len(Str) - L)
Exit For
End If
Next L
DateValue = CDate(Str)
If MS <> "" Then DateValue = DateAdd("S",MS,DateValue)
Date datatype that's the problem; it does not hold numbers to ms precision. So DateAdd has no effect, as the decimal portion of the date is cut off. You can test this with a debug.print DateValue before and after the DateAdd
Use the Left$ function to trim the decimal point and milliseconds:
Dim dateValue As Date
dateValue = CDate(Left$("2017-12-23 10:29:15.223", 19))
The code below contains all the components you might need to manage your dates and their milliseconds.
Private Sub ParseTime()
Dim strTime As String
Dim Sp() As String
Dim Dt As Double
strTime = "2017-12-23 10:29:15.221"
Sp = Split(strTime, ".")
strTime = Sp(0)
Dt = CDbl(CDate(strTime))
strTime = "yyyy-mm-dd hh:mm:ss"
If UBound(Sp) Then
Dt = Dt + CDbl(Sp(1)) * 1 / 24 / 60 / 60 / (10 ^ Len(Sp(1)))
strTime = strTime & "." & CInt(Sp(1))
End If
Debug.Print Format(Dt, strTime)
End Sub
I can't say that I am entirely happy with the solution because the print is only implicitly equal to the date value. However, I found that the formerly valid Date/Time format, like "yyyy-mm-dd hh:mm:ss.000", doesn't seem to work since 2007. However, it should be possible to prove conclusively that the Date/Time value is equal to its rendering by the format mask I includedcd above.
Michael's answer has an error (as spotted by Jim) when the decimal part rounds up.
The following corrects the error (slightly modified for tenths of seconds rather than milliseconds and with a parameterized format pattern).
Public Function FormatDateEx(dt As Currency, formatPattern As String) As String
Rem FormatDateEx = Format(dt / 86400, "yyyy-mm-dd HH:mm:ss") & "." & ((dt - Fix(dt)) * 1000)
Dim decimalPart As Double
decimalPart = Round(((dt - Fix(dt)) * 10), 0)
If (decimalPart = 10) Then
FormatDateEx = format(dt / 86400, formatPattern) & ".0"
Else
FormatDateEx = format(Fix(dt) / 86400, formatPattern) & "." & decimalPart
End If
End Function
