1

I am reading data from a cell in Excel file. I have the value of time(milliseconds) in Double i.e. 0.36712962962962964.

I need to convert this value to java.sql.Time format. I tried parsing it using various approaches but it fails. Following is the code.

timeInDouble = 0.36712962962962964; Time time = new Time(Long.parseLong(timeInDouble.toString()));

The output for this code is:

java.lang.NumberFormatException: For input string: "0.36712962962962964"

What is the correct way for this conversion?

  • Long can only contain natural numbers, so how should it treat 0.36? Becoming 0? – Tom Sep 21 at 22:51
  • Yes, so should i multiply the long with 1000 and then pass it to Time() class? – Shariq Alee Sep 21 at 22:53
  • 1
    FYI, the java.sql.Time class was years ago replaced by java.time.LocalTime, with the adoption of JSR 310. – Basil Bourque Sep 22 at 1:25
0

The double value represents a part of day duration, where 0 is begin and 1 is the end of the day. Contructor of Time class expects the time in milliseconds. In a day there are 24 x 60 x 60 x 1000 milliseconds. First we convert daouble into the number of milliseconds since the beginning of the day. Then create a time using milliseconds.

double timeInDouble = 0.36712962962962964;

// The number of milliseconds since the beginning of the day
long milliseconds = (long) (timeInDouble * 24 * 60 * 60 * 1000);

Time time = new Time(milliseconds);
1

tl;dr

Modern solution use java.time class LocalTime.

Convert your string input to double, as a fraction of a day, multiply by the number of nanoseconds (or milliseconds perhaps) in a day, adding to the 00:00:00 time-of-day.

LocalTime
.MIN
.plusNanos (
    (long)
    (
            TimeUnit.HOURS.toNanos ( 24 )
            *
            Double.parseDouble ( "0.36712962962962964" )
    )
)

08:48:40

java.time

The java.sql.Time class is a terrible hack, pretending to be a time-of-day but actually implemented as a moment by subclassing java.util.Date. Never use this class.

With the adoption of JSR 310, this class became legacy, supplanted by the java.time.LocalTime class. A LocalTime truly represents a time-of-day without a date and without the context of a time zone or offset-from-UTC.

I assume you are correct in saying that this decimal number provided by Microsoft Excel represents a fraction of a 24-hour day. By the way, this is a poor way to represent a time-of-day; a better way is to use text in standard ISO 8601 format.

Start by parsing your input into a double primitive. Normally, I would suggest BigDecimal class for accuracy, but I am guessing that Excel uses floating-point technology to handle this number, so we will do the same.

// Parse your input string as a `double`.
String input = "0.36712962962962964";
double fractionOf24Hours = Double.parseDouble ( input );

That input presumably represents a fraction of a 24-hour day. So let's calculate the number of nanoseconds in a day. I suppose Excel uses milliseconds rather than nanoseconds, but the end result may be the same.

// Calculate the number of nanoseconds in a day.
long nanosIn24Hours = TimeUnit.HOURS.toNanos ( 24 );

We have the constant LocalTime.MIN to represent the time-of-day 00:00:00. Add to that the number of nanos representing our desired fraction of a day.

// Start at time-of-day zero, adding the amount of time in nanos.
long nanosToAdd = ( long ) ( nanosIn24Hours * fractionOf24Hours );
LocalTime localTime = LocalTime.MIN.plusNanos ( nanosToAdd );

See this code run live at IdeOne.com.

localTime.toString(): 08:48:40

Convert

If you must have java.sql.Time object to interoperate with old code not yet updated to java.time, you can convert back-and-forth. Look to new methods added to the old classes.

java.sql.Time t = Time.valueOf( localTime ) ;

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.