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5

Simple: > "10 Jan 2015".split(/\b/g) < ["10", " ", "Jan", " ", "2015"] This will split on a word boundary.


5

Here is an implementation that works: to.week <- function(x) as.integer(format(x, "%W")) The reason strtoi fails is by default it tries to interpret numbers as if they were octal when they are preceeded by a "0". Since "%W" returns "08", and 8 doesn't exist in octal, you get the NA. From ?strtoi: Convert strings to integers according to the given ...


4

you can slightly modify your code like this to.week <- function(x) strtoi(format(x, "%W"), 10) and use base 10.


3

You should try with String.PadLeft(): using System; class Program { static void Main() { string s = "cat".PadRight(10); string s2 = "poodle".PadRight(10); Console.Write(s); Console.WriteLine("feline"); Console.Write(s2); Console.WriteLine("canine"); } } which will output: cat feline ...


3

No it is because you missed full_name in your insert statement: insert into HLV values ('HLV0001',GETDATE(), 'michael jordan' ,10,5,6)


3

I assume that "mm dd yyyy" will actually be numbers, but this will work for the strings as well. var date ="01 02 1292"; var dateArr = date.match(/[^\s]+|\s/g); document.write(JSON.stringify(dateArr));


3

Here's your problem: 14.95 - (0.1 * 14.95) = 13.455 No, in IEEE doubles, 14.95 - (0.1 * 14.95) is 13.454999999999998. Which rounds down to 13.45 correctly. Here's the obligatory link to What Every Computer Scientist Should Know About Floating-Point Arithmetic. If you want 14.95 to actually be exactly 14.95, rather than the closest binary fraction to ...


2

Simple approach: Left$(Format$(Now(), "Hh:NnA/P"), 5)


2

This works... function humanDateRanges($start, $end){ $startTime=strtotime($start); $endTime=strtotime($end); if(date('Y',$startTime)!=date('Y',$endTime)){ echo date('F j, Y',$startTime) . " to " . date('F j, Y',$endTime); }else{ if((date('j',$startTime)==1)&&(date('j',$endTime)==date('t',$endTime))){ ...


2

You can get the currency symbol by using the .Text property rather than the .Value property: Sub MoneyCheck() Dim st As String st = ActiveCell.Text ch = Left(st, 1) If ch = "$" Then MsgBox "Dollars" ElseIf ch = "€" Then MsgBox "Not Dollars" End If End Sub


2

Using conditional tests to sort the values into separate outputs is not going to affect performance in a significant way. The format process is far more elaborate. One important thing about optimization is to only walk that path if you can measure a performance hit in the actual code. if (val < 10) then s := FormatFloat('00.00',val) else if (val < ...


2

Basically, you need a different strategy (code) for each file format. A file with extension .txt usually contains ASCII data and is simple to read. A file with extension .doc contains binary data for MS Word and is virtually impossible to read with something other than MS Word. All other file formats are somwhere inbetween these extremes. The file ...


2

I would choose the consctructor approach, but more like this var Gandalf = new Character("Gandalf", "wizzard", 50, 15, 8); function Character(name, characterClass, health, damage, heal){ this.name = name, this.characterClass = characterClass, this.health = health, this.damage = damage, this.heal = heal, this.dodge = Math.random() * ...


2

Use a calculated property. get-psdrive -psprovider FileSystem | select-object Name,@{Name="Used" Expression={$_.Used/1GB}} See help for Select-Object.


1

There are many ways but I'm gonna answer it in the most simple way so this is easier to apply. Try this... stringFormattedDate = CDate(stringNotFormattedDate).toString("yyyy-MM-dd") If this solves your problem, please let me know down to the comments below. If there are errors, please raise it too but it works fine for me. The reason why I added CDate is ...


1

I know it's late, but would it be best to do: $date = date("Y-m-d");


1

Use Calendar instead, which is not deprecated: Calendar systimeNowA = Calendar.getInstance(); int hour = systimeNowA .get(Calendar.HOUR_OF_DAY); How to get the format: SimpleDateFormat dateFormat = new SimpleDateFormat( "yyyy/MM/dd HH:mm"); String formattedOutput= dateFormat.format(systimeNowA .getTime());


1

Im affraid that there is no out-of-the-box functionality for what you are asking, and you will have to write your own function for that. Here is a js Date object specification : Date Object Your new function return type cannot be Date, as this kind of formatting can be only achieved with string type.


1

You can't have date object in that format. You will have manually create the format. It will be string. var dateObj = new Date('04/05/2015, 01:30'), // input date interval = 30, // interval in minutes remainingInterval = 0; var hours = dateObj.getHours(), minutes = dateObj.getMinutes(); if(minutes > interval) { ...


1

Please check the below solutions: http://jsfiddle.net/ub942s6y/14/ You need to change data.addColumn('datetime', 'Date'); to 'string' as we are changing time It will work fine. :)


1

use this Date.ParseExact or Date.TryParseExact with correct format string. Dim dt As Date = Date.ParseExact(mData, "yyyy-mm-dd", System.Globalization.DateTimeFormatInfo.InvariantInfo) or Dim format() = {"yyyy-mm-dd", "d/M/yyyy", "dd-MM-yyyy"} Dim dt As Date = Date.ParseExact(mData, format, ...


1

The data is a little confusing to what you are wanting to output. You said 2015-01-03 02:30:00 should be 3-Mar-2015 02:30 AM but that isn't what it will be. I assume this to be typical DB datetime field (without timezone) as YYYY-MM-DD format. So the 2015-01-03 is really 3-JAN-2015 If this is the case then the following is true. Please give moment js ...


1

function toArray(format) { var r = new RegExp('([0-9]{2})( )([0-9]{2})( )([0-9]{4})'); return format.match(r).slice(1); } document.write(JSON.stringify(toArray("30 12 1980")));


1

Just to expand of Giorgi Nakeuri's Answer, When you use insert into HLV without any column names, sql server assumes you are going to pass all the columns defined in the table (except for columns like identity). In your Insert query insert into HLV values (N'HLV0001',GETDATE(), 10,5,6) SQL Server is expecting values for all the columns id, ...


1

There are 6 columns in the table, but only 5 values in the insert statement values clause. You can fix the problem by specifying all 6 required values, however I would also strongly recommend to specify the column names in the insert statement to make it more robust to change, more self-documenting. You won't have to be sure of the actual column order. You ...


1

Unlike what everybody suggest to use a G format specifier I would suggest the following to preserve both thousand separator and decimal point while removing extra trailing zeros: {0:#,#.##} The result of this format is much better than G in most cases: String.Format("{0:#,#.##}",25/2.4); 10.42 String.Format("{0:#,#.##}",1000000); 1,000,000 ...


1

from this comment on the question: i want all the names to be in a column of width 20, and all the fnames to be on the very left of that column of width 20, all the ids to be in a column of width 10, with all the ids on the very left of that column of width 10, and then all the nums to in a column of width 10, with all the nums on the very left of that ...


1

The AMPM formatting token respects the current locale. It does unconditionally sets the 12-hour mode for the time pieces, but it outputs "AM/PM" only when your locale says so. For instance, under my locale, where the 24 hour format is the default, Format$(Now, "h:m:s AMPM") will format the time according to 12-hours rules, but will not print "AM" or "PM". ...


1

The class is integer if you wrap the variable in as.character as.date can read it. sapply(data, class) data$date.of.review <- as.Date(as.character(data$Date_String), "%Y%m%d") data



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