148

How do I convert the integer value "45" into the string value "45" in Excel VBA?

224

CStr(45) is all you need (the Convert String function)

95

Try the CStr() function

Dim myVal as String;
Dim myNum as Integer;

myVal = "My number is:"
myVal = myVal & CStr(myNum);
46

Most times, you won't need to "convert"; VBA will do safe implicit type conversion for you, without the use of converters like CStr.

The below code works without any issues, because the variable is of Type String, and implicit type conversion is done for you automatically!

Dim myVal As String
Dim myNum As Integer

myVal = "My number is: "
myVal = myVal & myNum

Result:

"My number is: 0"

You don't even have to get that fancy, this works too:

Dim myString as String
myString = 77

"77"

The only time you WILL need to convert is when the variable Type is ambiguous (e.g., Type Variant, or a Cell's Value (which is Variant)).

Even then, you wont have to use CStr function if you're compounding with another String variable or constant. Like this:

Sheet1.Range("A1").Value = "My favorite number is " & 7

"My favorite number is 7"

So, really, the only rare case is when you really want to store an integer value, into a variant or Cell value, when not also compounding with another string (which is a pretty rare side case, I might add):

Dim i as Integer
i = 7
Sheet1.Range("A1").Value = i

7

Dim i as Integer
i = 7
Sheet1.Range("A1").Value = CStr(i)

"7"

  • 2
    I don't understand why this answer doesn't have more votes, given it is true. It is worth noting that type conversion is not always carried out, it depends on the operator in use. For example the + operation will not always widen an integer to a string. – Mark Ch Nov 11 '15 at 11:46
  • 1
    @MarkCh I know this is old, but... perhaps because VBA's obnoxious implicit conversions and default member calls are what makes so much VBA code frail, surprising and bug-prone? There wouldn't be half as many VBA questions on SO if it wasn't of implicit conversions, implicit accessibility, implicit default member access, implicit 1-based arrays with Option Base 1, implicit typing with Def[Type] (boy that's EVIL!), implicit... you get it - the only good implicit thing in VBA is the implicit call syntax that made the explicit Call obsolete. – Mathieu Guindon Aug 22 '17 at 15:43
7

In my case, the function CString was not found. But adding an empty string to the value works, too.

Dim Test As Integer, Test2 As Variant
Test = 10
Test2 = Test & ""
//Test2 is now "10" not 10
  • 2
    Nobody talked about CString, which is a VB.NET function. Concatenating an empty string literal to make a string is a pretty lame conversion method. Use CStr for explicit type conversions - this is an implicit type conversion and raises eyebrows of anyone reading that code. Sorry I found this answer so late after it was posted, I wish I could have downvoted it much earlier. – Mathieu Guindon Aug 22 '17 at 15:47
2

If the string you're pulling in happens to be a hex number such as E01, then Excel will translate it as 0 even if you use the CStr function, and even if you first deposit it in a String variable type. One way around the issue is to append ' to the beginning of the value.

For example, when pulling values out of a Word table, and bringing them to Excel:

strWr = "'" & WorksheetFunction.Clean(.cell(iRow, iCol).Range.Text)
2

The shortest way without declaring the variable is with Type Hints :

s$ =  123   ' s = "123"
i% = "123"  ' i =  123

This will not compile with Option Explicit. The types will not be Variant but String and Integer

0

Another way to do it is to splice two parsed sections of the numerical value together:

Cells(RowNum, ColumnNum).Value = Mid(varNumber,1,1) & Mid(varNumber,2,Len(varNumber))

I have found better success with this than CStr() because CStr() doesn't seem to convert decimal numbers that came from variants in my experience.

0

If you have a valid integer value and your requirement is to compare values, you can simply go ahead with the comparison as seen below.

Sub t()

Dim i As Integer
Dim s  As String

' pass
i = 65
s = "65"
If i = s Then
MsgBox i
End If

' fail - Type Mismatch
i = 65
s = "A"
If i = s Then
MsgBox i
End If
End Sub

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