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According to the MSDN help for VB6

Floating-point values can be expressed as mmmEeee or mmmDeee, in which mmm is the mantissa and eee is the exponent (a power of 10). The highest positive value of a Single data type is 3.402823E+38, or 3.4 times 10 to the 38th power; the highest positive value of a Double data type is 1.79769313486232D+308, or about 1.8 times 10 to the 308th power. Using D to separate the mantissa and exponent in a numeric literal causes the value to be treated as a Double data type. Likewise, using E in the same fashion treats the value as a Single data type.

Now in the VB6 IDE I've tried to enter this

const MAX_DOUBLE as Double = 1.79769313486232D+308

however, as soon as I move away from that line the IDE throws an Error 6 (Overflow)

An overflow results when you try to make an assignment that exceeds the limitations of the target of the assignment. ...

So how do I get MAX_DOUBLE (and MIN_DOUBLE for that matter) defined?

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If the IDE shows you that message as soon as you move away from the line, you might want to switch off Auto Syntax Check in the options. Many people find those incessant message boxes irritating.… – MarkJ May 30 '09 at 6:52
I'm not sure what you'd even use this for. Test to see if a variable is greater than MAX_DOUBLE? LOL – Bob May 31 '09 at 16:09
@Bob: lots of uses, for instance as a sentinel value. – MarkJ Jun 1 '09 at 13:08
But isn't that one of the major reasons we have Null? Yes, it implies the use of Variant but at least it saves you from the hazards of Magic Number values that fall within the natural range of valid ones. Performance is important, but not as important as avoiding engineered-in pitfalls. – Bob Jun 5 '09 at 21:11

4 Answers 4

up vote 4 down vote accepted

Does it have to be a Const? You can get the exact value of MAX_DOUBLE into a variable by setting the correct bit pattern using CopyMemory from a Byte array.

Private Declare Sub CopyMemory Lib "kernel32" Alias "RtlMoveMemory" (Destination As Any, Source As Any, ByVal Length As Long)

Dim Max As Double
Dim Idx As Long
Dim Bits(0 To 7) As Byte

For Idx = 0 To 5
   Bits(Idx) = 255
Bits(6) = 239 ' = 11101111
Bits(7) = 127

For Idx = 0 To 7
   CopyMemory ByVal VarPtr(Max) + Idx, Bits(Idx), 1

Debug.Print Max

Edit: I forgot that you also asked about MIN_DOUBLE, which is even easier.

Dim Min As Double
Dim Bits As Byte

Bits = 1
CopyMemory ByVal VarPtr(Min), Bits, 1

Debug.Print Min
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+1 You might want to include the declare for CopyMemory just for completeness. Private Declare Sub CopyMemory Lib "KERNEL32" Alias "RtlMoveMemory" ( hpvDest As Any, hpvSource As Any, ByVal cbCopy As Long) Obviously we must always remember to credit Bruce McKinney whenever we even think of posting CopyMemory :) – MarkJ Jun 2 '09 at 17:12

Edit: Solved it!

Const test As Double = 1.79769313486231E+308 + 5.88768018655736E+293

Double checked it down to the binary level, that should be as high as you can go. You can keep adding values like 1 etc but it yields a number equal to, not greater than. Output is this: 01111111|11101111|11111111|11111111|11111111|11111111|11111111|11111111 Which is indeed DoubleMax

Old: You could just use Positive infinity.

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True. I suppose I wanted it just for completeness's sake. In the same way that the inventors of VB just _had to have IMP and EQV as well as AND, OR, NOT and XOR. – boost Jun 1 '09 at 7:58
OK, I did some digging around and updated the code to include positive and negative values. Doesn't quite get it to you in a const, but it's progress. – Oorang Jun 1 '09 at 9:18
Got yer const working:) – Oorang Jun 2 '09 at 4:35

Obvious pragmatic workaround: reduce the number slightly.

Const MAX_DOUBLE As Double = 1.79769313486231E+308

I imagine that'll be adequate in most situations.

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In fact, the underlying value isn't ...6232, it's rounded to that for display. It's actually about ...6231557, so your suggestion of ...6231 is close enough for any practical purpose. – Jim Mack May 30 '09 at 21:43

Use an "E" for exponent in the number instead of a "D" like this below.

Public Const MAX_DOUBLE = 1.79769313486232E+308


Take a look at this link below, scroll to the bottom. This concrete code example shows how this construct is being employed. Hopefully this helps.

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But if you read the MSDN documentation (quoted above) the E notation resolves to a Single value, not a Double one – boost May 30 '09 at 5:54
And I get an overflow with the E notation as well – boost May 30 '09 at 5:55
Sorry, i updated the post above, try it again, but without the "as Double" bit. It should work. – James May 30 '09 at 6:00
Still doesn't work. – MarkJ Jun 1 '09 at 13:09

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