-2

I have a string:

Dim str = "version=""1.0"" & VbCrLf & TIME=10:12:23"

If I run MsgBox(str), it returns

version="1.0" & VbCrLf & TIME=10:12:23

I want it to be:

version="1.0"
TIME=10:12:23

How to do that (return two lines)?

  • It is likely unrelated to your problem here, but you really should declare your variables with explicit types. So instead of Dim str, use Dim str As String = "..." – Cody Gray May 11 '14 at 10:30
8

It seems that you are missing closing " after version definition, and Vb includes all text you typed into string. Thing is that in order to insert quotation mark into string you need to write them twice: "". And in the end of string " becomes """, which is "" - a single quotation symbol and " symbol which closes the string.

Hence, maybe

Dim str = "version=""1.0""" & VbCrLf & "TIME=10:12:23"

would help?

Update: test from linqpad:

Dim str = "version=""1.0""" & Microsoft.VisualBasic.Constants.VbCrLf & "TIME=10:12:23"
Microsoft.VisualBasic.MsgBox(str)

Result is:

enter image description here

Update 2. After some discussion in comments it seems that the question is "how to evaluate a piece of code dynamically in Vb.Net / C#". So the question is much broader, it is about using compiler as service.

In order to evaluate an expression correctly, the most advanced way (AFAIK) is to use Roslyn. As I wrote in here (Evaluating a mathematical expression) one could do something like that (it is C# but it can be easily translated into Vb.Net):

using Roslyn.Scripting.CSharp;

namespace RoslynScriptingDemo {
    class Program {
        static void Main(string[] args)        {
            var engine = new ScriptEngine();
            engine.Execute(@"System.Console.WriteLine((450*5)+((3.14*7)/50)*100);");
        }
    }
}
  • Declaration Dim str = "version=""1.0"" & VbCrLf & TIME=10:12:23" makes the string contain this: version="1.0" & VbCrLf & TIME=10:12:23. Declaration I proposed (Dim str = "version=""1.0""" & VbCrLf & "TIME=10:12:23") makes the string contain this: version="1.0" {newline} TIME=10:12:23. And this is exactly what you asked for. Have you tried my version of code? – Rustam May 11 '14 at 9:52
  • Okay I simplify my question: Dim str ="version=1.0 & VbCrLf & TIME=10:12:23". How to tell VB that there is a carriagereturnlinefeed? I know that I can split the string by "Vbcrlf" but that's not the point. – user3625117 May 11 '14 at 10:07
  • Ok. I am still unsure what you need, but you could then try str = str.Replace("& VbCrLf &", Microsoft.VisualBasic.Constants.VbCrLf) – Rustam May 11 '14 at 10:15
  • 2
    The last comment you posted is nonsense, but no matter, you've already got the correct answer. He's missing a quotation mark. The syntax highlighting should have made that very clear. No idea why he disagreed with you. Here's a +1. – Cody Gray May 11 '14 at 10:29
  • 1
    @MauriceReeves I guess the guy might be not very good in English, since it's hard for him to explain what he wants to achieve. As I wrote in my previous comment, he might really want to tranform an ugly string with & VbCrLf & inside it into a string with carriage return. So I proposed him to use Replace for this case, but unfortunately he didn't return with any further comments ) – Rustam May 11 '14 at 11:07
1

An easy way to create such a string is using String.Format

 Dim msg As String = 
    String.Format("version="{0}{1}{0} {2} Time = {3}", 
                  Chr(34), varVersion, Environment.NewLine, varTime)

Even if you are using literals ("1.0") instead of variables (varVersion) the code is more readable.

version = "1.0" Time = 07:24

Using quotes makes everything more complicated, so dont do that. I usually use [brackets] in place of them:

 Dim msg As String = 
    String.Format("version="[{0}] {2} Time = [{3}]", 
                  varVersion, Environment.NewLine, varTime)

version = [1.0] Time = [07:24]

  • this is really going too far.. and the moderator has changed my question.. what I really want is to eval what's inside the string. For example if I have a string Dim str as string = "1+2" I want msgbox(str) to return "3" not "1+2", something like that.. – user3625117 May 11 '14 at 12:59
  • a) thankfully, VB wont evaluate strings. it is not part of NET for security reasons. b) if the Edit does not reflect your question accurately, you can edit your own question to further clarify. I would append an Edit section so that all these answers dont look like they are all from left field. – Ňɏssa Pøngjǣrdenlarp May 11 '14 at 13:17
0

You are simply missing a double quote after the 1.0:

Dim str = "version=""1.0""" & vbCrLf & "TIME=10:12:23"

0

For a quote, you need """" (four quotes). Hence:

Dim s As String = "version=" & """" & "1.0" & """" & vbCrLf & "TIME=10:12:23"
MsgBox(s)

OR:

Dim q as Char = """"
Dim s() As String = "version=" & q & "1.0" & q & vbCrLf & "TIME=10:12:23"
MsgBox(s)

Here's why: One quote opens or closes a string literal. Two quotes indicate an empty string. Three quotes is therefore an empty string plus an orphaned string delimiter.

0

Or Use This for shorter your code...

Dim str As String = "version=" & Chr(34) & "1.0" & Chr(34) & vbCrLf & "TIME=10:12:23"

Chr(34) is equivalent to Double Quote "

-2

See String.Replace.

Dim Text As String = "version=""1.0"" & vbCrLf & TIME=10:12:23"
MsgBox(Text.Replace(" & vbCrLf & ", vbCrLf))
  • vbCrLf is already in the whole string. It is only one string, no concatenation. – user3625117 May 11 '14 at 9:45
  • 2
    What is the point of String.Join here? This code isn't even correct, String.Join expects the second parameter to be an array. str is not an array. – Cody Gray May 11 '14 at 10:34

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