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Given public String(char*) why we cannot use the following statement?

string str = new string("aaa");

Error 1

The best overloaded method match for 'string.String(char*)' has some invalid arguments C:\temp\ConsoleApplication2\ConsoleApplication2\Program.cs 19 26 ConsoleApplication2

Error 2

Argument 1: cannot convert from 'string' to 'char*' C:\temp\ConsoleApplication2\ConsoleApplication2\Program.cs 19 37 ConsoleApplication2

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5 Answers 5

up vote 10 down vote accepted

Simply use:

 string str = "aaa";

You do not need to new a string.

"aaa" is a string. It is not a char *.
char * is used with unsafe code.

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this is what I need:) -thx –  q0987 Jun 1 '11 at 20:50

Because this isn't meant to be used in safe code...

In C#, this constructor is defined only in the context of unsafe code.

from: http://msdn.microsoft.com/en-us/library/6y4za026.aspx

If you need to construct a string you could just use the literal decleration..

string str = "aaa";
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You are attempting to call a constructor with a string as a parameter.

The compiler is telling you there is no string constructor with a single string as a param.

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so in C# "aaa" doesn't mean a type of char*? –  q0987 Jun 1 '11 at 20:48
    
@g0987 nope it is always a System.String which is UTF-16 encoded string –  lukas Jun 1 '11 at 20:50

The type char* is for an unsafe pointer -- to an object not part of the .Net managed framework. When you place the literal string "aaa" in your code, that's a managed object. string is not char* in C#.

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have look to this may resolve your doubt C# New String Constructor

unsafe public String(char*);
       public String(char[]);
unsafe public String(sbyte*);
       public String(char, int);
unsafe public String(char*, int, int);
       public String(char[], int, int);
unsafe public String(sbyte*, int, int);
unsafe public String(sbyte*, int, int, Encoding);
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I did check these info before I posted my question. After reading the message from this thread, I got the basic idea. -- thx –  q0987 Jun 1 '11 at 20:49
    
@q0987 - as you see the doc you need to pass the char array you cannot pass the string value...i am not getting well y you passed the string if you already have information about it.... –  Pranay Rana Jun 1 '11 at 20:52

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