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I´m using Type.GetType() to create a instance.

This works:

 var type = Type.GetType("Test.ClassServices.HowService, Test");

But, this doesn´t work. It returns null:

 var name = "How";
 var type = Type.GetType("Test.ClassServices."+name+"Service, Test");
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2  
GetType does not create an instance, it returns a Type object that represents the specified type. As for null, are you sure the assembly can be found and is loaded and the namespace is correct? –  Lloyd Apr 12 '12 at 15:32
4  
I tried this in .NET 4 and had no problems. So double check the code for typos. –  Jetti Apr 12 '12 at 15:36
2  
Are you sure that you did not any typo's in 2-nd case? I suppose, value of name variable is calculated, are you sure that this is done correctly(BTW, casing matters)? –  aleksey.berezan Apr 12 '12 at 15:37
1  
I agreed with @Jetti, the code is equivalent. Must work. Try typing it out again. Perhaps a Unicode funkiness. Also, create the string into it's own variable, then assert it to be equal to the hardcoded version. –  leppie Apr 12 '12 at 15:48
    
Well, I had an error in the database. Thanks –  Fernando JS Apr 12 '12 at 16:17

1 Answer 1

up vote 5 down vote accepted

No-repro. Run this sample:

var hardCodedWorking = Type.GetType("System.String");

var stringName = "String";
var concatenatedWorking = Type.GetType("System." + stringName);

var badStringName = "string";
var concatenatedNull = Type.GetType("System." + badStringName);

From Type.GetType() on MSDN:

Gets the Type with the specified name, performing a case-sensitive search.

Based on that and my example above, I believe it's most likely that the value of name isn't matching the name of the class perfectly.

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