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I face a problem to declare HashTable variable in C++. In java language we can declare HashTable variable such like

Hashtable<String, sqlStat>  pool = new Hashtable<String, sqlstat>(30);

But I try to declare HashTable in C++ such as the code show as below and get an error with those codes:-

std::unordered_map<string, sqlstmt*> abc = new std::unordered_map<string, sqlstmt*>(30);

I have no idea to solve this problem can anyone teach me a solution to solve this problem. Thank you.

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4  
c++ is not java, dont use new if not pointing to a pointer –  RamonBoza Oct 3 '13 at 7:33
    
I'm still blur on in. Can you gv me a simple example code? –  tonberry Oct 3 '13 at 7:36
    
yes, look on answers –  RamonBoza Oct 3 '13 at 7:36

2 Answers 2

up vote 1 down vote accepted

new is only required for dynamic allocation, and the result is a pointer, so it would need to be assigned to a pointer variable or fed to an object that accepts a pointer. In C++, you can declare a locally scoped instance without using new. In your case, just leave the new ... out:

std::unordered_map<string, sqlstmt*> abc;
abc["query"] = new sqlstmt(...);

Coming from Java, when using dynamic allocation, you should adopt using smart pointers rather than bare pointers.

std::unordered_map<string, std::shared_ptr<sqlstmt> > abc;
abc["query"] = std::make_shared<sqlsmt>(...);

This is so you get the behavior of the memory getting reaped automatically when there are no more references to the object. Java gives you this behavior by default. In C++, you use smart pointers to get that behavior. Without smart pointers, you have to call delete explicitly when you are done with the dynamically allocated object.

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I get an error which is 'unordered_map in namespace 'std' does not name a type. –  tonberry Oct 3 '13 at 7:41
    
Use a C++ reference. You need to #include <unordered_map>. –  jxh Oct 3 '13 at 7:44
    
For shared_ptr you need #include <memory>. –  jxh Oct 3 '13 at 7:45
    
I have include reference to it. But it still get the same error say 'unordered_map' does not name a type. –  tonberry Oct 3 '13 at 7:53
    
See this example. Make sure you are compiling with C++ 11 mode. –  jxh Oct 3 '13 at 7:56

Just to get in touch, you need to use STL,

hash_map<char* key, char* value> map; //map is empty
map["a"]= "The value of a";
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hash_map is not standard; although is common pre-C++11. C++11 has unordered_map; it was decided to rename to unordered_map as the hash_map implementations differed. –  Bathsheba Oct 3 '13 at 7:37
    
you are right :) –  RamonBoza Oct 3 '13 at 7:38

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