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after saving a string into a TTree

std::string fProjNameIn,  fProjNameOut;
TTree *tTShowerHeader;
tTShowerHeader = new TTree("tTShowerHeader","Parameters of the Shower");
tTShowerHeader->Branch("fProjName",&fProjNameIn);
tTShowerHeader->Fill();

I'm trying to do the following

fProjNameOut = (std::string) tTShowerHeader->GetBranch("fProjName");

which does not compile, though

std::cout << tTShowerHeader->GetBranch("fProjName")->GetClassName() << std::endl;

tells me, this Branch is of type string

is there a standard way to read a std::string from a root tree?

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What is the type of tTShowerHeader ? – Tony The Lion Aug 10 '11 at 12:36
    
tTShowerHeader is a TTree – IljaBek Aug 10 '11 at 13:05
1  
-1: I have absolutely zero idea what TTree is and still am able to tell at first sight it can't compile and why, so I suspect a little more careful reading of documentation would be in order. – Jan Hudec Aug 10 '11 at 14:14
up vote 1 down vote accepted

Ok, this took a while but I figured out how to get the information from the tree. You cannot directly return the information, it can only be returned through the variable it was given in.

std::string fProjNameIn,  fProjNameOut;
TTree *tTShowerHeader;

fProjnameIn = "Jones";
tTShowerHeader = new TTree("tTShowerHeader","Parameters of the Shower");
tTShowerHeader->Branch("fProjName",&fProjNameIn);
tTShowerHeader->Fill();//at this point the name "Jones" is stored in the Tree

fProjNameIn = 0;//VERY IMPORTANT TO DO (or so I read)
tTShowerHeader->GetBranch("fProjName")->GetEntries();//will return the # of entries
tTShowerHeader->GetBranch("fProjName")->GetEntry(0);//return the first entry
//At this point fProjNameIn is once again equal to "Jones"

In root the TTree class stores the address to the varriable used for input into it. Using GetEntry() will fill the same variable with the information stored in the TTree. You can also use tTShowerHeader->Print() to display the number of entires for each branch.

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1  
-1: Never ever suggest C style cast in C++. Most of the time don't suggest any cast in C++. C++ code that needs casts is usually either plain wrong or at least too clever for it's own good. – Jan Hudec Aug 11 '11 at 7:05
    
Alright, thanks (I was just using the code from the question verbatum). Could you by any chance tell me how you should do the casting in C++? – ac1dicburn Aug 11 '11 at 18:04
    
@ad1dicburn: Well written C++ code should do without casts, only using implicit ones and the "function-style" cast, which is really a request to construct a temporary. But if you occasionally need other, there are static_cast (for related pointers and references), dynamic_cast (for runtime checking of polymorphic classes), const_cast (removes CV-qualification) and reinterpret_cast (for unrelated pointers). Of course you should only ever need const_cast to work around bad interface and reinterpret_cast will probably invoke Undefined Behaviour. – Jan Hudec Aug 12 '11 at 5:56
    
one gets the name specified for Branch, but not the contents of the string – IljaBek Aug 12 '11 at 13:38
    
@Jan Hudec Thanks for the correction. – ac1dicburn Aug 12 '11 at 15:19

You are calling tTShowerHeader->GetBranch("fProjName")-> and it compiles. That means that return type of tTShowerHeader->GetBranch() is a pointer.

Moreover, you are calling GetClassName() on that pointer and it compiles, so it's a pointer to a class type.

Even more, the std::string does not have a GetClassName() method, so it's not a std::string*. Indeed, it seems it is TBranch *. You must find appropriate method that will give you the text.

PS: Unlearn to use C-style cast in C++. C-style cast is evil, because it will do different things depending on what the type happens to be. Use the restricted static_cast, dynamic_cast, const_cast or function-style casts instead (and reinterpret_cast if you really need that, but that should be extremely rare).

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I see your point. worked out how to store a fixed size char string instead - as it seems, TTree can only store c-type objects. fXY = (TH2D*)rootfile->Get("XY"); is a common technique in root, so I tried to cast a standard type admittedly instead of a root-class. – IljaBek Aug 10 '11 at 14:40

The solution follows below.

Imagine you have a ROOT file and you want to save an std::string to it.

TTree * a_tree = new TTree("a_tree_name");
std::string a_string("blah");
a_tree->Branch("str_branch_name", &a_string); // at this point, you've saved "blah" into a branch as an std::string

To access it:

TTree * some_tree = (TTree*)some_file->Get("a_tree_name");
std::string * some_str_pt = new std::string(); 
some_tree->SetBranchAddress("str_branch_name", &some_str_pt);

some_tree->GetEntry(0);

To print to standard output:

std::cout << some_str_pt->c_str() << std::endl;

Hope this helps.

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