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I have a vector:

vector<stringstream*> ssv;
for (int i = 0; i < cIter; i++) {
    ssv.push_back(new std::stringstream);
}

How can I put in elements of vector ssv strings?

I try:

string s1 = "easfef" + '\n';
int i = 0;
*ssv[i] << s1 << '\n';

But it give me an empty string:

string sdf = ssv[i]->str();

How can I do it?

Thanks for helping with '\n', but it is stil a problem with vector: if i write:

std::string s1 = "qwerqwr\n";   // for example
int i = 0;
*ssv[i] << s1;

But give me an empty string as before

string sdf = ssv[i]->str();
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"easfef" + '\n' is not good. –  chris Jan 12 '13 at 9:13
    
why do you want to store stringstream in vector? –  billz Jan 12 '13 at 9:16
    
Why use pointers for the stringstream? –  Joachim Pileborg Jan 12 '13 at 9:18
    
I want to take from stringsream strings in next steps for sorting. Each element of vector will be contain several strings(text format) –  user1972060 Jan 12 '13 at 9:20
    
@JoachimPileborg, Well, they aren't copyable, so unless moving is an option, you can't. That's at the low level, though. It could be solved through a higher level problem. –  chris Jan 12 '13 at 9:20
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3 Answers

Your main problem is how you initialize the string:

"easfef" + '\n'

The "easfef" decays into a const char * and '\n' is promoted to an int with the value 10 (assuming ASCII). Then, the two are added together, which results in a pointer that points somewhere beyond your string literal. A crash is very possible, along with your mother being eaten by a dinosaur.

An easy way to fix this is to enforce std::string:

std::string s1 = std::string("easfef") + '\n';

An easier way is to inline the newline:

std::string s1 = "easfef\n";
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+1 - A crash is very possible, along with your mother being eaten by a dinosaur. - Just, lol :D –  webnoob Jan 12 '13 at 9:26
    
@webnoob, I have no regrets. –  chris Jan 12 '13 at 9:27
    
Good, you have done all you can to save his mother from that dreadful dinosaur .. –  webnoob Jan 12 '13 at 9:28
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In your code

string s1 = "easfef" + '\n';

the initialization expression will in practice compute as

"easfef" + 10;

which is a pointer to the eleventh character of the string.

But there is no such, so you have Undefined behavior.


Fix:

string s1 = string() + "easfef" + '\n';

That said, a vector of pointers to stringstream is almost certainbly an impractical solution to whatever problem you're trying to solve.

Try to describe the higher level problem.

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Why would you choose to construct an empty temporary string and add that to "easfef", producing another temporary string, rather than construct a temporary string with easfef as constructor argument? And why not suggest putting the '\n' constant into the string literal? –  Agentlien Jan 12 '13 at 9:24
    
@Agentlien, It probably didn't cross his mind. I didn't realize that it was a string plus a character until I was typing out my first suggestion. –  chris Jan 12 '13 at 9:27
    
Well, I try to solve items 4-5 from en.wikipedia.org/wiki/External_sorting where my elements - strings from .txt file –  user1972060 Jan 12 '13 at 9:38
    
@chris Probably, that simple answer didn't cross my mind. <.< –  Agentlien Jan 12 '13 at 9:42
    
@Agentlien: re the string() + , because maintainability is better the way I wrote it. your suggestion would be a premature optimization of an irrelevant detail. it would be severely ungood to incur a cost of programmer time to prematurely optimize an expression that first of all doesn't count towards execution time overall, and secondly which the compiler most likely does automatically for you anyway. whenever the urge to premature optimization gets hold of you, remember, don't do it. And next time (a few minutes later), don't do it yet. Then if still urge, MEASURE first! –  Cheers and hth. - Alf Jan 12 '13 at 9:49
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In C++ string literals are raw arrays of chars, and arrays can be treated as pointers, and character literals like '\n' can be treated as numbers, so "easfef" + '\n' is interpreted as a pointer arithmetic operation.

You should write:

string s1 = "easfef";
s1 += '\n';
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