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I am new to using boost::lexical_cast and have minimal understanding of its internals. I am trying to do the following cast:

string someString = boost::lexical_cast<char>(sourceString);

However, boost is complaining that the above code is:

[Exception]: bad lexical cast: source type value could not be interpreted as target

The source is a string, however it will always only be 1 character long.

Could someone please explain?

Thanks.

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1  
Was there a reason you're doing that instead of something like char c = *(sourceString.c_str());? And why are you turning a string into a char and putting it back into a string? –  Seth Carnegie Oct 28 '11 at 14:26
3  
Or perhaps char c = sourceString[0];? –  Mike Seymour Oct 28 '11 at 14:26
    
@MikeSeymour or you could just do that... –  Seth Carnegie Oct 28 '11 at 14:28
    
@set - sorry i didn't write that part properly, i meant to declare it as a char. i could do that, but i would just like to understand why boost cannot convert it properly. thanks –  czchlong Oct 28 '11 at 14:31
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Also, this won't compile, since you can't convert the char result of lexical_cast<char> to a string. Once I fix that, the code works as long as sourceString contains a single character. –  Mike Seymour Oct 28 '11 at 14:32

1 Answer 1

up vote 4 down vote accepted

When I test it (after fixing the invalid conversion from char to string), the lexical cast succeeds as long as sourceString contains a single character. Here are the test results.

If your real code doesn't work, then please post more of it; preferably a runnable program that demonstrates the error.

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thanks for the answer. I have a vector<string> and I know that string at position index x would only be one character, so essentially I am doing the following: char someChar = lexical_cast<char>(tokens[x]); this is what is throwing the error. Sorry, should have posted that before. Thanks. –  czchlong Oct 28 '11 at 15:11
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Perhaps you should check your assumptions; add assert(tokens[x].length() == 1); before the cast to make sure that what you know is actually what is happening. –  Mike Seymour Oct 28 '11 at 15:14
    
yes Mike you are correct, my assumption was incorrect. Thanks! –  czchlong Oct 28 '11 at 15:16

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