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In C++:

If I want to add 0x01 to the string text I would do: text += (char)0x01;

If I want to add 0x02 to the string text I would do: text += (char)0x02;

If I want to add 0x0i (were i is an unsinged int between 0 and 9), what could I do?

EDIT: I probably wasn't quite clear. So by 0x01, I mean the character given in Hex as 01. So in the above if i is the integer (in decimal) say 3, then I would want to add 0x03 (so this is not the character given in decimal as 48 + 3).

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3  
text += (char)i. –  Lalaland Jun 10 '12 at 0:22
    
What is the type of text? What are you trying to accomplish? –  dirkgently Jun 10 '12 at 0:33
    
@dirkgently: text is a string. So I want to add too the string (i.e. make it longer by one character) the character given in hex by 0i. –  Thomas Jun 10 '12 at 0:36
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3 Answers 3

up vote 4 down vote accepted

You can directly do

text += (char)i;

Because 0x0i == i if i is between 0 and 9.

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Ahh.... I get your answer now. I was being silly..... –  Thomas Jun 10 '12 at 0:40
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One other possibility -- you could use push_back instead. Since it takes the string's char_type as its parameter type, you don't need an explicit cast:

text.push_back(i);

In fairness, I should add that you don't really need an explicit cast with += either. Simply text += i; will work fine. For example:

std::string text; 
for (int i=0; i<9; i++)
     text += i;

With either text += i; or text.push_back(i);, this will produce a string that contains: "\x00\x01\x02\x03".

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Thanks for the answer! I will look into this. –  Thomas Jun 10 '12 at 0:48
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You should generate its ASCII value. '0' is 48 and '9' is 9 + 48

text += (char)( i + 48 ) ;

if i was a multi digit number you could parse it to its digits and use the same technique to generate its equal string.

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1  
He doesn't want 'i', he wants i, so there's no need to add to 48. That's why his samples are text += (char)0x01, and not text += (char)0x01+48 –  Luchian Grigore Jun 10 '12 at 0:30
    
If you are right, so what's the point of this question ? I think his first 2 lines are not correct. He wanted to concatenate characters but his hexadecimal numbers says you are right. –  Kamran Amini Jun 10 '12 at 0:33
    
@LuchianGrigore: Exactly.... I think –  Thomas Jun 10 '12 at 0:38
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