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I am basically trying to get a user to input a hexadecimal input via getline into a string as i will do other operations on this. (using c++ .net stuff won't work)

i do not want to break this into chars per say and then go through each char in the string and see if its in range from [0-9] or [Aa-Ff].

Instead, I wanted to know if there was a cool function that anyone knew of or a better way to do it. I am aware of the strtoul function but it returns a long. this will force me to then i guess pass it to a stream to make it back into a string again.

another thing with the long i am not sure of if i have to worry about 64 bit long vs 32 bit long. I am developing this on a linx box using an intel processor but it could be used on a unix box whose processor could be 64 bit i am not sure.

so i guess there are two questions here really. any help would be most welcome

could I get an answer on: can you also comment on my second question about the long? even though i don't have to worry about that now...if i save a variable in a long using a 32 bit system....would that change ( i imagine so the size of long should change on a 64 bit processor) what would this mean for the info saved in the variable? and second in order to avoid the whole little/big endian thing i saved it in a long thinking since its a register of sorts it would not be an issue with porting. was i wrong to think that?

thanks

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"Better" in what way? –  Drew Dormann Jan 11 '10 at 19:58
    
Do you want to/are you willing to use a regular expressions library, for instance from Boost or TR1? –  John Dibling Jan 11 '10 at 20:54
    
I don't understand the "force [you] ... to pass it to a stream to make it back into a string again" part. If you want to persist the original string, then just don't discard it. And if you're concerned about 64-bit values, then you could use strtoull. –  jamesdlin Jan 11 '10 at 20:56
    
atm i am not using strtoul instead just take my byte array that has hexadecimal values and store it in a unsigned long array of the same size. this seems to do the trick. since i was copying into a unsigned long register I was thinking that it would shield me from little/big endian issues however the byte sizes of unsigned long on 32bit vs 64bit is another matter. i don't have much exp in this stuff so that is why i asked the question. am i way off in what i am doing? –  djones2010 Jan 11 '10 at 21:12

3 Answers 3

up vote 2 down vote accepted

Checking each char is the only way it can be done, period.

However, you may be interested in isxdigit(int character) which returns 0 if the character passed isn't a valid hexadecimal character (note that x is not included as a valid character).

You can test if it's a hex string in a single line using algorithms, though it's a bit ugly. If you're using Boost, you can pretty it up a lot by using boost::bind.

The headers required by this snippet are <locale>, <functional>, and <algorithm>.

bool is_hex_string(std::string& str) {
  return std::count_if(str.begin(), str.end(), 
    std::not1(std::ptr_fun((int(*)(int))std::isxdigit))) > 0;
}
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i liked the isxdigit function. I did a quick function thingy bool inpChk (string inputString) { for (int i=0;i<inputString.size();i++) if(!isxdigit(inputString[i]) { std::cout<<"erro"<<std::endl; return false } else return true; } it seems to work fine. one question can you tell me what this casting you are using? int(*)(int) thanks –  djones2010 Jan 11 '10 at 20:54
    
There's almost never just one way to do something in C++. –  John Dibling Jan 11 '10 at 20:55
    
int(*)(int) means a pointer to a function which takes an int and returns an int. –  KennyTM Jan 11 '10 at 20:56
    
isxdigit is a template function, so it needs to be told exactly which template to use. int(*)(int) is the type of a function that takes an int as it's only parameter and returns an int, i.e. int func(int) –  Collin Dauphinee Jan 11 '10 at 20:57
    
sweet thanks. could i also get a comment on my second question thanks –  djones2010 Jan 11 '10 at 21:00

if (sscanf(string, "%x", &val) != 1) // handle your error here

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int val;
scanf("%x", &val);

? (Won't check if the whole line is valid.)

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This doesn't come close to doing what he asked. It fails if the input is 0. If you give it a partial hexadecimal string, it will return the valid part, but not alert him that the rest is invalid. –  Collin Dauphinee Jan 11 '10 at 20:42
    
-1. This is a code fragment that doesn't even answer the question (what do you do after calling scanf? There's no check that it matched anything), and scanf is simply bad (people should prefer using sscanf, although that would be a poor solution too for the reasons dauphic mentioned). –  jamesdlin Jan 11 '10 at 21:01
    
I understand this doesn't completely solve the problem, but the criticism is getting ridiculous. (1) It doesn't fail if the input is 0. 0 is a valid hex number. (2) Prefer using sscanf over scanf? sscanf parses from a char*, scanf parses from stdin, how can you compare the two? –  KennyTM Jan 12 '10 at 5:42
    
(1) I think dauphic meant it fails if there's no input, not if someone literally entered the string "0". (2) Never use scanf. c-faq.com/stdio/scanfprobs.html –  jamesdlin Jan 12 '10 at 18:48

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