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I am trying to place 3 integers(byte size is 4) into a character string byte by byte using c. I then need to "extract" the integers out of the character array so I can do integer operations on them. I have looked around and could not find any solutions to this. I think this will require some type of pointer use or shifting, but I cannot figure out how to write it.

char str[12]="";

int a;
int b;
int c;

int x;
int y;
int z;


I know that an int is 4 bytes. I would like to make it so the str char array has the following data in it.

str = |a1|a2|a3|a4|b1|b2|b3|b4|c1|c2|c3|c4|

*I do not want it like this. str=|'5'|'7'|'12'|

I then need to "extract" the integers out of the character array.

x=str[0-3];  //extracting a
y=str[4-7];  //extracting b
z=str[8-11]; //extracting c

After this, I should be able to write x=y+z and x will be equal to 19.

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You have to convert the integer to string, using function such as sprintf(). Otherwise you cannot assign each digit to a different byte. Then do the assignment per byte just like characters in string. Latter pass address of starting index like str[0], str[4], str[8] to atoi to get the coversion done –  fayyazkl Oct 3 '13 at 7:58

4 Answers 4

up vote 1 down vote accepted

The question is not well posed so you are getting different answers which may or may not be solving your problem. In my interpretation, here's what you need:

int i1, i2, i3;
char arr[sizeof(i1)+sizeof(i2)+sizeof(i3)];

memcpy(arr, &i1, sizeof(i1));
memcpy(arr+sizeof(i1), &i2, sizeof(i2));
memcpy(arr+sizeof(i1)+sizeof(i2), &i3, sizeof(i3));

Note that I'm being deliberately explicit with using sizeof(i) instead of just "4". It is fairly safe that integers will be 32-bit in whatever environment you are using, but this is safer and strictly speaking more correct.

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One way is to treat str as an int array instead:

int* istr = reinterpret_cast<int*>(str)

Then you can use e.g.

istr[0] = a;
istr[1] = b;
istr[2] = c;


x = istr[0];
y = istr[1];
z = istr[2];
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The easiest solution is to use memcpy:

int nums[sizeof str / sizeof(int)];
std::memcpy(nums, str, sizeof nums);

// Do work on nums here...

The reinterpret_cast approach is undefined behaviour.

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Use (void *) to get a pointer to x, byte by byte

for (int i = 0; i < sizeof(int); ++i) {
  str[i] = (void *)(&x)[i];

This will copy the 4 bytes of x into str, one by one. (void )(&x) casts x as a char array (or void*, same thing), and [i] accesses the i_th byte of the array

then access elements of str the same way. Do the same with y and z, and don't forget the offset

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Would this work for y and z? for (int i = 5; i < sizeof(int)+5; ++i) { str[i] = (void *)(&y)[i]; } for (int i = 9; i < sizeof(int)+5; ++i) { str[i] = (void *)(&z)[i]; } –  iamcamcamiam2 Oct 3 '13 at 8:12
Of course, I tried to give you the idea of what was going on under the hood. just replace 5 and 9 by 4 and 8 and it will work –  Thomas Oct 3 '13 at 10:31
When I do this, it gives me errors. (strict) illegal conversion of pointer to char. (warning) conversion of pointer to char loses accuracy –  iamcamcamiam2 Oct 3 '13 at 23:46

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