I'm trying to parse an array that receives a multiple of 8 bytes and sends back each array of 8 bytes one at a time.

I'm getting an expression is not assignable or lvalue required as left operand of assignment error when building

I'm trying to figure out why I cannot simply change the address of an array to the new position. At first I thought it was a C-style array issue, but the same error happened when I tried with std::vector<unsigned char>

Is there a preferable way of doing this without copying the bytes?

Thanks,

unsigned char str_send[8];
unsigned char str_recv[BUF_SIZE];

int n = receive(cport_nr, str_recv, (int)BUF_SIZE);

if (n > 0 && ( n % 8 == 0 ) )
{
    for (int c = 0; c < n / 8; c++) //Break up multiple 8-byte chunks
    {       
        &str_send[0] = &str_recv[c * 6]; //ERROR expression is not assignable
    }
}
return (0);
  • 1
    Variables have a fixed location in memory for their entire life, you can't move one or change its address. – M.M Nov 9 at 2:18
  • 1
    I'm not sure what you're trying to do. You can't change the address of a variable. If you have a pointer (you don't) you can change what it points to. – Kevin Nov 9 at 2:19
  • 1
    Why are you doing c * 6? And what do you want to have at the end? Even if you could assign the address you would end up with only a single address in str_send. – perreal Nov 9 at 3:04
  • Question is very unclear. What does "sends back" mean? Pointing a pointer at an object does not send it anywhere. Copying it, perhaps, does so. What does "one at a time" mean? Are you wanting to do something with individual bytes, or with individual groups of 8 bytes? Where does the magic number 6 come from? You've used it twice, without explanation. – Tim Randall Nov 9 at 15:16
  • All of your questions literally have nothing to do with the topic of the question. So your downvotes are entirely opinion based. – Mich Nov 9 at 20:51
up vote 1 down vote accepted

You can't change the address of a variable.

What you could do is create an array of pointers to the original array, but then you're just copying addresses (probably 8 bytes each) instead of single byte values. Then you've have to dereference those pointers, which makes it non-trivial to send what they point to.

Copying the bytes is exactly what you want to do here. Then you have a buffer you can send as-is:

str_send[0] = str_recv[c * 6];
  • Your suggested code copies 1 byte; I suspect OP wanted to copy 6 bytes although it is not completely clear. – M.M Nov 9 at 2:30
  • This way I'm just copying 1 byte, I think that creating the pointer comment above was the right answer – Mich Nov 9 at 2:31

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