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I have this code from a slave device

byte buf[] = {125, 126, 127, 2000, 5000};

void setup() {
  // initialize serial:
  Serial.begin(9600);

}

void loop() {
  int i = Serial.write(buf, sizeof(buf));
  Serial.println(i);
  delay(5000);

}

and I have this code from a listening device.

char protocol[5];
void setup() {
  Serial.begin(9600);
  memset(protocol, '\0', sizeof(protocol)); 
}


void loop() {
  if(Serial.available()) {
  Serial.readBytes(protocol, 5);
  Serial.println(protocol);
  for(int i = 0; i < sizeof(protocol); i ++ ) {
    Serial.println((int)protocol[i], BIN); 
  }
  }
  else{
   Serial.println("None available");
   delay(500); 
  }

}

I understand that Arduino uses 2's compliment, however the problem I am getting is that the print out is this

1111101
1111110
1111111
11111111111111111111111111010000
11111111111111111111111110001000

and because of the 2's complement, all zeros are being added to finish the char because the left most bit read in as a 1. Anyways, the 4th and 5th numbers are not 2000 and 5000 but numbers much different than that. How do I get the the appended 1's to go away so I read 2000 and 5000? thanks

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1 Answer 1

The issue here is that you are storing and transmitting each number as an 8-bit value, which is not large enough to store the numbers 2000 or 5000.

To fix this, you'll want to change the types of your buffer arrays to int[]. Here's how:

In the slave, you'll need to change the line where you declare your buffer:

int buf[] = {125, 126, 127, 2000, 5000};

And now that the type is different, you'll have to add a type cast, since Serial.write expects a char or byte array.

int i = Serial.write((char *) buf, sizeof(buf));

Then, you'll have to make similar changes in the listener device. Declare your protocol array like so:

int protocol[5];

Then, Serial.readBytes also expects a byte array, so you'll need another cast (and sizeof to get the correct number of bytes to read):

Serial.readBytes((byte *) protocol, sizeof(protocol));

Edit: To explain how the (char *) cast in the slave works and why it's necessary, remember that this is C++, so (like in C) an array is pretty much a pointer internally. So, when you create the array of five ints, what's really going on is you've reserved 10 bytes of memory (enough for five 16-bit ints) and received a pointer to the start of it. Now, unless told otherwise, C++ will treat that memory like it's five ints. However, it's perfectly happy to treat it as 10 chars if you tell it to. This is pretty convenient, since Serial.write will only take an array of chars (which, as you recall, is like a char pointer, hence char *). And this will work fine, since it'll send the 10 bytes across the line as chars, where the listener will put the same 10 bytes into the protocol array. Then, with an exact copy of the 10-byte block of memory, the protocol array will have the same ints as the buf array did in the slave.

One last comment: You may want to have your listener wait until there are actually sizeof(protocol) bytes available before trying to read. Otherwise, if only part of the data is ready, it will go ahead and try to read, but Serial.readBytes usually only waits a short time for the remaining data before giving up and leaving the buffer unfilled. You would fix that by adding >= sizeof(protocol) to the appropriate line:

if(Serial.available() >= sizeof(protocol)) {
share|improve this answer
    
do you mind explaining what the (Char *) actually does? does it use the start address of the int array? –  DRAN Apr 27 '13 at 0:52
    
@DRAN Sure. I added some explanation to my answer. Hopefully it helped, but if I didn't explain well enough, just let me know. –  Dominick Apr 28 '13 at 8:01
    
@Dominick, Sir can you tell me whether I could send float values with this method? Using the Char * cast? –  kinath_ru yesterday
    
@kinath_ru There should be no problem with that. The technique would still be the same. –  Dominick 14 hours ago
    
@Dominick Thank you sir, I will give this a try. –  kinath_ru 11 hours ago

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