0

I have a weight scale

Which is connected to the serial port, and I'm trying to know the weight is currently reading. This is the code I'm using in Python.

import serial

s = serial.Serial(port="COM3")
s.read(10)

It makes the connection but it just keeps loading and doesn't give any output.

I also Tried:

ser = serial.Serial()
ser.baudrate = 9600
ser.port = 'COM3'
print(ser)

and this is the output:

Serial<id=0x192eaed4c40, open=True>(port='COM3', baudrate=9600, bytesize=8, parity='N', 
stopbits=1, timeout=None, xonxoff=False, rtscts=False, dsrdtr=False)

Thank you.

  • 1
    "It makes the connection but it just keeps loading..." -- What is your definition of "loading"? Have you studied the interface document for the device? Have you verified the protocol selection (there's five (5) choices)? Seems like you're trying to wing it without RTM. – sawdust Jun 30 at 22:57
  • Thank you. I didn't set a timeout that's why it never replied back. Now it does but it returns b' ' @sawdust – Efra Jul 1 at 23:07
0
1

If the device you are connected to, doesn't write 10 bytes, your read call will block until it has gotten all those 10 bytes.

Typically, you as a reader have to say to the device that "hey, im here, could you give me data", and only then they will return you something. Also, you can check ser.in_waiting property to see if there is any data that can be read (and how much of data there is)

| improve this answer | |
  • Thank you. How do I tell that to the device?. I tried "ser.inWaiting() print(ser.read(0))". And I'm getting b' ' as an output – Efra Jun 30 at 15:04
  • document @sawdust provides some pointers. It also has phone number/email where you can option a protocol description.. – rasjani Jul 1 at 10:27
0
0
import serial


ser = serial.Serial(
    port = "COM2",
    timeout = 1,
    baudrate=9600,
    parity=serial.PARITY_EVEN,
    stopbits=serial.STOPBITS_ONE,
    bytesize=serial.SEVENBITS,




)

ser.write(str.encode("W"))


weight = ser.read(8)
print(weight.decode('ascii'), weight)
| improve this answer | |

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.