2

I am using the following method to detect the CallerID when someone calls.

private void Form1_Load(object sender, EventArgs e)
{
    serialPort1.PortName = "COM3";
    serialPort1.RtsEnable = true;
    serialPort1.BaudRate = 9600;
    serialPort1.DataBits = 8;
    serialPort1.RtsEnable = true;
    serialPort1.Open();
    serialPort1.WriteLine("AT+VCID=1" + System.Environment.NewLine);
}

private void serialPort1_DataReceived(object sender, System.IO.Ports.SerialDataReceivedEventArgs e)
{
    textBox1.Text += serialPort1.ReadLine();
}

I excepted something like this :

RING               //On 1st Ring
DATE = xxxxx       //On 2nd Ring
TIME = xxxx
NMBR = xxxxxxxxx

RING               //On 3rd Ring    
RING               //On 4th Ring

But I have just :

OK
RING
RING
RING

NOTE:

line support CallerID

I guess modem support CallerID too because I see the word RING for each incoming ring

Confirmed: I have caller id device and I checked it; I'm sure that I have caller id service.

1
  • I believe "AT+VCID=1" + System.Environment.NewLine is the problem. You need a \r, not a \n. So try with "AT+VCID=1" + Chr(13). You may want to try with a ATZ + Chr(13) as a base case. You should get OK as a response. Also, you can query the modem for Caller Id commands with AT+VCID=?. You should get back something like (0-2) and then OK. Also see Unexpected response to ATZ when attempting to configure USB modem? on Super User.
    – jww
    Feb 23 '19 at 8:55
4

You need to setup calling line presentation on your device I believe. Just send the command:

AT+CLIP=1

You should then see that when the number is called the following will be displayed:

+CLIP 1234567890
1
  • AT+CLIP is cellular. It is probably not available in a V.92 modem.
    – jww
    Feb 23 '19 at 8:54
1

most common CALLER ID command is "AT#CID=1"

0

Found that commands

AT#CID=1
AT#CC1
AT+VCID=1
AT%CCID=1
AT*ID1

No one worked because of... linefeed (facepalm). So try them with \r\n or \n

-1

i had a similar issue . i changed to different usb modem. it worked fine.

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.