e-bike-tracker-device/src/modem.rs

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8.9 KiB
Rust
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use crate::command::Command;
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use std::thread;
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use std::error::Error;
use std::time::{Duration, Instant};
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use embedded_hal::serial::{Read, Write};
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use embedded_hal::digital::v2::OutputPin;
use esp_idf_hal::serial::{self, Rx, Tx};
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pub type Result<T> = std::result::Result<T, ModemError>;
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pub struct Modem<UART: serial::Uart> {
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rx: RxIter<UART>,
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tx: Tx<UART>,
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}
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#[derive(Debug)]
pub enum ModemError {
CommandError(String),
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SetupError(String),
SendDataError,
ReadError,
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TimeoutError,
}
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impl Error for ModemError {}
impl std::fmt::Display for ModemError {
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fn fmt(&self, f: &mut std::fmt::Formatter) -> std::fmt::Result {
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write!(f, "{:?}", self)
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}
}
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pub struct RxIter<UART: serial::Uart> {
inner: Rx<UART>,
timeout: Duration,
}
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impl<UART: serial::Uart> RxIter<UART> {
fn reset(&mut self, timeout: Duration) -> &mut Self {
self.timeout = timeout;
self
}
fn clear(&mut self) -> () {
println!("clearing serial rx");
self.reset(Duration::from_millis(500)).for_each(drop);
}
/// Reads a whole line (that ends with \\n) within the given `timeout` passed on input.
fn read_line(&mut self, timeout: Duration) -> Result<String> {
let mut line: String = self.reset(timeout)
.map(|b| char::from(b))
.take_while(|c| *c != '\n')
.collect();
// \r must come right before \n on read; take_while excludes the matched element.
if line.ends_with('\r') {
line.push('\n');
Ok(line)
}
else if self.timeout.as_millis() == 0 {
Err(ModemError::TimeoutError)
}
else {
Err(ModemError::ReadError)
}
}
}
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impl<UART: serial::Uart> Iterator for RxIter<UART> {
type Item = u8;
/// `nb` returns Ok(byte), or one of Err(WouldBlock) and Err(Other) which isn't of anyone's
/// interest, so the retry mechanism is triggered on _any_ error every 200ms until a byte is
/// received, or the timeout is reached.
fn next(&mut self) -> Option<Self::Item> {
let start = Instant::now();
loop {
match self.inner.read() {
Ok(b) => {
self.timeout = self.timeout.saturating_sub(start.elapsed());
break Some(b)
},
Err(_) => {
if start.elapsed() > self.timeout {
self.timeout = Duration::from_millis(0);
break None
}
thread::sleep(Duration::from_millis(200));
}
}
}
}
}
impl<UART: serial::Uart> Modem<UART> {
pub fn new(tx: Tx<UART>, rx: Rx<UART>) -> Self {
Self {
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rx: RxIter { inner: rx, timeout: Duration::from_millis(0) },
tx,
}
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}
/// Initialize the modem (sim800l in this case). The initialization process sets all pins in the
/// required state so that the modem is turned on, then resets it a couple of times (beats me) and
/// sleeps for 3 seconds, which is enough for the modem to come online.
///
/// Below is an example for sim800l pins on a LilyGo TTGO T-Call.
///
/// # Examples
///
/// ```
/// let modem_pwrkey = dp.pins.gpio4.into_output().unwrap();
/// let modem_rst = dp.pins.gpio5.into_output().unwrap();
/// let modem_power = dp.pins.gpio23.into_output().unwrap();
///
/// modem::init(modem_pwrkey, modem_rst, modem_power);
/// ```
pub fn init(&mut self, mut pwrkey: impl OutputPin, mut rst: impl OutputPin, mut power: impl OutputPin) -> Result<()> {
println!("Turning SIM800L on ...");
power.set_high().map_err(|_| ModemError::SetupError("Error setting POWER to high.".to_string()))?;
rst.set_high().map_err(|_| ModemError::SetupError("Error setting RST to high.".to_string()))?;
// Pull down PWRKEY for more than 1 second according to manual requirements
pwrkey.set_high().map_err(|_| ModemError::SetupError("Error setting PWRKEY to high.".to_string()))?;
thread::sleep(Duration::from_millis(100));
pwrkey.set_low().map_err(|_| ModemError::SetupError("Error setting PWRKEY to low.".to_string()))?;
thread::sleep(Duration::from_millis(1000));
pwrkey.set_high().map_err(|_| ModemError::SetupError("Error setting PWRKEY to high.".to_string()))?;
println!("Waiting for sim module to come online ...");
loop {
match self.send_command(Command::probe()) {
Ok(_) => break,
_ => continue,
}
}
Ok(())
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}
/// Reads the serial RX until a \\n char is encoutered, or a timeout is reached. The timeout is
/// provided on input via the `timeout` argument. The first argument `contains` is checked
/// against a line in the response, if it's there the reading stops.
///
/// If `contains` is `None`, the first line only is returned in the response. If it's
/// `Some(match_txt)`, then the end of the response is matched against `match_txt`.
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fn read_response(&mut self, contains: Option<String>, timeout: Duration) -> Result<String> {
let mut response = String::new();
let start = Instant::now();
let match_text: String = contains.unwrap_or("\n".to_string());
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loop {
let timeout = timeout - start.elapsed();
let line = self.rx.read_line(timeout)?;
print!("Read {} bytes from serial: {}", line.len(), line);
response.push_str(&line);
if line.contains("ERROR") || line.contains(&match_text) {
println!("Found match {} for line {} ; exiting response reader now ...", match_text, line);
println!("-----------------------------------------------------------");
break Ok(response.to_string())
}
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}
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}
fn send(&mut self, b: u8) -> Result<()> {
nb::block!(self.tx.write(b))
.map_err(|_| ModemError::CommandError(format!("error writing {} to serial", b)))?;
Ok(())
}
fn send_bytes(&mut self, payload: &[u8], eos: char) -> Result<()> {
for b in payload.iter() {
self.send(*b)?;
}
self.send(eos as u8)?;
Ok(())
}
fn send_command(&mut self, cmd: Command) -> Result<String> {
println!("-----------------------------------------------------------");
println!("Sending {} ...", cmd.text);
let _ = self.send_bytes(cmd.text.as_bytes(), '\r')?;
self.read_response(cmd.contains, cmd.timeout)
}
fn send_data(&mut self, payload: &str) -> Result<String> {
self.rx.clear();
let _ = self.send_bytes("AT+CIPSEND".as_bytes(), '\r')?;
let send_request: String = self.rx.reset(Duration::from_millis(3000))
.map(char::from)
.take_while(|c| *c != '>').collect();
if send_request == "" {
return Err(ModemError::SendDataError);
}
self.send_bytes(payload.as_bytes(), 26 as char)?; // 26_u8 = Ctrl+z - to end sending data
let _ = self.read_response(Some("DATA ACCEPT".to_string()), Duration::from_millis(3000));
self.rx.clear();
let res = self.send_command(Command {
text: "AT+CIPACK".to_string(),
contains: Some("OK".to_string()),
timeout: Duration::from_millis(3000),
})?;
Ok(res)
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}
pub fn get_ip_addr(&mut self) -> Result<String> {
self.send_command(Command::getbear())
}
pub fn connect_to_gprs_ap(&mut self, apn: &str, username: &str, password: &str)-> Result<()> {
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println!("init gprs ...");
let _ = self.send_command(Command::gprs_init())?;
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println!("setting up gprs credentials for apn {}, {}:{})", apn, username, password);
let _ = self.send_command(Command::gprs_set_apn(apn))?;
let _ = self.send_command(Command::gprs_set_user(username))?;
let _ = self.send_command(Command::gprs_set_pwd(password))?;
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println!("open gprs ...");
let _ = self.send_command(Command::gprs_open())?;
Ok(())
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}
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pub fn is_gprs_attached(&mut self)-> Result<bool> {
let res = self.send_command(Command::is_gprs_attached())?;
Ok(res.contains("+CGATT: 1"))
}
pub fn tcp_is_ssl_enabled(&mut self) -> Result<bool> {
let res = self.send_command(Command::tcp_ssl_check())?;
Ok(res.contains("+CIPSSL: (1)"))
}
pub fn tcp_ssl_disable(&mut self) -> Result<()> {
let _ = self.send_command(Command::tcp_ssl_disable())?;
Ok(())
}
pub fn tcp_connect(&mut self, addr: &str, port: u16) -> Result<()> {
self.send_command(Command::tcp_connect(addr, port))?;
Ok(())
}
pub fn tcp_set_quick_mode(&mut self, mode: bool) -> Result<()> {
self.send_command(Command::tcp_set_quick_mode(mode))?;
Ok(())
}
pub fn tcp_send(&mut self, payload: &str) -> Result<()> {
self.send_data(payload)?;
Ok(())
}
}