6e18215af5
Same override pattern as connect(): required, no default body, five completely different bodies. - BambuGenericPrinter::set_fan_speed_impl() is shared by BambuV1Printer and BambuV2Printer (composition reuse, same as connect_impl) - both speak the same MQTT gcode-injection mechanism. - PrusaLinkPrinter and PrusaSerialPrinter both send the same M106 gcode but over different transports (HTTP command injection vs. raw serial bytes) - they share the percent->PWM conversion despite having unrelated connect() implementations. - KlipperPrinter uses a hypothetical Moonraker-native endpoint that takes a percentage directly - no PWM conversion at all, since that math only applies to the gcode-speaking vendors. percent_to_pwm() lives in mod.rs as a private free function rather than a trait default: it's genuine shared logic, but only for the subset of vendors that need it, which is exactly the case a trait default can't express cleanly. Visible to bambu.rs/prusa.rs via super:: because Rust's module privacy reaches into child modules. Verified with cargo check --all-targets and a full run of printer_polymorphism: 50% converges on the same PWM value (127) across all three gcode-based printers, Klipper's native path takes 0.50 directly.
75 lines
3.1 KiB
Rust
75 lines
3.1 KiB
Rust
//! Run with: cargo run --example printer_polymorphism
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//!
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//! Demonstrates the trait+enum pattern that stands in for inheritance:
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//! - `connect()` is called the same way regardless of vendor (polymorphism),
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//! but each variant's `impl GenericPrinter` runs completely different
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//! code (override).
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//! - `dispatch_gcode()` only exists on the two Bambu structs (extension) —
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//! you have to `match` the enum back down to the concrete type to reach
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//! it, which is the trade-off for not having implicit downcasting.
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use continuum_proxy::printer::{
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BambuTls, BambuV1Printer, BambuV2Printer, GenericPrinter, KlipperPrinter, PrinterHandle, PrusaLinkPrinter,
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PrusaSerialPrinter,
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};
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#[tokio::main]
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async fn main() {
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let mut fleet: Vec<PrinterHandle> = vec![
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PrinterHandle::BambuV1(BambuV1Printer::new(
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"p1",
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"P1S",
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"192.168.1.49",
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"87654321",
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"01P00A000000000",
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BambuTls::BundledCa,
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)),
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PrinterHandle::BambuV2(BambuV2Printer::new(
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"p2",
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"X1 Carbon",
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"192.168.1.50",
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"12345678",
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"00M00A000000000",
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BambuTls::BundledCa,
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)),
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PrinterHandle::PrusaLink(PrusaLinkPrinter::new("p3", "MK4", "192.168.1.51", "prusa-api-key")),
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PrinterHandle::PrusaSerial(PrusaSerialPrinter::new("p4", "MK3S+", 0)),
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PrinterHandle::Klipper(KlipperPrinter::new("p5", "Voron 2.4", "192.168.1.52")),
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// No host configured — this one will hit the Err path.
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PrinterHandle::Klipper(KlipperPrinter::new("p6", "Broken Voron", "")),
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];
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// Uniform call site: every printer connects the same way from the
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// caller's point of view, even though each variant's `connect()` body
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// is an unrelated implementation.
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for printer in &mut fleet {
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match printer.connect().await {
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Ok(()) => println!(" -> connected: {}\n", printer.display_name()),
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Err(err) => println!(" -> failed: {err}\n"),
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}
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}
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// Vendor-only extension: reachable only after matching the concrete
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// variant back out of the enum. BambuV1Printer and BambuV2Printer are
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// separate types now (each *has* a BambuGenericPrinter rather than
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// being the same struct), so — unlike before the split — this needs
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// two arms instead of one `A(x) | B(x)` pattern: an or-pattern requires
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// every alternative to bind the same type, and these no longer do.
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for printer in &fleet {
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match printer {
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PrinterHandle::BambuV1(bambu) => bambu.dispatch_gcode("part.gcode.3mf"),
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PrinterHandle::BambuV2(bambu) => bambu.dispatch_gcode("part.gcode.3mf"),
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_ => {}
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}
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}
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// A second trait method, same uniform call site as connect(): every
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// vendor sends "50%" a completely different way — an MQTT gcode
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// command, Moonraker's native API, gcode over HTTP, gcode over serial
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// — but the caller doesn't need to know or care which.
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println!();
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for printer in &mut fleet {
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let _ = printer.set_fan_speed(50).await;
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}
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}
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