forked from auracaster/bumble_mirror
This contains Rust wrappers around enough of the Python API to implement Rust versions of the `battery_client` and `run_scanner` examples. The goal is to gather feedback on the approach, and of course to show that it is possible. The module structure mirrors that of the Python. The Rust API is not optimally Rust-y, but given the constraints of everything having to delegate to Python, it's at least usable. Notably, this does not yet solve the packaging problem: users must have an appropriate virtualenv, libpython, etc. [PyOxidizer](https://github.com/indygreg/PyOxidizer) may be a viable path there.
343 lines
11 KiB
Rust
343 lines
11 KiB
Rust
// Copyright 2023 Google LLC
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//
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// Licensed under the Apache License, Version 2.0 (the "License");
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// you may not use this file except in compliance with the License.
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// You may obtain a copy of the License at
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//
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// http://www.apache.org/licenses/LICENSE-2.0
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//
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// Unless required by applicable law or agreed to in writing, software
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// distributed under the License is distributed on an "AS IS" BASIS,
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// WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
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// See the License for the specific language governing permissions and
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// limitations under the License.
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//! Rust version of the Python `usb_probe.py`.
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//!
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//! This tool lists all the USB devices, with details about each device.
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//! For each device, the different possible Bumble transport strings that can
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//! refer to it are listed. If the device is known to be a Bluetooth HCI device,
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//! its identifier is printed in reverse colors, and the transport names in cyan color.
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//! For other devices, regardless of their type, the transport names are printed
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//! in red. Whether that device is actually a Bluetooth device or not depends on
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//! whether it is a Bluetooth device that uses a non-standard Class, or some other
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//! type of device (there's no way to tell).
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use clap::Parser as _;
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use itertools::Itertools as _;
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use owo_colors::{OwoColorize, Style};
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use rusb::{Device, DeviceDescriptor, Direction, TransferType, UsbContext};
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use std::{
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collections::{HashMap, HashSet},
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time::Duration,
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};
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const USB_DEVICE_CLASS_DEVICE: u8 = 0x00;
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const USB_DEVICE_CLASS_WIRELESS_CONTROLLER: u8 = 0xE0;
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const USB_DEVICE_SUBCLASS_RF_CONTROLLER: u8 = 0x01;
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const USB_DEVICE_PROTOCOL_BLUETOOTH_PRIMARY_CONTROLLER: u8 = 0x01;
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fn main() -> anyhow::Result<()> {
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let cli = Cli::parse();
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let mut bt_dev_count = 0;
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let mut device_serials_by_id: HashMap<(u16, u16), HashSet<String>> = HashMap::new();
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for device in rusb::devices()?.iter() {
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let device_desc = device.device_descriptor().unwrap();
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let class_info = ClassInfo::from(&device_desc);
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let handle = device.open()?;
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let timeout = Duration::from_secs(1);
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// some devices don't have languages
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let lang = handle
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.read_languages(timeout)
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.ok()
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.and_then(|langs| langs.into_iter().next());
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let serial = lang.and_then(|l| {
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handle
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.read_serial_number_string(l, &device_desc, timeout)
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.ok()
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});
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let mfg = lang.and_then(|l| {
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handle
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.read_manufacturer_string(l, &device_desc, timeout)
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.ok()
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});
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let product = lang.and_then(|l| handle.read_product_string(l, &device_desc, timeout).ok());
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let is_hci = is_bluetooth_hci(&device, &device_desc)?;
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let addr_style = if is_hci {
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bt_dev_count += 1;
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Style::new().black().on_yellow()
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} else {
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Style::new().yellow().on_black()
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};
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let mut transport_names = Vec::new();
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let basic_transport_name = format!(
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"usb:{:04X}:{:04X}",
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device_desc.vendor_id(),
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device_desc.product_id()
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);
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if is_hci {
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transport_names.push(format!("usb:{}", bt_dev_count - 1));
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}
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let device_id = (device_desc.vendor_id(), device_desc.product_id());
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if !device_serials_by_id.contains_key(&device_id) {
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transport_names.push(basic_transport_name.clone());
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} else {
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transport_names.push(format!(
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"{}/{}",
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basic_transport_name,
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device_serials_by_id
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.get(&device_id)
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.map(|serials| serials.len())
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.unwrap_or(0)
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))
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}
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if let Some(s) = &serial {
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if !device_serials_by_id
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.get(&device_id)
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.map(|serials| serials.contains(s))
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.unwrap_or(false)
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{
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transport_names.push(format!("{}/{}", basic_transport_name, s))
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}
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}
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println!(
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"{}",
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format!(
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"ID {:04X}:{:04X}",
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device_desc.vendor_id(),
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device_desc.product_id()
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)
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.style(addr_style)
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);
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if !transport_names.is_empty() {
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let style = if is_hci {
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Style::new().cyan()
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} else {
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Style::new().red()
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};
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println!(
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"{:26 }{}",
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" Bumble Transport Names:".blue(),
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transport_names.iter().map(|n| n.style(style)).join(" or ")
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)
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}
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println!(
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"{:26 }{:03}/{:03}",
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" Bus/Device:".green(),
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device.bus_number(),
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device.address()
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);
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println!(
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"{:26 }{}",
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" Class:".green(),
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class_info.formatted_class_name()
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);
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println!(
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"{:26 }{}",
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" Subclass/Protocol:".green(),
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class_info.formatted_subclass_protocol()
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);
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if let Some(s) = serial {
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println!("{:26 }{}", " Serial:".green(), s);
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device_serials_by_id
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.entry(device_id)
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.or_insert(HashSet::new())
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.insert(s);
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}
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if let Some(m) = mfg {
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println!("{:26 }{}", " Manufacturer:".green(), m);
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}
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if let Some(p) = product {
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println!("{:26 }{}", " Product:".green(), p);
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}
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if cli.verbose {
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print_device_details(&device, &device_desc)?;
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}
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println!();
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}
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Ok(())
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}
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fn is_bluetooth_hci<T: UsbContext>(
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device: &Device<T>,
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device_desc: &DeviceDescriptor,
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) -> rusb::Result<bool> {
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if device_desc.class_code() == USB_DEVICE_CLASS_WIRELESS_CONTROLLER
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&& device_desc.sub_class_code() == USB_DEVICE_SUBCLASS_RF_CONTROLLER
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&& device_desc.protocol_code() == USB_DEVICE_PROTOCOL_BLUETOOTH_PRIMARY_CONTROLLER
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{
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Ok(true)
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} else if device_desc.class_code() == USB_DEVICE_CLASS_DEVICE {
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for i in 0..device_desc.num_configurations() {
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for interface in device.config_descriptor(i)?.interfaces() {
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for d in interface.descriptors() {
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if d.class_code() == USB_DEVICE_CLASS_WIRELESS_CONTROLLER
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&& d.sub_class_code() == USB_DEVICE_SUBCLASS_RF_CONTROLLER
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&& d.protocol_code() == USB_DEVICE_PROTOCOL_BLUETOOTH_PRIMARY_CONTROLLER
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{
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return Ok(true);
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}
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}
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}
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}
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Ok(false)
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} else {
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Ok(false)
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}
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}
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fn print_device_details<T: UsbContext>(
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device: &Device<T>,
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device_desc: &DeviceDescriptor,
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) -> anyhow::Result<()> {
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for i in 0..device_desc.num_configurations() {
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println!(" Configuration {}", i + 1);
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for interface in device.config_descriptor(i)?.interfaces() {
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let descriptors: Vec<_> = interface.descriptors().collect();
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for d in &descriptors {
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let class_info =
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ClassInfo::new(d.class_code(), d.sub_class_code(), d.protocol_code());
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println!(
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" Interface: {}{} ({}, {})",
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interface.number(),
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if descriptors.len() > 1 {
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format!("/{}", d.setting_number())
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} else {
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String::new()
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},
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class_info.formatted_class_name(),
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class_info.formatted_subclass_protocol()
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);
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for e in d.endpoint_descriptors() {
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println!(
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" Endpoint {:#04X}: {} {}",
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e.address(),
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match e.transfer_type() {
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TransferType::Control => "CONTROL",
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TransferType::Isochronous => "ISOCHRONOUS",
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TransferType::Bulk => "BULK",
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TransferType::Interrupt => "INTERRUPT",
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},
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match e.direction() {
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Direction::In => "IN",
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Direction::Out => "OUT",
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}
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)
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}
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}
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}
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}
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Ok(())
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}
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struct ClassInfo {
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class: u8,
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sub_class: u8,
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protocol: u8,
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}
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impl ClassInfo {
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fn new(class: u8, sub_class: u8, protocol: u8) -> Self {
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Self {
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class,
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sub_class,
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protocol,
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}
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}
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fn class_name(&self) -> Option<&str> {
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match self.class {
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0x00 => Some("Device"),
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0x01 => Some("Audio"),
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0x02 => Some("Communications and CDC Control"),
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0x03 => Some("Human Interface Device"),
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0x05 => Some("Physical"),
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0x06 => Some("Still Imaging"),
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0x07 => Some("Printer"),
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0x08 => Some("Mass Storage"),
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0x09 => Some("Hub"),
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0x0A => Some("CDC Data"),
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0x0B => Some("Smart Card"),
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0x0D => Some("Content Security"),
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0x0E => Some("Video"),
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0x0F => Some("Personal Healthcare"),
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0x10 => Some("Audio/Video"),
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0x11 => Some("Billboard"),
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0x12 => Some("USB Type-C Bridge"),
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0x3C => Some("I3C"),
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0xDC => Some("Diagnostic"),
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USB_DEVICE_CLASS_WIRELESS_CONTROLLER => Some("Wireless Controller"),
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0xEF => Some("Miscellaneous"),
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0xFE => Some("Application Specific"),
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0xFF => Some("Vendor Specific"),
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_ => None,
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}
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}
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fn protocol_name(&self) -> Option<&str> {
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match self.class {
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USB_DEVICE_CLASS_WIRELESS_CONTROLLER => match self.sub_class {
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0x01 => match self.protocol {
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0x01 => Some("Bluetooth"),
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0x02 => Some("UWB"),
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0x03 => Some("Remote NDIS"),
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0x04 => Some("Bluetooth AMP"),
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_ => None,
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},
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_ => None,
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},
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_ => None,
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}
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}
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fn formatted_class_name(&self) -> String {
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self.class_name()
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.map(|s| s.to_string())
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.unwrap_or_else(|| format!("{:#04X}", self.class))
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}
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fn formatted_subclass_protocol(&self) -> String {
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format!(
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"{}/{}{}",
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self.sub_class,
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self.protocol,
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self.protocol_name()
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.map(|s| format!(" [{}]", s))
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.unwrap_or_else(String::new)
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)
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}
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}
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impl From<&DeviceDescriptor> for ClassInfo {
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fn from(value: &DeviceDescriptor) -> Self {
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Self::new(
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value.class_code(),
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value.sub_class_code(),
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value.protocol_code(),
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)
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}
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}
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#[derive(clap::Parser)]
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#[command(author, version, about, long_about = None)]
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struct Cli {
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/// Show additional info for each USB device
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#[arg(long, default_value_t = false)]
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verbose: bool,
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}
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