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* feat(kprobe): Add basic kprobe support for x86_64 * feat: add ebpf support (#912) - 实现bpf()一部分命令,包括几种基本map,相关的helper函数 - 实现部分perf相关的数据结构 - 暂时为文件实现简单mmap - 实现一个使用kprobe统计syscall 调用次数的ebpf程序 对eBPF支持程度(基本): - 简单的eBPF程序(没有指定特殊的Map) - 使用内核已经实现的Map的eBPF程序 - 可以和kprobe配合使用 - 内核Map相关的接口定义已经实现,添加新的Map较为简单 不支持的功能: - 区分不同的eBPF程序类型(Network/Cgroup)并限定可调用的helper函数集 - 与内核其它跟踪机制配合(tracepoint) - 其它helper和Map todo - [ ] 修改mmap,需要讨论,因为这个和块缓存层相关 - [x] 添加文档 - [x] 修复可能的错误 - [x] 增加rbpf版本信息 * feat: add /sys/devices/system/cpu/possible file * feat: add /sys/devices/system/cpu/online
127 lines
3.8 KiB
Rust
127 lines
3.8 KiB
Rust
// Copyright Microsoft Corporation
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// SPDX-License-Identifier: (Apache-2.0 OR MIT)
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// Path: examples/rbpf_plugin.rs
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use std::io::Read;
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// Helper function used by https://github.com/Alan-Jowett/bpf_conformance/blob/main/tests/call_unwind_fail.data
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fn _unwind(a: u64, _b: u64, _c: u64, _d: u64, _e: u64) -> u64 {
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a
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}
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// This is a plugin for the bpf_conformance test suite (https://github.com/Alan-Jowett/bpf_conformance)
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// It accepts a single argument, the memory contents to pass to the VM.
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// It reads the program from stdin.
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fn main() {
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let mut args: Vec<String> = std::env::args().collect();
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#[allow(unused_mut)] // In no_std the jit variable isn't mutated.
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let mut jit: bool = false;
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let mut cranelift: bool = false;
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let mut program_text = String::new();
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let mut memory_text = String::new();
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args.remove(0);
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// Memory is always the first argument.
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if !args.is_empty() {
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memory_text.clone_from(&args[0]);
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// Strip whitespace
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memory_text.retain(|c| !c.is_whitespace());
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args.remove(0);
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}
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// Process the rest of the arguments.
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while !args.is_empty() {
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match args[0].as_str() {
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"--help" => {
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println!("Usage: rbpf_plugin [memory] < program");
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return;
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}
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"--jit" => {
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#[cfg(any(windows, not(feature = "std")))]
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{
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println!("JIT not supported");
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return;
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}
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#[cfg(all(not(windows), feature = "std"))]
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{
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jit = true;
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}
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}
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"--cranelift" => {
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cranelift = true;
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#[cfg(not(feature = "cranelift"))]
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{
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let _ = cranelift;
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println!("Cranelift is not enabled");
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return;
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}
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}
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"--program" => {
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if args.len() < 2 {
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println!("Missing argument to --program");
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return;
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}
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args.remove(0);
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if !args.is_empty() {
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program_text.clone_from(&args[0]);
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args.remove(0);
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}
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}
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_ => panic!("Unknown argument {}", args[0]),
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}
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args.remove(0);
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}
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if program_text.is_empty() {
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// Read program text from stdin
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std::io::stdin().read_to_string(&mut program_text).unwrap();
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}
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// Strip whitespace
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program_text.retain(|c| !c.is_whitespace());
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// Convert program from hex to bytecode
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let bytecode = hex::decode(program_text).unwrap();
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// Convert memory from hex to bytes
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let mut memory: Vec<u8> = hex::decode(memory_text).unwrap();
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// Create rbpf vm
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let mut vm = rbpf::EbpfVmRaw::new(Some(&bytecode)).unwrap();
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// Register the helper function used by call_unwind_fail.data test.
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vm.register_helper(5, _unwind).unwrap();
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let result: u64;
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if jit {
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#[cfg(any(windows, not(feature = "std")))]
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{
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println!("JIT not supported");
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return;
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}
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#[cfg(all(not(windows), feature = "std"))]
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{
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unsafe {
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vm.jit_compile().unwrap();
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result = vm.execute_program_jit(&mut memory).unwrap();
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}
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}
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} else if cranelift {
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#[cfg(not(feature = "cranelift"))]
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{
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println!("Cranelift is not enabled");
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return;
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}
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#[cfg(feature = "cranelift")]
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{
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vm.cranelift_compile().unwrap();
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result = vm.execute_program_cranelift(&mut memory).unwrap();
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}
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} else {
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result = vm.execute_program(&mut memory).unwrap();
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}
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println!("{result:x}");
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}
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