use crate::model::{Harness, HostStats, ProcKind, ProcNode};
use std::collections::HashMap;
use std::path::PathBuf;
use std::time::{SystemTime, UNIX_EPOCH};
use sysinfo::{ProcessesToUpdate, System};
#[derive(Debug, Clone)]
pub struct RawProc {
pub pid: u32,
pub ppid: Option<u32>,
pub name: String,
pub exe: Option<PathBuf>,
pub cmd: Vec<String>,
pub cwd: Option<PathBuf>,
pub cpu_percent: f32,
pub rss_bytes: u64,
pub start_time: u64,
pub run_time: u64,
}
impl RawProc {
pub fn cmdline(&self) -> String {
if self.cmd.is_empty() { self.name.clone() } else { self.cmd.join(" ") }
}
fn program(&self) -> String {
let from_cmd = self.cmd.first().map(|c| basename(c));
let from_exe = self.exe.as_ref().and_then(|e| e.file_name()).map(|f| f.to_string_lossy().into_owned());
from_cmd.or(from_exe).unwrap_or_else(|| self.name.clone())
}
}
fn basename(s: &str) -> String {
s.rsplit('/').next().unwrap_or(s).to_string()
}
pub struct ProcessScanner {
sys: System,
self_pid: Option<u32>,
}
impl Default for ProcessScanner {
fn default() -> Self {
Self::new()
}
}
impl ProcessScanner {
pub fn new() -> Self {
let mut sys = System::new();
sys.refresh_memory();
sys.refresh_cpu_usage();
sys.refresh_processes(ProcessesToUpdate::All, true);
let self_pid = sysinfo::get_current_pid().ok().map(|p| p.as_u32());
ProcessScanner { sys, self_pid }
}
pub fn refresh(&mut self) {
self.sys.refresh_memory();
self.sys.refresh_cpu_usage();
self.sys.refresh_processes(ProcessesToUpdate::All, true);
}
pub fn host(&self) -> HostStats {
HostStats {
hostname: System::host_name(),
cpu_percent: self.sys.global_cpu_usage(),
cpu_count: self.sys.cpus().len(),
mem_used_bytes: self.sys.used_memory(),
mem_total_bytes: self.sys.total_memory(),
}
}
pub fn processes(&self) -> Vec<RawProc> {
self.sys
.processes()
.iter()
.filter(|(pid, _)| Some(pid.as_u32()) != self.self_pid)
.map(|(pid, p)| RawProc {
pid: pid.as_u32(),
ppid: p.parent().map(|x| x.as_u32()),
name: p.name().to_string_lossy().into_owned(),
exe: p.exe().map(|e| e.to_path_buf()),
cmd: p.cmd().iter().map(|c| c.to_string_lossy().into_owned()).collect(),
cwd: p.cwd().map(|c| c.to_path_buf()),
cpu_percent: p.cpu_usage(),
rss_bytes: p.memory(),
start_time: p.start_time(),
run_time: p.run_time(),
})
.collect()
}
}
pub fn classify_agent(p: &RawProc) -> Option<Harness> {
let prog = p.program();
let prog = prog.strip_suffix(".exe").unwrap_or(&prog).to_ascii_lowercase();
let joined = p.cmd.join(" ");
let script = p.cmd.get(1).map(|s| s.to_ascii_lowercase()).unwrap_or_default();
if prog == "claude" || script.contains("@anthropic-ai/claude-code") || script.ends_with("/claude") {
return Some(Harness::Claude);
}
if prog == "codex" || script.contains("@openai/codex") {
return Some(Harness::Codex);
}
if prog == "gemini" || script.contains("@google/gemini-cli") {
return Some(Harness::Gemini);
}
if prog == "opencode" {
return Some(Harness::OpenCode);
}
if prog == "aider" || joined.contains("aider/main.py") {
return Some(Harness::Aider);
}
if prog == "copilot" || script.contains("@github/copilot") {
return Some(Harness::Copilot);
}
if prog == "cursor-agent" {
return Some(Harness::Cursor);
}
None
}
pub fn classify_child(p: &RawProc) -> ProcKind {
let prog = p.program().to_ascii_lowercase();
let joined = p.cmdline().to_ascii_lowercase();
if matches!(prog.as_str(), "zsh" | "bash" | "sh" | "fish" | "dash" | "pwsh" | "cmd") {
return ProcKind::Shell;
}
if looks_like_mcp(&prog, &joined) {
return ProcKind::Mcp;
}
ProcKind::Tool
}
pub fn looks_like_mcp(prog: &str, joined: &str) -> bool {
prog.contains("mcp")
|| joined.contains("modelcontextprotocol")
|| joined.contains("mcp-server")
|| joined.contains("mcp_server")
|| joined.contains("-mcp ")
|| joined.ends_with("-mcp")
|| joined.contains("mcp-")
|| joined.contains("/mcp/")
|| joined.contains(" mcp ")
}
fn now_secs() -> u64 {
SystemTime::now().duration_since(UNIX_EPOCH).map(|d| d.as_secs()).unwrap_or(0)
}
pub fn build_forest(procs: &[RawProc]) -> (Vec<ProcNode>, Vec<ProcNode>) {
let by_pid: HashMap<u32, &RawProc> = procs.iter().map(|p| (p.pid, p)).collect();
let mut children: HashMap<u32, Vec<u32>> = HashMap::new();
for p in procs {
if let Some(pp) = p.ppid {
children.entry(pp).or_default().push(p.pid);
}
}
let harness_of: HashMap<u32, Harness> = procs.iter().filter_map(|p| classify_agent(p).map(|h| (p.pid, h))).collect();
let has_agent_ancestor = |mut pid: u32| -> bool {
let mut hops = 0;
while let Some(p) = by_pid.get(&pid) {
match p.ppid {
Some(pp) if pp != pid && hops < 64 => {
if harness_of.contains_key(&pp) {
return true;
}
pid = pp;
hops += 1;
}
_ => return false,
}
}
false
};
let now = now_secs();
fn build(
pid: u32,
kind: ProcKind,
by_pid: &HashMap<u32, &RawProc>,
children: &HashMap<u32, Vec<u32>>,
harness_of: &HashMap<u32, Harness>,
now: u64,
depth: usize,
) -> ProcNode {
let p = by_pid[&pid];
let mut kids = Vec::new();
if depth < 32
&& let Some(cs) = children.get(&pid)
{
let mut cs = cs.clone();
cs.sort_unstable();
for c in cs {
if c == pid {
continue;
}
let k = if harness_of.contains_key(&c) { ProcKind::Subagent } else { classify_child(by_pid[&c]) };
kids.push(build(c, k, by_pid, children, harness_of, now, depth + 1));
}
}
ProcNode {
pid,
ppid: p.ppid,
name: p.program(),
cmdline: p.cmdline(),
kind,
harness: harness_of.get(&pid).copied(),
cpu_percent: p.cpu_percent,
rss_bytes: p.rss_bytes,
age_secs: if p.run_time > 0 { p.run_time } else { now.saturating_sub(p.start_time) },
cwd: p.cwd.clone(),
children: kids,
}
}
let mut roots: Vec<ProcNode> = harness_of
.keys()
.filter(|pid| !has_agent_ancestor(**pid))
.map(|pid| build(*pid, ProcKind::Agent, &by_pid, &children, &harness_of, now, 0))
.collect();
roots.sort_by_key(|r| r.pid);
let mut orphans: Vec<ProcNode> = procs
.iter()
.filter(|p| !harness_of.contains_key(&p.pid))
.filter(|p| classify_child(p) == ProcKind::Mcp)
.filter(|p| !has_agent_ancestor(p.pid))
.map(|p| ProcNode {
pid: p.pid,
ppid: p.ppid,
name: p.program(),
cmdline: p.cmdline(),
kind: ProcKind::Mcp,
harness: None,
cpu_percent: p.cpu_percent,
rss_bytes: p.rss_bytes,
age_secs: if p.run_time > 0 { p.run_time } else { now.saturating_sub(p.start_time) },
cwd: p.cwd.clone(),
children: Vec::new(),
})
.collect();
let orphan_pids: std::collections::HashSet<u32> = orphans.iter().map(|o| o.pid).collect();
orphans.retain(|o| {
let mut pid = o.pid;
let mut hops = 0;
while let Some(p) = by_pid.get(&pid) {
match p.ppid {
Some(pp) if pp != pid && hops < 64 => {
if orphan_pids.contains(&pp) {
return false;
}
pid = pp;
hops += 1;
}
_ => break,
}
}
true
});
orphans.sort_by_key(|o| std::cmp::Reverse(o.age_secs));
(roots, orphans)
}
pub fn session_id_from_args(cmd: &[String]) -> Option<String> {
let mut it = cmd.iter();
while let Some(a) = it.next() {
if a == "--resume" || a == "-r" || a == "resume" {
if let Some(v) = it.next()
&& looks_like_uuid(v)
{
return Some(v.clone());
}
} else if let Some(v) = a.strip_prefix("--resume=")
&& looks_like_uuid(v)
{
return Some(v.to_string());
}
}
None
}
fn looks_like_uuid(s: &str) -> bool {
s.len() == 36 && s.chars().all(|c| c.is_ascii_hexdigit() || c == '-')
}
#[cfg(test)]
mod tests {
use super::*;
fn proc(pid: u32, ppid: Option<u32>, cmd: &[&str]) -> RawProc {
RawProc {
pid,
ppid,
name: basename(cmd[0]),
exe: None,
cmd: cmd.iter().map(|s| s.to_string()).collect(),
cwd: None,
cpu_percent: 0.0,
rss_bytes: 0,
start_time: 0,
run_time: 1,
}
}
#[test]
fn classifies_roots_and_children() {
let procs = vec![
proc(1, None, &["/sbin/launchd"]),
proc(10, Some(1), &["claude", "--resume", "a29e19c3-2856-4510-87a0-80ce170ad830"]),
proc(11, Some(10), &["/bin/zsh", "-c", "cargo test"]),
proc(12, Some(10), &["npx", "-y", "@modelcontextprotocol/server-filesystem", "/tmp"]),
proc(13, Some(10), &["claude", "-p", "summarise"]),
proc(20, Some(1), &["uvx", "mcp-server-git"]),
proc(
30,
Some(1),
&["/Applications/ChatGPT.app/Contents/Frameworks/Codex Framework.framework/Helpers/browser_crashpad_handler"],
),
];
let (roots, orphans) = build_forest(&procs);
assert_eq!(roots.len(), 1);
let root = &roots[0];
assert_eq!(root.harness, Some(Harness::Claude));
let kinds: Vec<ProcKind> = root.children.iter().map(|c| c.kind).collect();
assert_eq!(kinds, vec![ProcKind::Shell, ProcKind::Mcp, ProcKind::Subagent]);
assert_eq!(orphans.len(), 1);
assert_eq!(orphans[0].pid, 20);
assert_eq!(session_id_from_args(&procs[1].cmd).as_deref(), Some("a29e19c3-2856-4510-87a0-80ce170ad830"));
}
}