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Chapter 4. Useful SystemTap Scripts
This chapter enumerates several SystemTap scripts you can use to monitor and investigate different subsystems. All of these scripts are available at
/usr/share/systemtap/testsuite/systemtap.examples/
once you install the systemtap-testsuite
RPM.
4.1. Network 링크 복사링크가 클립보드에 복사되었습니다!
링크 복사링크가 클립보드에 복사되었습니다!
The following sections showcase scripts that trace network-related functions and build a profile of network activity.
4.1.1. Network Profiling 링크 복사링크가 클립보드에 복사되었습니다!
링크 복사링크가 클립보드에 복사되었습니다!
This section describes how to profile network activity. nettop.stp provides a glimpse into how much network traffic each process is generating on a machine.
nettop.stp
Note that
function print_activity()
uses the following expressions:
n_xmit ? @sum(ifxmit[pid, dev, exec, uid])/1024 : 0 n_recv ? @sum(ifrecv[pid, dev, exec, uid])/1024 : 0
n_xmit ? @sum(ifxmit[pid, dev, exec, uid])/1024 : 0
n_recv ? @sum(ifrecv[pid, dev, exec, uid])/1024 : 0
These expressions are if/else conditionals. The first statement is simply a more concise way of writing the following psuedo code:
if n_recv != 0 then @sum(ifrecv[pid, dev, exec, uid])/1024 else 0
if n_recv != 0 then
@sum(ifrecv[pid, dev, exec, uid])/1024
else
0
nettop.stp tracks which processes are generating network traffic on the system, and provides the following information about each process:
PID
— the ID of the listed process.UID
— user ID. A user ID of0
refers to the root user.DEV
— which ethernet device the process used to send / receive data (for example eth0, eth1)XMIT_PK
— number of packets transmitted by the processRECV_PK
— number of packets received by the processXMIT_KB
— amount of data sent by the process, in kilobytesRECV_KB
— amount of data received by the service, in kilobytes
nettop.stp provides network profile sampling every 5 seconds. You can change this setting by editing
probe timer.ms(5000)
accordingly. Example 4.1, “nettop.stp Sample Output” contains an excerpt of the output from nettop.stp over a 20-second period:
Example 4.1. nettop.stp Sample Output
4.1.2. Tracing Functions Called in Network Socket Code 링크 복사링크가 클립보드에 복사되었습니다!
링크 복사링크가 클립보드에 복사되었습니다!
This section describes how to trace functions called from the kernel's
net/socket.c
file. This task helps you identify, in finer detail, how each process interacts with the network at the kernel level.
socket-trace.stp
socket-trace.stp is identical to Example 3.6, “thread_indent.stp”, which was earlier used in SystemTap Functions to illustrate how
thread_indent()
works.
Example 4.2. socket-trace.stp Sample Output
Example 4.2, “socket-trace.stp Sample Output” contains a 3-second excerpt of the output for socket-trace.stp. For more information about the output of this script as provided by
thread_indent()
, refer to SystemTap Functions Example 3.6, “thread_indent.stp”.
4.1.3. Monitoring Incoming TCP Connections 링크 복사링크가 클립보드에 복사되었습니다!
링크 복사링크가 클립보드에 복사되었습니다!
This section illustrates how to monitor incoming TCP connections. This task is useful in identifying any unauthorized, suspicious, or otherwise unwanted network access requests in real time.
tcp_connections.stp
While tcp_connections.stp is running, it will print out the following information about any incoming TCP connections accepted by the system in real time:
- Current
UID
CMD
- the command accepting the connectionPID
of the command- Port used by the connection
- IP address from which the TCP connection originated
Example 4.3. tcp_connections.stp Sample Output
UID CMD PID PORT IP_SOURCE 0 sshd 3165 22 10.64.0.227 0 sshd 3165 22 10.64.0.227
UID CMD PID PORT IP_SOURCE
0 sshd 3165 22 10.64.0.227
0 sshd 3165 22 10.64.0.227
4.1.4. Monitoring Network Packets Drops in Kernel 링크 복사링크가 클립보드에 복사되었습니다!
링크 복사링크가 클립보드에 복사되었습니다!
The network stack in Linux can discard packets for various reasons. Some Linux kernels include a tracepoint,
kernel.trace("kfree_skb")
, which easily tracks where packets are discarded. dropwatch.stp uses kernel.trace("kfree_skb")
to trace packet discards; the script summarizes which locations discard packets every five-second interval.
dropwatch.stp
The
kernel.trace("kfree_skb")
traces which places in the kernel drop network packets. The kernel.trace("kfree_skb")
has two arguments: a pointer to the buffer being freed ($skb
) and the location in kernel code the buffer is being freed ($location
).
Running the dropwatch.stp script 15 seconds would result in output similar in Example 4.4, “dropwatch.stp Sample Output”. The output lists the number of misses for tracepoint address and the actual address.
Example 4.4. dropwatch.stp Sample Output
To make the location of packet drops more meaningful, refer to the
/boot/System.map-`uname -r`
file. This file lists the starting addresses for each function, allowing you to map the addresses in the output of Example 4.4, “dropwatch.stp Sample Output” to a specific function name. Given the following snippet of the /boot/System.map-`uname -r`
file, the address 0xffffffff8024cd0f maps to the function unix_stream_recvmsg
and the address 0xffffffff8044b472 maps to the function arp_rcv
: