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tcpdump — el disector de red TCPdump | Kitploit
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GitHubthe-tcpdump-group/tcpdump

tcpdump

el disector de red TCPdump

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3.2k92913hace 2 díasRevisado por Kitploit
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TCPDUMP 4.x.y por The Tcpdump Group

Para reportar un problema de seguridad, envía un correo electrónico a [email protected].

Para reportar errores y otros problemas, contribuir con parches, solicitar una funcionalidad, proporcionar comentarios generales, etc., consulta las pautas para contribuir en la raíz del árbol de fuentes de tcpdump.

Git anónimo está disponible en

root@kitploit:~
https://github.com/the-tcpdump-group/tcpdump.git

Este directorio contiene el código fuente de tcpdump, una herramienta para la monitorización de redes y la adquisición de datos.

En los últimos años, tcpdump ha mejorado constantemente gracias a las excelentes contribuciones de la comunidad de Internet (solo hay que revisar el registro de cambios). Agradecemos toda la aportación.

Plataformas compatibles

En muchos sistemas operativos, tcpdump está disponible como paquete nativo o port, lo que simplifica la instalación de actualizaciones y el mantenimiento a largo plazo. Sin embargo, los paquetes nativos a veces van unas cuantas versiones por detrás y, para probar una instantánea más reciente, será necesario compilar tcpdump desde el código fuente.

tcpdump compila y funciona al menos en las siguientes plataformas:

  • AIX
  • DragonFly BSD
  • FreeBSD
  • Haiku
  • HP-UX 11i
  • illumos (OmniOS, OpenIndiana)
Descargar herramienta
  • GNU/Hurd
  • GNU/Linux
  • {Mac} OS X / macOS
  • NetBSD
  • OpenBSD
  • QNX
  • Solaris
  • Windows (requiere WinPcap o Npcap, y Visual Studio con CMake)
  • En el pasado, tcpdump funcionó con seguridad o probablemente en las siguientes plataformas:

    • 4.3BSD
    • BSD/386, más tarde BSD/OS
    • DEC OSF/1, más tarde Digital UNIX, más tarde Tru64 UNIX
    • DOS
    • IRIX
    • LynxOS
    • SINIX
    • SunOS
    • Ultrix
    • UnixWare

    Dependencia de libpcap

    tcpdump utiliza libpcap, una interfaz independiente del sistema para la captura de paquetes a nivel de usuario. Si tu sistema operativo no proporciona libpcap, o si proporciona una libpcap que no admite las API de libpcap 1.0 o posterior, primero debes obtener y compilar libpcap antes de compilar tcpdump,

    Una vez que libpcap esté compilada (ya sea instalándola o asegurándote de que esté en ../libpcap), puedes compilar tcpdump siguiendo el procedimiento de las notas de instalación.

    Orígenes de tcpdump

    El programa se basa libremente en "etherfind" de SMI, aunque no queda nada del código de etherfind. Fue escrito originalmente por Van Jacobson como parte de un proyecto de investigación en curso para investigar y mejorar el rendimiento de TCP y de las pasarelas de Internet. Las partes del programa tomadas originalmente de etherfind de Sun fueron reescritas posteriormente por Steven McCanne de LBL. Para asegurarse de que no quedara ningún vestigio de código propietario en tcpdump, Steve escribió estas partes a partir de la especificación dada por la entrada del manual, sin acceso al código fuente de tcpdump ni de etherfind.

    root@kitploit:~
    formerly from	Lawrence Berkeley National Laboratory
    		Network Research Group <[email protected]>
    		ftp://ftp.ee.lbl.gov/old/tcpdump.tar.Z (3.4)
    

    Véase también

    Richard Stevens ofrece un excelente tratamiento de los protocolos de Internet en su libro "TCP/IP Illustrated, Volume 1". Si quieres aprender más sobre tcpdump y cómo interpretar su salida, hazte con este libro.

    Otra herramienta que los usuarios de tcpdump pueden encontrar útil es tcpslice. Es un programa que se puede utilizar para extraer porciones de archivos binarios de trazas de tcpdump.

    El README original de LBL por Steve McCanne, Craig Leres y Van Jacobson

    root@kitploit:~
    This directory also contains some short awk programs intended as
    examples of ways to reduce tcpdump data when you're tracking
    particular network problems:
    
    send-ack.awk
    	Simplifies the tcpdump trace for an ftp (or other unidirectional
    	tcp transfer).  Since we assume that one host only sends and
    	the other only acks, all address information is left off and
    	we just note if the packet is a "send" or an "ack".
    
    	There is one output line per line of the original trace.
    	Field 1 is the packet time in decimal seconds, relative
    	to the start of the conversation.  Field 2 is delta-time
    	from last packet.  Field 3 is packet type/direction.
    	"Send" means data going from sender to receiver, "ack"
    	means an ack going from the receiver to the sender.  A
    	preceding "*" indicates that the data is a retransmission.
    	A preceding "-" indicates a hole in the sequence space
    	(i.e., missing packet(s)), a "#" means an odd-size (not max
    	seg size) packet.  Field 4 has the packet flags
    	(same format as raw trace).  Field 5 is the sequence
    	number (start seq. num for sender, next expected seq number
    	for acks).  The number in parens following an ack is
    	the delta-time from the first send of the packet to the
    	ack.  A number in parens following a send is the
    	delta-time from the first send of the packet to the
    	current send (on duplicate packets only).  Duplicate
    	sends or acks have a number in square brackets showing
    	the number of duplicates so far.
    
    	Here is a short sample from near the start of an ftp:
    		3.00    0.20   send . 512
    		3.20    0.20    ack . 1024  (0.20)
    		3.20    0.00   send P 1024
    		3.40    0.20    ack . 1536  (0.20)
    		3.80    0.40 * send . 0  (3.80) [2]
    		3.82    0.02 *  ack . 1536  (0.62) [2]
    	Three seconds into the conversation, bytes 512 through 1023
    	were sent.  200ms later they were acked.  Shortly thereafter
    	bytes 1024-1535 were sent and again acked after 200ms.
    	Then, for no apparent reason, 0-511 is retransmitted, 3.8
    	seconds after its initial send (the round trip time for this
    	ftp was 1sec, +-500ms).  Since the receiver is expecting
    	1536, 1536 is re-acked when 0 arrives.
    
    packetdat.awk
    	Computes chunk summary data for an ftp (or similar
    	unidirectional tcp transfer). [A "chunk" refers to
    	a chunk of the sequence space -- essentially the packet
    	sequence number divided by the max segment size.]
    
    	A summary line is printed showing the number of chunks,
    	the number of packets it took to send that many chunks
    	(if there are no lost or duplicated packets, the number
    	of packets should equal the number of chunks) and the
    	number of acks.
    
    	Following the summary line is one line of information
    	per chunk.  The line contains eight fields:
    	   1 - the chunk number
    	   2 - the start sequence number for this chunk
    	   3 - time of first send
    	   4 - time of last send
    	   5 - time of first ack
    	   6 - time of last ack
    	   7 - number of times chunk was sent
    	   8 - number of times chunk was acked
    	(all times are in decimal seconds, relative to the start
    	of the conversation.)
    
    	As an example, here is the first part of the output for
    	an ftp trace:
    
    	# 134 chunks.  536 packets sent.  508 acks.
    	1       1       0.00    5.80    0.20    0.20    4       1
    	2       513     0.28    6.20    0.40    0.40    4       1
    	3       1025    1.16    6.32    1.20    1.20    4       1
    	4       1561    1.86    15.00   2.00    2.00    6       1
    	5       2049    2.16    15.44   2.20    2.20    5       1
    	6       2585    2.64    16.44   2.80    2.80    5       1
    	7       3073    3.00    16.66   3.20    3.20    4       1
    	8       3609    3.20    17.24   3.40    5.82    4       11
    	9       4097    6.02    6.58    6.20    6.80    2       5
    
    	This says that 134 chunks were transferred (about 70K
    	since the average packet size was 512 bytes).  It took
    	536 packets to transfer the data (i.e., on the average
    	each chunk was transmitted four times).  Looking at,
    	say, chunk 4, we see it represents the 512 bytes of
    	sequence space from 1561 to 2048.  It was first sent
    	1.86 seconds into the conversation.  It was last
    	sent 15 seconds into the conversation and was sent
    	a total of 6 times (i.e., it was retransmitted every
    	2 seconds on the average).  It was acked once, 140ms
    	after it first arrived.
    
    stime.awk
    atime.awk
    	Output one line per send or ack, respectively, in the form
    		<time> <seq. number>
    	where <time> is the time in seconds since the start of the
    	transfer and <seq. number> is the sequence number being sent
    	or acked.  I typically plot this data looking for suspicious
    	patterns.
    
    
    The problem I was looking at was the bulk-data-transfer
    throughput of medium delay network paths (1-6 sec.  round trip
    time) under typical DARPA Internet conditions.  The trace of the
    ftp transfer of a large file was used as the raw data source.
    The method was:
    
      - On a local host (but not the Sun running tcpdump), connect to
        the remote ftp.
    
      - On the monitor Sun, start the trace going.  E.g.,
          tcpdump host local-host and remote-host and port ftp-data >tracefile
    
      - On local, do either a get or put of a large file (~500KB),
        preferably to the null device (to minimize effects like
        closing the receive window while waiting for a disk write).
    
      - When transfer is finished, stop tcpdump.  Use awk to make up
        two files of summary data (maxsize is the maximum packet size,
        tracedata is the file of tcpdump tracedata):
          awk -f send-ack.awk packetsize=avgsize tracedata >sa
          awk -f packetdat.awk packetsize=avgsize tracedata >pd
    
      - While the summary data files are printing, take a look at
        how the transfer behaved:
          awk -f stime.awk tracedata | xgraph
        (90% of what you learn seems to happen in this step).
    
      - Do all of the above steps several times, both directions,
        at different times of day, with different protocol
        implementations on the other end.
    
      - Using one of the Unix data analysis packages (in my case,
        S and Gary Perlman's Unix|Stat), spend a few months staring
        at the data.
    
      - Change something in the local protocol implementation and
        redo the steps above.
    
      - Once a week, tell your funding agent that you're discovering
        wonderful things and you'll write up that research report
        "real soon now".