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Tuesday, December 27, 2011

Local Repository Ubuntu 11.10 Oneiric Ocelot

Local Repository Ubuntu 11.10 Oneiric Ocelot

Exactly on the 13th October 2011 a few days ago, Ubuntu has issued a final version with the code name Oneric 11:10 OCELOT.
The following below are some Local Repository Ubuntu 11.10 Oneiric Ocelot :

# Repo Goat:
deb http://kambing.ui.ac.id/ubuntu/ oneiric main restricted universe multiverse
deb http://kambing.ui.ac.id/ubuntu/ oneiric-updates main restricted universe multiverse
deb http://kambing.ui.ac.id/ubuntu/ oneiric-security main restricted universe multiverse

# Repo Kebo:
deb http://kebo.eepis-its.edu/ubuntu/ubuntu/ oneiric main restricted universe multiverse
deb http://kebo.eepis-its.edu/ubuntu/ubuntu/ oneiric-updates main restricted universe multiverse
deb http://kebo.eepis-its.edu/ubuntu/ubuntu/ oneiric-security main restricted universe multiverse

# Repo Unej:

deb http://mirror.unej.ac.id/ubuntu/ oneiric main restricted universe multiverse
deb http://mirror.unej.ac.id/ubuntu/ oneiric-updates main restricted universe multiverse
deb http://mirror.unej.ac.id/ubuntu/ oneiric-security main restricted universe multiverse

# Repo Komo:

deb http://komo.padinet.com/ubuntu/ oneiric main restricted universe multiverse
deb http://komo.padinet.com/ubuntu/ oneiric-updates main restricted universe multiverse
deb http://komo.padinet.com/ubuntu/ oneiric-security main restricted universe multiverse

How to enter its Repository:
1. keterminal typewriting

sudo gedit / etc / apt / sources.list


repo copy from one of the mirror on top, and then paste it to the sources.list file and then save.
then typing the command

sudo apt-get update
ReadMore...

Sunday, December 25, 2011

Finding Out Package Dependencies With apt-rdepends On Debian/Ubuntu

Sometimes you need to find out all the dependencies of a package. This tutorial explains how to use apt-rdepends to recursively list all dependencies of a Debian/Ubuntu package.
I do not issue any guarantee that this will work for you!

1 Installing apt-rdepends
apt-rdepends can be installed as follows:

#apt-get install apt-rdepends
If you are on Ubuntu and are not logged in as root, use

#sudo apt-get install apt-rdepends

instead.


2 Using apt-rdepends

apt-rdepends can be used as follows:

#apt-rdepends

For example, to find out all dependencies of the package wget, run:

#apt-rdepends wget

This is a sample output:

falko@falko-virtual-machine:~$ apt-rdepends wget
Reading package lists... Done
Building dependency tree
Reading state information... Done
wget
Depends: dpkg (>= 1.15.4)
Depends: install-info
Depends: libc6 (>= 2.11)
Depends: libssl1.0.0 (>= 1.0.0)
dpkg
PreDepends: coreutils (>= 5.93-1)
PreDepends: libbz2-1.0
PreDepends: libc6 (>= 2.11)
PreDepends: libselinux1 (>= 1.32)
PreDepends: xz-utils
PreDepends: zlib1g (>= 1:1.1.4)
coreutils
PreDepends: libacl1 (>= 2.2.11-1)
PreDepends: libattr1 (>= 2.4.41-1)
PreDepends: libc6 (>= 2.7)
PreDepends: libselinux1 (>= 1.32)
libacl1
Depends: libattr1 (>= 2.4.41-1)
Depends: libc6 (>= 2.4)
PreDepends: multiarch-support
libattr1
Depends: libc6 (>= 2.4)
PreDepends: multiarch-support
libc6
Depends: libc-bin (= 2.13-20ubuntu5)
Depends: libgcc1
Depends: tzdata
libc-bin
libgcc1
Depends: gcc-4.6-base (= 4.6.1-9ubuntu3)
Depends: libc6 (>= 2.2.5)
PreDepends: multiarch-support
gcc-4.6-base
multiarch-support
Depends: libc6 (>= 2.3.6-2)
tzdata
Depends: debconf (>= 0.5)
Depends: debconf-2.0
debconf
PreDepends: perl-base (>= 5.6.1-4)
perl-base
PreDepends: dpkg (>= 1.14.20)
PreDepends: libc6 (>= 2.11)
debconf-2.0
libselinux1
Depends: libc6 (>= 2.8)
PreDepends: multiarch-support
libbz2-1.0
Depends: libc6 (>= 2.4)
xz-utils
Depends: libc6 (>= 2.7)
Depends: liblzma2 (>= 5.0.0)
liblzma2
Depends: libc6 (>= 2.4)
zlib1g
Depends: libc6 (>= 2.4)
PreDepends: multiarch-support
install-info
Depends: libc6 (>= 2.4)
libssl1.0.0
Depends: debconf (>= 0.5)
Depends: debconf-2.0
Depends: libc6 (>= 2.7)
Depends: zlib1g (>= 1:1.1.4)
PreDepends: multiarch-support
falko@falko-virtual-machine:~$


For most packages, the output is even longer and might not fit on your screen. In these cases you can pipe the output into more (or less), e.g. as follows:

#apt-rdepends apache2 | more

#apt-rdepends apache2 | less


3 Links

Debian: http://www.debian.org/
Ubuntu: http://www.ubuntu.com/
ReadMore...

20 Linux System Monitoring Tools Every SysAdmin Should Know


Need to monitor Linux server performance? Try these built-in command and a few add-on tools. Most Linux distributions are equipped with tons of monitoring. These tools provide metrics which can be used to get information about system activities. You can use these tools to find the possible causes of a performance problem. The commands discussed below are some of the most basic commands when it comes to system analysis and debugging server issues such as:

  1. Finding out bottlenecks.
  2. Disk (storage) bottlenecks.
  3. CPU and memory bottlenecks.
  4. Network bottlenecks.


#1: top Process Activity Command

The top program provides a dynamic real-time view of a running system i.e. actual process activity. By default, it displays the most CPU-intensive tasks running on the server and updates the list every five seconds.
Fig.01: Linux top command
Fig.01: Linux top command

Commonly Used Hot Keys

The top command provides several useful hot keys:
= Related: How do I Find Out Linux CPU Utilization?

#2: vmstat System Activity, Hardware and System Information

The command vmstat reports information about processes, memory, paging, block IO, traps, and cpu activity.
# vmstat 3

Sample Outputs:
procs -----------memory---------- ---swap-- -----io---- --system-- -----cpu------
r  b   swpd   free   buff  cache   si   so    bi    bo   in   cs us sy id wa st
0  0      0 2540988 522188 5130400    0    0     2    32    4    2  4  1 96  0  0
1  0      0 2540988 522188 5130400    0    0     0   720 1199  665  1  0 99  0  0
0  0      0 2540956 522188 5130400    0    0     0     0 1151 1569  4  1 95  0  0
0  0      0 2540956 522188 5130500    0    0     0     6 1117  439  1  0 99  0  0
0  0      0 2540940 522188 5130512    0    0     0   536 1189  932  1  0 98  0  0
0  0      0 2538444 522188 5130588    0    0     0     0 1187 1417  4  1 96  0  0
0  0      0 2490060 522188 5130640    0    0     0    18 1253 1123  5  1 94  0  0

Display Memory Utilization Slabinfo

# vmstat -m

Get Information About Active / Inactive Memory Pages

# vmstat -a
= Related: How do I find out Linux Resource utilization to detect system bottlenecks?

#3: w Find Out Who Is Logged on And What They Are Doing

w command displays information about the users currently on the machine, and their processes.
# w username
# w vivek


Sample Outputs:
17:58:47 up 5 days, 20:28,  2 users,  load average: 0.36, 0.26, 0.24
USER     TTY      FROM              LOGIN@   IDLE   JCPU   PCPU WHAT
root     pts/0    10.1.3.145       14:55    5.00s  0.04s  0.02s vim /etc/resolv.conf
root     pts/1    10.1.3.145       17:43    0.00s  0.03s  0.00s w

#4: uptime Tell How Long The System Has Been Running

The uptime command can be used to see how long the server has been running. The current time, how long the system has been running, how many users are currently logged on, and the system load averages for the past 1, 5, and 15 minutes.
# uptime

Output:
18:02:41 up 41 days, 23:42,  1 user,  load average: 0.00, 0.00, 0.00
1 can be considered as optimal load value. The load can change from system to system. For a single CPU system 1 – 3 and SMP systems 6-10 load value might be acceptable.

#5: ps Displays The Processes

ps command will report a snapshot of the current processes. To select all processes use the -A or -e option:
# ps -A

Sample Outputs:
PID TTY          TIME CMD
1 ?        00:00:02 init
2 ?        00:00:02 migration/0
3 ?        00:00:01 ksoftirqd/0
4 ?        00:00:00 watchdog/0
5 ?        00:00:00 migration/1
6 ?        00:00:15 ksoftirqd/1
....
.....
4881 ?        00:53:28 java
4885 tty1     00:00:00 mingetty
4886 tty2     00:00:00 mingetty
4887 tty3     00:00:00 mingetty
4888 tty4     00:00:00 mingetty
4891 tty5     00:00:00 mingetty
4892 tty6     00:00:00 mingetty
4893 ttyS1    00:00:00 agetty
12853 ?        00:00:00 cifsoplockd
12854 ?        00:00:00 cifsdnotifyd
14231 ?        00:10:34 lighttpd
14232 ?        00:00:00 php-cgi
54981 pts/0    00:00:00 vim
55465 ?        00:00:00 php-cgi
55546 ?        00:00:00 bind9-snmp-stat
55704 pts/1    00:00:00 ps
ps is just like top but provides more information.

Show Long Format Output

# ps -Al

To turn on extra full mode (it will show command line arguments passed to process):
# ps -AlF

To See Threads ( LWP and NLWP)

# ps -AlFH

To See Threads After Processes

# ps -AlLm

Print All Process On The Server

# ps ax
# ps axu

Print A Process Tree

# ps -ejH
# ps axjf
# pstree

Print Security Information

# ps -eo euser,ruser,suser,fuser,f,comm,label
# ps axZ
# ps -eM

See Every Process Running As User Vivek

# ps -U vivek -u vivek u

Set Output In a User-Defined Format

# ps -eo pid,tid,class,rtprio,ni,pri,psr,pcpu,stat,wchan:14,comm
# ps axo stat,euid,ruid,tty,tpgid,sess,pgrp,ppid,pid,pcpu,comm
# ps -eopid,tt,user,fname,tmout,f,wchan

Display Only The Process IDs of Lighttpd

# ps -C lighttpd -o pid=

OR
# pgrep lighttpd

OR
# pgrep -u vivek php-cgi

Display The Name of PID 55977

# ps -p 55977 -o comm=

Find Out The Top 10 Memory Consuming Process

# ps -auxf | sort -nr -k 4 | head -10

Find Out top 10 CPU Consuming Process

# ps -auxf | sort -nr -k 3 | head -10

#6: free Memory Usage

The command free displays the total amount of free and used physical and swap memory in the system, as well as the buffers used by the kernel.
# free

Sample Output:
total       used       free     shared    buffers     cached
Mem:      12302896    9739664    2563232          0     523124    5154740
-/+ buffers/cache:    4061800    8241096
Swap:      1052248          0    1052248
= Related: :
  1. Linux Find Out Virtual Memory PAGESIZE
  2. Linux Limit CPU Usage Per Process
  3. How much RAM does my Ubuntu / Fedora Linux desktop PC have?

#7: iostat Average CPU Load, Disk Activity

The command iostat report Central Processing Unit (CPU) statistics and input/output statistics for devices, partitions and network filesystems (NFS).
# iostat

Sample Outputs:
Linux 2.6.18-128.1.14.el5 (www03.nixcraft.in)  06/26/2009

avg-cpu:  %user   %nice %system %iowait  %steal   %idle
3.50    0.09    0.51    0.03    0.00   95.86

Device:            tps   Blk_read/s   Blk_wrtn/s   Blk_read   Blk_wrtn
sda              22.04        31.88       512.03   16193351  260102868
sda1              0.00         0.00         0.00       2166        180
sda2             22.04        31.87       512.03   16189010  260102688
sda3              0.00         0.00         0.00       1615          0
= Related: : Linux Track NFS Directory / Disk I/O Stats

#8: sar Collect and Report System Activity

The sar command is used to collect, report, and save system activity information. To see network counter, enter:
# sar -n DEV | more

To display the network counters from the 24th:
# sar -n DEV -f /var/log/sa/sa24 | more

You can also display real time usage using sar:
# sar 4 5

Sample Outputs:
Linux 2.6.18-128.1.14.el5 (www03.nixcraft.in)   06/26/2009

06:45:12 PM       CPU     %user     %nice   %system   %iowait    %steal     %idle
06:45:16 PM       all      2.00      0.00      0.22      0.00      0.00     97.78
06:45:20 PM       all      2.07      0.00      0.38      0.03      0.00     97.52
06:45:24 PM       all      0.94      0.00      0.28      0.00      0.00     98.78
06:45:28 PM       all      1.56      0.00      0.22      0.00      0.00     98.22
06:45:32 PM       all      3.53      0.00      0.25      0.03      0.00     96.19
Average:          all      2.02      0.00      0.27      0.01      0.00     97.70
= Related: : How to collect Linux system utilization data into a file

#9: mpstat Multiprocessor Usage

The mpstat command displays activities for each available processor, processor 0 being the first one. mpstat -P ALL to display average CPU utilization per processor:
# mpstat -P ALL

Sample Output:
Linux 2.6.18-128.1.14.el5 (www03.nixcraft.in)   06/26/2009

06:48:11 PM  CPU   %user   %nice    %sys %iowait    %irq   %soft  %steal   %idle    intr/s
06:48:11 PM  all    3.50    0.09    0.34    0.03    0.01    0.17    0.00   95.86   1218.04
06:48:11 PM    0    3.44    0.08    0.31    0.02    0.00    0.12    0.00   96.04   1000.31
06:48:11 PM    1    3.10    0.08    0.32    0.09    0.02    0.11    0.00   96.28     34.93
06:48:11 PM    2    4.16    0.11    0.36    0.02    0.00    0.11    0.00   95.25      0.00
06:48:11 PM    3    3.77    0.11    0.38    0.03    0.01    0.24    0.00   95.46     44.80
06:48:11 PM    4    2.96    0.07    0.29    0.04    0.02    0.10    0.00   96.52     25.91
06:48:11 PM    5    3.26    0.08    0.28    0.03    0.01    0.10    0.00   96.23     14.98
06:48:11 PM    6    4.00    0.10    0.34    0.01    0.00    0.13    0.00   95.42      3.75
06:48:11 PM    7    3.30    0.11    0.39    0.03    0.01    0.46    0.00   95.69     76.89
= Related: : Linux display each multiple SMP CPU processors utilization individually.

#10: pmap Process Memory Usage

The command pmap report memory map of a process. Use this command to find out causes of memory bottlenecks.
# pmap -d PID

To display process memory information for pid # 47394, enter:
# pmap -d 47394

Sample Outputs:
47394:   /usr/bin/php-cgi
Address           Kbytes Mode  Offset           Device    Mapping
0000000000400000    2584 r-x-- 0000000000000000 008:00002 php-cgi
0000000000886000     140 rw--- 0000000000286000 008:00002 php-cgi
00000000008a9000      52 rw--- 00000000008a9000 000:00000   [ anon ]
0000000000aa8000      76 rw--- 00000000002a8000 008:00002 php-cgi
000000000f678000    1980 rw--- 000000000f678000 000:00000   [ anon ]
000000314a600000     112 r-x-- 0000000000000000 008:00002 ld-2.5.so
000000314a81b000       4 r---- 000000000001b000 008:00002 ld-2.5.so
000000314a81c000       4 rw--- 000000000001c000 008:00002 ld-2.5.so
000000314aa00000    1328 r-x-- 0000000000000000 008:00002 libc-2.5.so
000000314ab4c000    2048 ----- 000000000014c000 008:00002 libc-2.5.so
.....
......
..
00002af8d48fd000       4 rw--- 0000000000006000 008:00002 xsl.so
00002af8d490c000      40 r-x-- 0000000000000000 008:00002 libnss_files-2.5.so
00002af8d4916000    2044 ----- 000000000000a000 008:00002 libnss_files-2.5.so
00002af8d4b15000       4 r---- 0000000000009000 008:00002 libnss_files-2.5.so
00002af8d4b16000       4 rw--- 000000000000a000 008:00002 libnss_files-2.5.so
00002af8d4b17000  768000 rw-s- 0000000000000000 000:00009 zero (deleted)
00007fffc95fe000      84 rw--- 00007ffffffea000 000:00000   [ stack ]
ffffffffff600000    8192 ----- 0000000000000000 000:00000   [ anon ]
mapped: 933712K    writeable/private: 4304K    shared: 768000K
The last line is very important:
  • mapped: 933712K total amount of memory mapped to files
  • writeable/private: 4304K the amount of private address space
  • shared: 768000K the amount of address space this process is sharing with others
= Related: : Linux find the memory used by a program / process using pmap command

#11 and #12: netstat and ss - Network Statistics

The command netstat displays network connections, routing tables, interface statistics, masquerade connections, and multicast memberships. ss command is used to dump socket statistics. It allows showing information similar to netstat. See the following resources about ss and netstat commands:

#13: iptraf Real-time Network Statistics

The iptraf command is interactive colorful IP LAN monitor. It is an ncurses-based IP LAN monitor that generates various network statistics including TCP info, UDP counts, ICMP and OSPF information, Ethernet load info, node stats, IP checksum errors, and others. It can provide the following info in easy to read format:
  • Network traffic statistics by TCP connection
  • IP traffic statistics by network interface
  • Network traffic statistics by protocol
  • Network traffic statistics by TCP/UDP port and by packet size
  • Network traffic statistics by Layer2 address
Fig.02: General interface statistics: IP traffic statistics by network interface
Fig.02: General interface statistics: IP traffic statistics by network interface
Fig.03 Network traffic statistics by TCP connection
Fig.03 Network traffic statistics by TCP connection

#14: tcpdump Detailed Network Traffic Analysis

The tcpdump is simple command that dump traffic on a network. However, you need good understanding of TCP/IP protocol to utilize this tool. For.e.g to display traffic info about DNS, enter:
# tcpdump -i eth1 'udp port 53'

To display all IPv4 HTTP packets to and from port 80, i.e. print only packets that contain data, not, for example, SYN and FIN packets and ACK-only packets, enter:
# tcpdump 'tcp port 80 and (((ip[2:2] - ((ip[0]0xf)2)) - ((tcp[12]0xf0)2)) != 0)'

To display all FTP session to 202.54.1.5, enter:
# tcpdump -i eth1 'dst 202.54.1.5 and (port 21 or 20'

To display all HTTP session to 192.168.1.5:
# tcpdump -ni eth0 'dst 192.168.1.5 and tcp and port http'

Use wireshark to view detailed information about files, enter:
# tcpdump -n -i eth1 -s 0 -w output.txt src or dst port 80

#15: straceSystem Calls

Trace system calls and signals. This is useful for debugging webserver and other server problems. See how to use to trace the process and see What it is doing.

#16: /Proc file system Various Kernel Statistics

/proc file system provides detailed information about various hardware devices and other Linux kernel information. See Linux kernel /proc documentations for further details. Common /proc examples:
# cat /proc/cpuinfo
# cat /proc/meminfo
# cat /proc/zoneinfo
# cat /proc/mounts


17#: Nagios Server And Network Monitoring

Nagios is a popular open source computer system and network monitoring application software. You can easily monitor all your hosts, network equipment and services. It can send alert when things go wrong and again when they get better. FAN is “Fully Automated Nagios”. FAN goals are to provide a Nagios installation including most tools provided by the Nagios Community. FAN provides a CDRom image in the standard ISO format, making it easy to easilly install a Nagios server. Added to this, a wide bunch of tools are including to the distribution, in order to improve the user experience around Nagios.

18#: Cacti Web-based Monitoring Tool

Cacti is a complete network graphing solution designed to harness the power of RRDTool’s data storage and graphing functionality. Cacti provides a fast poller, advanced graph templating, multiple data acquisition methods, and user management features out of the box. All of this is wrapped in an intuitive, easy to use interface that makes sense for LAN-sized installations up to complex networks with hundreds of devices. It can provide data about network, CPU, memory, logged in users, Apache, DNS servers and much more. See how to install and configure Cacti network graphing tool under CentOS / RHEL.

#19: KDE System Guard Real-time Systems Reporting and Graphing

KSysguard is a network enabled task and system monitor application for KDE desktop. This tool can be run over ssh session. It provides lots of features such as a client/server architecture that enables monitoring of local and remote hosts. The graphical front end uses so-called sensors to retrieve the information it displays. A sensor can return simple values or more complex information like tables. For each type of information, one or more displays are provided. Displays are organized in worksheets that can be saved and loaded independently from each other. So, KSysguard is not only a simple task manager but also a very powerful tool to control large server farms.
Fig.05 KDE System Guard
Fig.05 KDE System Guard {Image credit: Wikipedia}
See the KSysguard handbook for detailed usage.

#20: Gnome System Monitor Real-time Systems Reporting and Graphing

The System Monitor application enables you to display basic system information and monitor system processes, usage of system resources, and file systems. You can also use System Monitor to modify the behavior of your system. Although not as powerful as the KDE System Guard, it provides the basic information which may be useful for new users:
  • Displays various basic information about the computer’s hardware and software.
  • Linux Kernel version
  • GNOME version
  • Hardware
  • Installed memory
  • Processors and speeds
  • System Status
  • Currently available disk space
  • Processes
  • Memory and swap space
  • Network usage
  • File Systems
  • Lists all mounted filesystems along with basic information about each.
Fig.06 The Gnome System Monitor application
Fig.06 The Gnome System Monitor application

Bonus: Additional Tools

A few more tools:
  • nmap – scan your server for open ports.
  • lsof – list open files, network connections and much more.
  • ntop web based tool – ntop is the best tool to see network usage in a way similar to what top command does for processes i.e. it is network traffic monitoring software. You can see network status, protocol wise distribution of traffic for UDP, TCP, DNS, HTTP and other protocols.
  • Conky – Another good monitoring tool for the X Window System. It is highly configurable and is able to monitor many system variables including the status of the CPU, memory, swap space, disk storage, temperatures, processes, network interfaces, battery power, system messages, e-mail inboxes etc.
  • GKrellM – It can be used to monitor the status of CPUs, main memory, hard disks, network interfaces, local and remote mailboxes, and many other things.
  • vnstat – vnStat is a console-based network traffic monitor. It keeps a log of hourly, daily and monthly network traffic for the selected interface(s).
  • htop – htop is an enhanced version of top, the interactive process viewer, which can display the list of processes in a tree form.
  • mtr – mtr combines the functionality of the traceroute and ping programs in a single network diagnostic tool.
Did I miss something? Please add your favorite system motoring tool in the comments.
ReadMore...

Vmware Linux Guest Add a New Hard Disk Without Rebooting Guest


As a system admin, I need to use additional hard drives for to provide more storage space or to separate system data from user data. This procedure, adding physical block devices to virtualized guests, describes how to add a hard drive on the host to a virtualized guest using VMWare software running Linux as guest.
It is possible to add or remove a SCSI device explicitly, or to re-scan an entire SCSI bus without rebooting a running Linux VM guest. This how to is tested under Vmware Server and Vmware Workstation v6.0 (but should work with older version too). All instructions are tested on RHEL, Fedora, CentOS and Ubuntu Linux guest / hosts operating systems.

Step # 1: Add a New Disk To Vm Guest

First, you need to add hard disk by visiting vmware hardware settings menu.
Click on VM Settings
Fig.01: Vmware Virtual Machine Settings
Fig.01: Vmware Virtual Machine Settings
Alternatively you can press CTRL + D to bring settings dialog box.
Click on Add+ to add new hardware to guest:
Fig.02: VMWare adding a new hardware
Fig.02: VMWare adding a new hardware
Select hardware type Hard disk and click on Next
Fig.03 VMware Adding a new disk wizard
Fig.03 VMware Adding a new disk wizard
Select create a new virtual disk and click on Next
Fig.04: Vmware Wizard Disk
Fig.04: Vmware Wizard Disk
Set virtual disk type to SCSI and click on Next
Fig.05: Vmware Virtual Disk
Fig.05: Vmware Virtual Disk
Set maximum disk size as per your requirements and click on Next
Fig.06: Finalizing Disk Virtual Addition
Fig.06: Finalizing Disk Virtual Addition
Finally, set file location and click on Finish.

Step # 2: Rescan the SCSI Bus to Add a SCSI Device Without rebooting the VM

A rescan can be issued by typing the following command:
echo "- - -" /sys/class/scsi_host/host#/scan
fdisk -l
tail -f /var/log/message


Sample outputs:
Linux Vmware Rescan New Scsi Disk Without Reboot
Fig.01:Linux Vmware Rescan New Scsi Disk Without Reboot
Replace host# with actual value such as host0. You can find scsi_host value using the following command:
# ls /sys/class/scsi_host
Output:
host0
Now type the following to send a rescan request:
echo "- - -" /sys/class/scsi_host/host0/scan
fdisk -l
tail -f /var/log/message


Sample Outputs:
Jul 18 16:29:39 localhost kernel:   Vendor: VMware,   Model: VMware Virtual S  Rev: 1.0
Jul 18 16:29:39 localhost kernel:   Type:   Direct-Access                      ANSI SCSI revision: 02
Jul 18 16:29:39 localhost kernel:  target0:0:1: Beginning Domain Validation
Jul 18 16:29:39 localhost kernel:  target0:0:1: Domain Validation skipping write tests
Jul 18 16:29:39 localhost kernel:  target0:0:1: Ending Domain Validation
Jul 18 16:29:39 localhost kernel:  target0:0:1: FAST-40 WIDE SCSI 80.0 MB/s ST (25 ns, offset 127)
Jul 18 16:29:39 localhost kernel: SCSI device sdb: 2097152 512-byte hdwr sectors (1074 MB)
Jul 18 16:29:39 localhost kernel: sdb: Write Protect is off
Jul 18 16:29:39 localhost kernel: sdb: cache data unavailable
Jul 18 16:29:39 localhost kernel: sdb: assuming drive cache: write through
Jul 18 16:29:39 localhost kernel: SCSI device sdb: 2097152 512-byte hdwr sectors (1074 MB)
Jul 18 16:29:39 localhost kernel: sdb: Write Protect is off
Jul 18 16:29:39 localhost kernel: sdb: cache data unavailable
Jul 18 16:29:39 localhost kernel: sdb: assuming drive cache: write through
Jul 18 16:29:39 localhost kernel:  sdb: unknown partition table
Jul 18 16:29:39 localhost kernel: sd 0:0:1:0: Attached scsi disk sdb
Jul 18 16:29:39 localhost kernel: sd 0:0:1:0: Attached scsi generic sg1 type 0
Jul 18 16:29:39 localhost kernel:   Vendor: VMware,   Model: VMware Virtual S  Rev: 1.0
Jul 18 16:29:39 localhost kernel:   Type:   Direct-Access                      ANSI SCSI revision: 02
Jul 18 16:29:39 localhost kernel:  target0:0:2: Beginning Domain Validation
Jul 18 16:29:39 localhost kernel:  target0:0:2: Domain Validation skipping write tests
Jul 18 16:29:39 localhost kernel:  target0:0:2: Ending Domain Validation
Jul 18 16:29:39 localhost kernel:  target0:0:2: FAST-40 WIDE SCSI 80.0 MB/s ST (25 ns, offset 127)
Jul 18 16:29:39 localhost kernel: SCSI device sdc: 2097152 512-byte hdwr sectors (1074 MB)
Jul 18 16:29:39 localhost kernel: sdc: Write Protect is off
Jul 18 16:29:39 localhost kernel: sdc: cache data unavailable
Jul 18 16:29:39 localhost kernel: sdc: assuming drive cache: write through
Jul 18 16:29:39 localhost kernel: SCSI device sdc: 2097152 512-byte hdwr sectors (1074 MB)
Jul 18 16:29:39 localhost kernel: sdc: Write Protect is off
Jul 18 16:29:39 localhost kernel: sdc: cache data unavailable
Jul 18 16:29:39 localhost kernel: sdc: assuming drive cache: write through
Jul 18 16:29:39 localhost kernel:  sdc: unknown partition table
Jul 18 16:29:39 localhost kernel: sd 0:0:2:0: Attached scsi disk sdc
Jul 18 16:29:39 localhost kernel: sd 0:0:2:0: Attached scsi generic sg2 type 0

How Do I Delete a Single Device Called /dev/sdc?

In addition to re-scanning the entire bus, a specific device can be added or existing device deleted using the following command:
# echo 1 /sys/block/devName/device/delete
# echo 1 /sys/block/sdc/device/delete

How Do I Add a Single Device Called /dev/sdc?

To add a single device explicitly, use the following syntax:
# echo "scsi add-single-device H B T L"  /proc/scsi/scsi
Where,
  • H : Host
  • B : Bus (Channel)
  • T : Target (Id)
  • L : LUN numbers
For e.g. add /dev/sdc with host # 0, bus # 0, target # 2, and LUN # 0, enter:
# echo "scsi add-single-device 0 0 2 0"/proc/scsi/scsi
# fdisk -l
# cat /proc/scsi/scsi


Sample Outputs:
Attached devices:
Host: scsi0 Channel: 00 Id: 00 Lun: 00
Vendor: VMware,  Model: VMware Virtual S Rev: 1.0
Type:   Direct-Access                    ANSI SCSI revision: 02
Host: scsi0 Channel: 00 Id: 01 Lun: 00
Vendor: VMware,  Model: VMware Virtual S Rev: 1.0
Type:   Direct-Access                    ANSI SCSI revision: 02
Host: scsi0 Channel: 00 Id: 02 Lun: 00
Vendor: VMware,  Model: VMware Virtual S Rev: 1.0
Type:   Direct-Access                    ANSI SCSI revision: 02

Step #3: Format a New Disk

Now, you can create partition using fdisk and format it using mkfs.ext3 command:
# fdisk /dev/sdc
# mkfs.ext3 /dev/sdc3

Step #4: Create a Mount Point And Update /etc/fstab

# mkdir /disk3

Open /etc/fstab file, enter:
# vi /etc/fstab

Append as follows:
/dev/sdc3               /disk3           ext3    defaults        1 2
Save and close the file.

Optional Task: Label the partition

You can label the partition using e2label. For example, if you want to label the new partition /backupDisk, enter
# e2label /dev/sdc1 /backupDisk

Conclusion

The VMware guest now has an additional virtualized storage device. The procedure works for all physical block devices, this includes CD-ROM, DVD and floppy devices. Next, time I will write about adding an additional virtualized storage device using XEN software.
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