tutorial - How to install Microsoft Fonts in OpenSuse 11

Open and konsole or terminal

Now to to your home directory type “cd /home/Username/ and type the following commands to get and install Microsoft Fonts on your OpenSuse 11 box.

wget http://download.opensuse.org/update/10.3/scripts/fetchmsttfonts.sh
chmod a+x fetchmsttfonts.sh
sudo sh fetchmsttfonts.sh

Once installation is done, you may delete the file fetchmsttfonts.sh of your desktop.


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source:http://linuxpoison.blogspot.com/2008/06/135781758013324.html

tutorial - HowTo configure Dial-Up internet connection in Ubuntu

First go to System->administration ->Netwok, when a dialog appear, click Unlock, enter password.

Click Point-to-Point connection, then fill in the dialog with your dial-up internet account details, as shown.

Click OK to confirm your selection, and you are done.

Click the modem tab, put in your modem device port, typically it should be a serial device or /dev/modem

Hopefully this should be able to help you get on the internet!


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source:http://linuxpoison.blogspot.com/2008/06/13578175808340.html

tutorial - atunes - iTunes/Winamp/Amarok killer


aTunes is a full-featured audio player and manager, developed in Java programming language, so it can be executed on different platforms: Windows, Linux and Unix-like systems, ...

Currently plays mp3, ogg, wma, wav, flac, mp4 and radio streaming, allowing users to easily edit tags, organize music and rip Audio CDs.

This media player uses the open source MPlayer engine and is built on Java, which means you can run it on pretty much any devices that supports Java. There's also a Windows installer which makes running aTunes on Windows.

Features:

* Supported formats: mp3, ogg, wma, wav, flac, mp4, ra, rm
* Online radio supported
* Player engine: mplayer
* Volume control, mute function
* Karaoke function
* Equalizer
* Shuffle and repeat options
* OSD (On-screen display)

More feature list

Download : here


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source:http://linuxpoison.blogspot.com/2008/06/135781758018831.html

tutorial - The Kernel Boot Process

The previous post explained how computers boot up right up to the point where the boot loader, after stuffing the kernel image into memory, is about to jump into the kernel entry point. This last post about booting takes a look at the guts of the kernel to see how an operating system starts life. Since I have an empirical bent I’ll link heavily to the sources for Linux kernel 2.6.25.6 at the Linux Cross Reference. The sources are very readable if you are familiar with C-like syntax; even if you miss some details you can get the gist of what’s happening. The main obstacle is the lack of context around some of the code, such as when or why it runs or the underlying features of the machine. I hope to provide a bit of that context. Due to brevity (hah!) a lot of fun stuff - like interrupts and memory - gets only a nod for now. The post ends with the highlights for the Windows boot.

At this point in the Intel x86 boot story the processor is running in real-mode, is able to address 1 MB of memory, and RAM looks like this for a modern Linux system:

RAM contents after boot loader runs
RAM contents after boot loader is done

The kernel image has been loaded to memory by the boot loader using the BIOS disk I/O services. This image is an exact copy of the file in your hard drive that contains the kernel, e.g. /boot/vmlinuz-2.6.22-14-server. The image is split into two pieces: a small part containing the real-mode kernel code is loaded below the 640K barrier; the bulk of the kernel, which runs in protected mode, is loaded after the first megabyte of memory.

The action starts in the real-mode kernel header pictured above. This region of memory is used to implement the Linux boot protocol between the boot loader and the kernel. Some of the values there are read by the boot loader while doing its work. These include amenities such as a human-readable string containing the kernel version, but also crucial information like the size of the real-mode kernel piece. The boot loader also writes values to this region, such as the memory address for the command-line parameters given by the user in the boot menu. Once the boot loader is finished it has filled in all of the parameters required by the kernel header. It’s then time to jump into the kernel entry point. The diagram below shows the code sequence for the kernel initialization, along with source directories, files, and line numbers:

Architecture-specific Linux Kernel Initialization
Architecture-specific Linux Kernel Initialization

The early kernel start-up for the Intel architecture is in file arch/x86/boot/header.S. It’s in assembly language, which is rare for the kernel at large but common for boot code. The start of this file actually contains boot sector code, a left over from the days when Linux could work without a boot loader. Nowadays this boot sector, if executed, only prints a “bugger_off_msg” to the user and reboots. Modern boot loaders ignore this legacy code. After the boot sector code we have the first 15 bytes of the real-mode kernel header; these two pieces together add up to 512 bytes, the size of a typical disk sector on Intel hardware.

After these 512 bytes, at offset 0×200, we find the very first instruction that runs as part of the Linux kernel: the real-mode entry point. It’s in header.S:110 and it is a 2-byte jump written directly in machine code as 0×3aeb. You can verify this by running hexdump on your kernel image and seeing the bytes at that offset - just a sanity check to make sure it’s not all a dream. The boot loader jumps into this location when it is finished, which in turn jumps to header.S:229 where we have a regular assembly routine called start_of_setup. This short routine sets up a stack, zeroes the bss segment (the area that contains static variables, so they start with zero values) for the real-mode kernel and then jumps to good old C code at arch/x86/boot/main.c:122.

main() does some house keeping like detecting memory layout, setting a video mode, etc. It then calls go_to_protected_mode(). Before the CPU can be set to protected mode, however, a few tasks must be done. There are two main issues: interrupts and memory. In real-mode the interrupt vector table for the processor is always at memory address 0, whereas in protected mode the location of the interrupt vector table is stored in a CPU register called IDTR. Meanwhile, the translation of logical memory addresses (the ones programs manipulate) to linear memory addresses (a raw number from 0 to the top of the memory) is different between real-mode and protected mode. Protected mode requires a register called GDTR to be loaded with the address of a Global Descriptor Table for memory. So go_to_protected_mode() calls setup_idt() and setup_gdt() to install a temporary interrupt descriptor table and global descriptor table.

We’re now ready for the plunge into protected mode, which is done by protected_mode_jump, another assembly routine. This routine enables protected mode by setting the PE bit in the CR0 CPU register. At this point we’re running with paging disabled; paging is an optional feature of the processor, even in protected mode, and there’s no need for it yet. What’s important is that we’re no longer confined to the 640K barrier and can now address up to 4GB of RAM. The routine then calls the 32-bit kernel entry point, which is startup_32 for compressed kernels. This routine does some basic register initializations and calls decompress_kernel(), a C function to do the actual decompression.

decompress_kernel() prints the familiar “Decompressing Linux…” message. Decompression happens in-place and once it’s finished the uncompressed kernel image has overwritten the compressed one pictured in the first diagram. Hence the uncompressed contents also start at 1MB. decompress_kernel() then prints “done.” and the comforting “Booting the kernel.” By “Booting” it means a jump to the final entry point in this whole story, given to Linus by God himself atop Mountain Halti, which is the protected-mode kernel entry point at the start of the second megabyte of RAM (0×100000). That sacred location contains a routine called, uh, startup_32. But this one is in a different directory, you see.

The second incarnation of startup_32 is also an assembly routine, but it contains 32-bit mode initializations. It clears the bss segment for the protected-mode kernel (which is the true kernel that will now run until the machine reboots or shuts down), sets up the final global descriptor table for memory, builds page tables so that paging can be turned on, enables paging, initializes a stack, creates the final interrupt descriptor table, and finally jumps to to the architecture-independent kernel start-up, start_kernel(). The diagram below shows the code flow for the last leg of the boot:

Architecture-independent Linux Kernel Initialization
Architecture-independent Linux Kernel Initialization

start_kernel() looks more like typical kernel code, which is nearly all C and machine independent. The function is a long list of calls to initializations of the various kernel subsystems and data structures. These include the scheduler, memory zones, time keeping, and so on. start_kernel() then calls rest_init(), at which point things are almost all working. rest_init() creates a kernel thread passing another function, kernel_init(), as the entry point. rest_init() then calls schedule() to kickstart task scheduling and goes to sleep by calling cpu_idle(), which is the idle thread for the Linux kernel. cpu_idle() runs forever and so does process zero, which hosts it. Whenever there is work to do - a runnable process - process zero gets booted out of the CPU, only to return when no runnable processes are available.

But here’s the kicker for us. This idle loop is the end of the long thread we followed since boot, it’s the final descendent of the very first jump executed by the processor after power up. All of this mess, from reset vector to BIOS to MBR to boot loader to real-mode kernel to protected-mode kernel, all of it leads right here, jump by jump by jump it ends in the idle loop for the boot processor, cpu_idle(). Which is really kind of cool. However, this can’t be the whole story otherwise the computer would do no work.

At this point, the kernel thread started previously is ready to kick in, displacing process 0 and its idle thread. And so it does, at which point kernel_init() starts running since it was given as the thread entry point. kernel_init() is responsible for initializing the remaining CPUs in the system, which have been halted since boot. All of the code we’ve seen so far has been executed in a single CPU, called the boot processor. As the other CPUs, called application processors, are started they come up in real-mode and must run through several initializations as well. Many of the code paths are common, as you can see in the code for startup_32, but there are slight forks taken by the late-coming application processors. Finally, kernel_init() calls init_post(), which tries to execute a user-mode process in the following order: /sbin/init, /etc/init, /bin/init, and /bin/sh. If all fail, the kernel will panic. Luckily init is usually there, and starts running as PID 1. It checks its configuration file to figure out which processes to launch, which might include X11 Windows, programs for logging in on the console, network daemons, and so on. Thus ends the boot process as yet another Linux box starts running somewhere. May your uptime be long and untroubled.

The process for Windows is similar in many ways, given the common architecture. Many of the same problems are faced and similar initializations must be done. When it comes to boot one of the biggest differences is that Windows packs all of the real-mode kernel code, and some of the initial protected mode code, into the boot loader itself (C:\NTLDR). So instead of having two regions in the same kernel image, Windows uses different binary images. Plus Linux completely separates boot loader and kernel; in a way this automatically falls out of the open source process. The diagram below shows the main bits for the Windows kernel:

Windows Kernel Initialization
Windows Kernel Initialization

The Windows user-mode start-up is naturally very different. There’s no /sbin/init, but rather Csrss.exe and Winlogon.exe. Winlogon spawns Services.exe, which starts all of the Windows Services, and Lsass.exe, the local security authentication subsystem. The classic Windows login dialog runs in the context of Winlogon.

This is the end of this boot series. Thanks everyone for reading and for feedback. I’m sorry some things got superficial treatment; I’ve gotta start somewhere and only so much fits into blog-sized bites. But nothing like a day after the next; my plan is to do regular “Software Illustrated” posts like this series along with other topics. Meanwhile, here are some resources:

  • The best, most important resource, is source code for real kernels, either Linux or one of the BSDs.
  • Intel publishes excellent Software Developer’s Manuals, which you can download for free.
  • Understanding the Linux Kernel is a good book and walks through a lot of the Linux Kernel sources. It’s getting outdated and it’s dry, but I’d still recommend it to anyone who wants to grok the kernel. Linux Device Drivers is more fun, teaches well, but is limited in scope. Finally, Patrick Moroney suggested Linux Kernel Development by Robert Love in the comments for this post. I’ve heard other positive reviews for that book, so it sounds worth checking out.
  • For Windows, the best reference by far is Windows Internals by David Solomon and Mark Russinovich, the latter of Sysinternals fame. This is a great book, well-written and thorough. The main downside is the lack of source code.
Source: http://duartes.org/gustavo/blog/post/kernel-boot-process


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source:http://linuxpoison.blogspot.com/2008/06/135781758012096.html

tutorial - How to run IE (Internet Explorer) in OpenSuse

IEs4Linux is the simpler way to have Microsoft Internet Explorer running on Linux (or any OS running Wine). WINE is a opensource Windows API implementation for the Linux platform and IEs4Linux is the “installer” which will download, install and get IE to work with WINE.

1. Add the WINE repository for openSUSE 11.

YaST2 -> Software -> Software Repositories.

http://download.opensuse.org/repositories/Emulators:/Wine/openSUSE_11.0/

2. Install the WINE and cabextract package.

YaST2 -> Software -> Software Management.

3. Download IEs4Linux from here or use the command line method shown below.

wget http://www.tatanka.com.br/ies4linux/downloads/ies4linux-latest.tar.gz

4. Extract and run the IEs4Linux installer. You don’t need to be root for this.

tar zxvf ies4linux-latest.tar.gz
cd ies4linux-*
./ies4linux


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source:http://linuxpoison.blogspot.com/2008/06/135781758010122.html

tutorial - Security Audit Tool for Linux (must have) - Lynis


Lynis is an auditing tool for Unix (specialists). It scans the system configuration and creates an overview of system information and security issues usable by professional auditors.

This software aims in assisting automated auditing of Unix based systems and can be used in addition to other software, like security scanners, system benchmarking and fine tuning tools.

Examples of audit tests:
- Available authentication methods
- Expired SSL certificates
- Outdated software
- User accounts without password
- Incorrect file permissions
- Firewall auditing

Supported operating systems

- CentOS 5
- Debian 4.0
- Fedora Core 4 and higher
- FreeBSD 6.x, 7.0
- Mac OS X 10.x (Tiger, Leopard)
- Mandriva 2007
- OpenBSD 4.x
- OpenSolaris
- OpenSuSE
- PcBSD
- Red Hat, RHEL 5.x
- Slackware 12.1
- Ubuntu 7.04, 7.10, 8.04

Using Lynis : Basics

To run Lynis you should meet a few requirements:
- You have to be root (log in as normal user, su to root)
or have equivalent rights (for example by using sudo).
- Have write access to /var/log (for using a log/debug and report file)
- Have write access to /tmp (temporary files)

Depending on the installation or the path you run Lynis from, you can start it with 'lynis' (if installed and the file is available in your binary path) or 'sh lynis' or './lynis'.


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source:http://linuxpoison.blogspot.com/2008/06/135781758019983.html

tutorial - Nipper - The Network Infrastructure Parser


Nipper enables network administrators, security professionals and auditors to quickly produce reports on key network infrastructure devices.

The report can include a detailed security audit of the device settings or be a configuration report, the output is customisable. Nipper supports a wide variety of devices from different manufacturers such as Cisco, Nokia, Juniper, CheckPoint and Nortel.

Installation:

If you have GNU make, then you can make use of the Makefile provided with Nipper. The procedure is as follows:

1. Download the latest Nipper source code - here.
2. Extract the source code.
3. Change directory to the source code directory.
4. Run make
5. As a privileged user, run make install

Device Support

Nipper supports a variety of different types of device from different manufacturers. With each new version of Nipper, this support is enhanced, expanded and more device types added. The current version of Nipper supports the following different types of device:

* Bay Networks Accelar
* CheckPoint VPN-1/Firewall-1
* Cisco Catalysts (IOS, CatOS and NMP)
* Cisco Content Services Switch (CSS)
* Cisco Routers (IOS)
* Cisco Security Applicances (PIX, ASA and FWSM)
* Juniper NetScreens
* Nokia IP Firewalls
* Notel Passports
* SonicWALL SonicOS Firewalls

Reporting

Nipper supports several different report formats with a good chance that more will be added in the future. The current supported formats are:

* HTML
* XML
* Latex
* ASCII text


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source:http://linuxpoison.blogspot.com/2008/06/135781758016676.html

tutorial - Default password list in the system/Application

Why? because most system administrator forget to change their default password in the system. So basically during the first assessment or audit, just go through using this default password to enter the system. What you need is to search this following site to get default password update.

Password Generic System
This following resources provide information about detail password in many type of system

http://www.phenoelit-us.org/dpl/dpl.html
http://www.cirt.net/passwords
http://www.dopeman.org/default_passwords.html
http://www.redoracle.com/index.php?option=com_password&task=rlist
http://www.virus.org/default-password/

2. Network Devices Specific (Router, Firewall, IPS System)
http://www.routerpasswords.com/
http://www.governmentsecurity.org/

3. System Specific
Oracle Specific
http://www.petefinnigan.com/default/default_password_list.htm

SAP Specific
http://www.petefinnigan.com/default/sap_default_users.htm

Cisco Specific
http://www.cisco.com/warp/public/707/cisco-sa-20040407-username.shtml


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source:http://linuxpoison.blogspot.com/2008/06/135781758012946.html

tutorial - How To Create and modify ISO images

ISO Master is an open source application for Linux for creating and modifying ISO9660 files (ISO images).

Features:
Create an ISO image from scratch.
Add or remove files and directories to/from a CD image.
Create bootable CDs using various boot record types: no-emulation (isolinux, Microsoft Windows), 1.2, 1.44 and 2.88 floppy disk emulation.
Support for Rock Ridge and Joliet file names.

ISO Master can read .ISO files (ISO9660, Joliet, RockRidge, and El Torito), most .NRG files, and some single-track .MDF files; it can save only as .ISO.

Download: Here


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source:http://linuxpoison.blogspot.com/2008/06/135781758011766.html

tutorial - Reviews on openSUSE 11.0

This is a very strong OpenSUSE release with a lot of compelling improvements. OpenSUSE 11 offers the best KDE 4 experience. OpenSUSE 11 is also an increasingly solid choice for GNOME users …”

You run Linux already but want to install 11.0? DVD image takes too long to download? Don’t want to waste a CD for the mini iso? A router connects you to the internet? Check out setupgrubfornfsinstall. It’s a dialog based shell script to prepare remote network installations. It was primarily made for use in LANs but now also supports direct installation from opensuse.org. Just run the script, select 11.0 and it will download the kernel and initrd used for installation. After that it adds an entry to your boot loaders’ config file with proper parameters. Reboot, select the new entry and the installation starts.

For Firefox Wallpaper : here


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source:http://linuxpoison.blogspot.com/2008/06/135781758016587.html

tutorial - Compiz Fusion Settings in OpenSuse 11

For openSUSE 11.0, Stefan Dirsch and the rest of the openSUSE Xorg team has worked hard to ensure that AIGLX is enabled by default for all supported hardware. This means that you can run Compiz or other desktop effects such as those in KDE 4 without having to directly enable Xgl or edit xorg.conf manually. Compiz Fusion project has matured significantly, complementing Compiz with extra plugins, a new settings configuration tool, and it is now installed by default on all openSUSE 11.0 installations.

Compiz Fusion comes with a simple settings manager (Simple CCSM) which also allows you to enable and disable Compiz in both KDE and GNOME. It can be found as the Desktop Effects application in the main menu. From here you can change general settings and not have to worry about the details. You can choose from a selection of pre-configured profiles: from anything such as minimal effects, to the full-blown “Hollywood’s got Nothing” profile, giving you countless of extra effects and plugins.

Simple CCSM Simple CCSM 2
Compiz Fusion now also comes with an in-depth and highly configurable settings manager: CompizConfig Settings Manager (ccsm), which is also available by default in openSUSE 11.0. From here you can change a whole horde of settings so that Compiz behaves precisely as you want, or you can even choose to enable a large selection of extra plugins providing new eye-candy or helpful other additions. Be mindful about the performance impact that this might have on less powerful computers.
CCSM
 
To find out how to use this and all other plugins, simply head over the Compiz Fusion Wiki at wiki.compiz-fusion.org. For trouble-shooting and general information about Compiz Fusion on openSUSE, see the Compiz Fusion wiki page.


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source:http://linuxpoison.blogspot.com/2008/06/135781758015262.html

tutorial - Network configuration for Debian

The network interfaces in debian are configured in /etc/network/interfaces. There are scripts to bring things up and down (i.e. "ifup eth0"), although "ifconfig eth0 up" should work, too. This would be a basic configurations...

If you want to get the ip using dhcp

#/etc/network/interfaces
# The loopback network interface
auto lo
iface lo inet loopback

# The primary network interface
auto eth0
iface eth0 inet dhcp

Or for a static IP

#/etc/network/interfaces
# The loopback network interface
auto lo
iface lo inet loopback

# The primary network interface
auto eth0
iface eth0 inet static
address 192.168.0.100
netmask 255.255.255.0
gateway 192.168.0.1
broadcast 192.168.0.255


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source:http://linuxpoison.blogspot.com/2008/07/135781758017960.html

tutorial - Linux Testing and Benchmarking Package - Phoronix Test Suite

The Phoronix Test Suite is the most comprehensive testing and benchmarking platform available for Linux and is designed to carry out qualitative and quantitative benchmarks in a clean, reproducible, and easy-to-use manner. This software is based upon the internal tools and extensive Linux benchmarking work done by Phoronix since 2004, with input from tier-one computer hardware vendors. This software is open-source and licensed under the GNU GPLv3 and consists of a lightweight core (pts-core) with each benchmark consisting of an XML-based profile with related utility scripts. The process from the benchmark installation, to the actual benchmarking, to the parsing of important hardware and software components is heavily automated and completely repeatable, asking users only for confirmation of actions.
The Phoronix Test Suite can be used for simply comparing your computer's performance with your friends and co-workers or can also be used at your company for internal quality assurance purposes under Linux. Results from the Phoronix Test Suite are displayed in a results viewer with optional support for uploading them to PTS Global. PTS Global allows you to browse all uploaded results, search these results (coming soon), and comparing other results against your own system.
This benchmarking software with all benchmarking profiles can be found on the downloads page. The latest development code is housed at Phorogit, the public git repository hosted by Phoronix. All support inquiries and discussions can be directed to the Phoronix Test Suite Forum.
If you're interested in getting involved with the Phoronix Test Suite as either a developer or profile/suite maintainer for your favorite software package(s) (or other software that you develop), contact phoronix [at] phoronix.com as we do welcome user contributions.
Phoronix Test Suite 1.0 is codenamed "Trondheim."


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source:http://linuxpoison.blogspot.com/2008/06/13578175806826.html

tutorial - How authentication work between web server and Browser

When a particular resource has been protected using basic authentication, Apache sends a 401 Authentication Required header with the response to the request, in order to notify the client that user credentials must be supplied in order for the resource to be returned as requested.

Upon receiving a 401 response header, the client’s browser, if it supports basic authentication, will ask the user to supply a username and password to be sent to the server. If you are using a graphical browser, such as Netscape or Internet Explorer, what you will see is a box which pops up and gives you a place to type in your username and password, to be sent back to the server. If the username is in the approved list, and if the password supplied is correct, the resource will be returned to the client.

Because the HTTP protocol is stateless, each request will be treated in the same way, even though they are from the same client. That is, every resource which is requested from the server will have to supply authentication credentials over again in order to receive the resource.

Fortunately, the browser takes care of the details here, so that you only have to type in your username and password one time per browser session - that is, you might have to type it in again the next time you open up your browser and visit the same web site.

Along with the 401 response, certain other information will be passed back to the client. In particular, it sends a name which is associated with the protected area of the web site. This is called the realm, or just the authentication name. The client browser caches the username and password that you supplied, and stores it along with the authentication realm, so that if other resources are requested from the same realm, the same username and password can be returned to authenticate that request without requiring the user to type them in again. This caching is usually just for the current browser session, but some browsers allow you to store them permanently, so that you never have to type in your password again.

The authentication name, or realm, will appear in the pop-up box, in order to identify what the username and password are being requested for.


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source:http://linuxpoison.blogspot.com/2008/07/135781758018777.html

tutorial - 42 of the Best Free Linux Audio Software

To provide an insight into the quality of software that is available, we have compiled a list of 42 high quality Linux audio applications, covering a broad range of different uses. Most of the titles included here are desktop applications sporting an attractive front-end, although we have not forgotten console software.

We intend to examine audio programming languages (both text and graphical based) in a future article, including the impressive Csound. We also will cover the commercial Linux audio scene in a later article. Software such as Transcribe! (transcribe recorded music), MuSing (rhythm maker), energyXT2 (music production) are likely to figure in that article.

It's worth mentioning that there are a number of Linux distributions that specialise in multimedia and digital content creation platforms. These include 64 Studio, DeMiDi, dyne:bolic and Ubuntu Studio. Besides packaging and configuring audio applications, these distros also typically feature a kernel that has been modified for intensive audio work, helping to reduce audio latency.

Now, let's explore the 42 audio applications at hand. For each title we have compiled its own portal page, providing a screenshot of the software in action, a full description with an in-depth analysis of its features, together with links to relevant resources and reviews.

More Here


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source:http://linuxpoison.blogspot.com/2008/07/13578175802716.html

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