Saturday, April 9, 2011

Google's eight habits of highly effective manager


Here are the eight habits of highly effective Google managers and three pitfalls.  The "good habits" are listed in order of priority, from most-important to least-important.
EIGHT HABITS OF HIGHLY EFFECTIVE MANAGERS
1. Be a good coach
     * Provide specific, constructive feedback, balancing negative and positive
     * Have regular one-on-ones, presenting solutions to problems tailored to the employee's strengths
2. Empower your team and don't micro-manage
    * Balance giving freedom to your employees while still being available for advice
    * Make "stretch" assignments to help them tackle big problems
3.  Express interest in employees' success and well-being
    * Get to know your employees as people, with lives outside of work
    * Make new folks feel welcome, help ease the transition
4.  Be productive and results-oriented
    * Focus on what you want the team to achieve and how employees can help achieve it
    * Help the team prioritize work, and make decisions to remove roadblocks
5.  Be a good communicator and listen to your team
    * Communication is two-way: Both listen and share
    * Hold all-hands meetings and be specific about the team's goals
    * Encourage open dialogue and listen to the questions and concerns of your employees
6.  Help your employees with career development
7.  Have a clear vision and strategy for the team
     * Even amid turmoil, keep the team focused on goals and strategy
     * Involve the team in setting and evolving the team's vision, goals, and progress
8.  Have key technical skills, so you can help advise the team
    * Roll up sleeves and work side-by-side with team, when needed
    * Understand the specific challenges of the work


THREE PITFALLS
1.  Have trouble making transition to team leader
    * Fantastic individual performers are often promoted to manager without the necessary skills to lead
    * People hired from outside often don't understand the specific ways of the company
2.  Lack a consistent approach to performance management and career development
    * Doesn't help employees understand what company wants
    * Doesn't coach employees on how they can develop and stretch
    * Not proactive: Waits for the employees to come to them
3.  Spend too little time on managing and communicating

Tuesday, April 5, 2011

VC & ESX Builds


vCenter and VirtualCenter

vCenter Server 4.1              Update 1                10 Feb 2011         Build 345043
vCenter Server 4.1                                          13 Jul 2010           Build 259021

vCenter Server 4.0              Update 2                10 Jun 2010          Build 258672
vCenter Server 4.0              Update 1                19 Nov 2009         Build 208156
vCenter Server 4.0              Update 1                19 Nov 2009         Build 208111
vCenter Server 4.0                                           05 May 2009        Build 162902

VirtualCenter 2.5 Server    Update 5                10 Jul 2009           Build 174791
VirtualCenter 2.5 Server    Update 4                23 Feb 2009         Build 147633
VirtualCenter 2.5 Server    Update 3                03 Oct 2008          Build 119598
VirtualCenter 2.5 Server    Update 2                25 July 2008         Build 104217
VirtualCenter 2.5 Server    Update 1                10 Apr 2008         Build 84767
VirtualCenter 2.5 Server                                 10 Dec 2007         Build 64201

ESX and ESXi

VMware ESXi 4.1                 Update 1                10 Feb 2011         Build 348481
VMware ESXi 4.1                                              13 Jul 2010           Build 260247

VMware ESXi 4.0                 Update 2                10 Jun 2010          Build 261974VMware ESXi 4.0                 Update 1                19 Nov 2009         Build 208167VMware ESXi 4.0                                              21 May 2009        Build 164009

VMware ESX Server 3.5      Update 5                03 Dec 2009         Build 207095
VMware ESX Server 3.5      Update 4                30 Mar 2009         Build 153875
VMware ESX Server 3.5      Update 3                06 Nov 2008         Build 123630
VMware ESX Server 3.5      Update 2                13 Aug 2008         Build 110268
VMware ESX Server 3.5      Update 2                12 Aug 2008         Build 103908 (time bug issue)
VMware ESX Server 3.5      Update 1                10 Apr 2008         Build 82663
VMware ESX Server 3.5                                   20 Feb 2008         Build 64607

Thursday, February 10, 2011

Storage Replication


Storage Replication

Array-Based Replication
Server-Based Replication
SAN-Based Replication: A New Alternative

SRDF
SRDF (Symmetrix Remote Data Facility) is a family of EMC products that facilitates the data replication from one Symmetrix storage array to another through a Storage Area Network or IP network.

SRDF logically pairs a device or a group of devices from each array and replicates data from one to the other synchronously or asynchronously. An established pair of devices can be split, so that separate hosts can access the same data independently (maybe for backup), and then resynchronised.

In synchronous mode (SRDF/S), the primary array waits until the secondary array has acknowledged each write before the next write is accepted, ensuring that the replicated copy of the data is always as current as the primary. However, the latency due to propagation increases significantly with distance.

Asynchronous SRDF (SRDF/A) transfers changes to the secondary array in units called delta sets, which are transferred at defined intervals. Although the remote copy of the data will never be as current as the primary copy, this method can replicate data over considerable distances and with reduced bandwidth requirements and mimimal impact on host performance.

NetBackup Licensing


NetBackup licensing
Each server that you backup over the LAN needs a Standard Client license.  Each server backed up over the SAN needs an enterprise client license.  Each virtual machine backing up as a regular client will require a Standard client license.  Each virtual machine that will leverage Netbackup VCB integration, will require an Enterprise client license.

Each robotic tape drive will need a library based tape drive license.

The Netbackup server and NetBackup enterprise server license does not include any robotic tape drive licenses.

Application and Database licenses are licensed per database and per system, so you will need 2 Application and DataBase Pack Licenses to perform hot backups for both Oracle and Sybase.  Since both databases are running on the same OS, there is no need to purchase an additional client license

Storage Tiers


Storage Tier
0 - Special Functionality
1 - Enterprise (15,000 rpm)
2 - Modular (10,000 rpm)
3 - General Purpose (7,200 rpm SATA)
Connectivity Tier :
A - Fibre Attached
B - iSCSI Attached
C - NAS

Regular Charge Includes:
– Storage Frames
– Disk capacity,
– Switch fabric and related fibre cabling.
– Storage capacity for Unix, Linux and Windows server systems
– RAID 5 based storage.
– Data Centre costs
– Third party premium maintenance
– Depreciation of storage infrastructure

Regular Charge DOES NOT Include:
– Server based licenses for SAN attachment (mutli-pathing software or volume manager software)
– Host Bus Adaptors for connection of fibre
– Fibre cabling from the customer server up to the storage fabric switch
– Replication software (available as Tier 0)
– Bandwidth and protocol convertors for cross site replication
– Effort required to implement project requirements
– Effort to administer and manage the SAN solution

C N A, Converged Network Adapters


Fibre Channel over Ethernet (FCoE) is an encapsulation of Fibre Channel frames over Ethernet networks. This allows Fibre Channel to use 10 Gigabit Ethernet networks (or higher speeds) while preserving the Fibre Channel protocol.
Many data centers use Ethernet for TCP/IP networks and Fibre Channel for storage area networks (SANs). With FCoE, Fibre Channel becomes another network protocol running on Ethernet, alongside traditional Internet Protocol (IP) traffic. FCoE operates directly above Ethernet in the network protocol stack, in contrast to iSCSI which runs on top of TCP and IP. As a consequence, FCoE is not routable at the IP layer, and will not work across routed IP networks.
Computers connect to FCoE with Converged Network Adapters (CNAs), which contain both Fibre Channel Host Bus Adapter (HBA) and Ethernet Network Interface Card (NIC) functionality on the same adapter card. CNAs have one or more physical Ethernet ports. FCoE encapsulation can be done in software with a conventional Ethernet network interface card, however FCoE CNAs offload (from the CPU) the low level frame processing and SCSI protocol functions traditionally performed by Fibre Channel host bus adapters.

Tuesday, February 1, 2011

Intel Virtualization Technolog


Intel Virtualization Technology (VT). Formerly known as Vanderpool, this technology enables a CPU to act as if it were several CPUs working in parallel, in order to enable several operating systems to run at the same time in the same machine. In this tutorial we will explain everything you need to know about this new technology.

You may confuse virtualization with multitasking or even with Hyper-Threading. On multitasking, there is a single operating system and several programs running in parallel.  On virtualization, you can have several operating systems running in parallel, each one with several programs running. Each operating system runs on a “virtual CPU” or “virtual machine”. And Hyper-Threading simulates two CPUs where there is just one physical CPU for balancing performance using SMP (Symmetric Multi Processing), and these two CPUs cannot be used separately.

Of course if a CPU has both Hyper-Threading and Virtualization Technology each virtual CPU will appear to the operating system as if two CPUs are available on the system for symmetric multiprocessing.

If you pay close attention, Virtualization Technology uses the same idea of Virtual 8086 (V86) mode, which is available since 386’s. With V86 mode you can create several virtual 8086 machines to run DOS-based programs in parallel. With VT you can create several “complete” virtual machines to run full operating systems in parallel.

CPUs with Virtualization Technology have some new instructions to control virtualization. With them, controlling software (called VMM, Virtual Machine Monitor) can be simpler, thus improving performance compared to software-only solutions.

How It Works ?
Processors with Virtualization Technology have an extra instruction set called Virtual Machine Extensions or VMX. VMX brings 10 new virtualization-specific instructions to the CPU: VMPTRLD, VMPTRST, VMCLEAR, VMREAD, VMWRITE, VMCALL, VMLAUCH, VMRESUME, VMXOFF and VMXON.

There are two modes to run under virtualization: root operation and non-root operation. Usually only the virtualization controlling software, called Virtual Machine Monitor (VMM), runs under root operation, while operating systems running on top of the virtual machines run under non-root operation. Software running on top of virtual machines is also called “guest software”.

To enter virtualization mode, the software should execute the VMXON instruction and then call the VMM software. Then VMM software can enter each virtual machine using the VMLAUNCH instruction, and exit it by using the VMRESUME. If VMM wants to shutdown and exit virtualization mode, it executes the VMXOFF instruction.

S C S I


SCSI
Small Computer System Interface, or SCSI (pronounced scuzzy[1]), is a set of standards for physically connecting and transferring data between computers and peripheral devices. The SCSI standards define commands, protocols, and electrical and optical interfaces. SCSI is most commonly used for hard disks and tape drives, but it can connect a wide range of other devices, including scanners and CD drives. The SCSI standard defines command sets for specific peripheral device types; the presence of "unknown" as one of these types means that in theory it can be used as an interface to almost any device, but the standard is highly pragmatic and addressed toward commercial requirements.
SCSI is an intelligent, peripheral, buffered, peer to peer interface. It hides the complexity of physical format. Every device attaches to the SCSI bus in a similar manner. Up to 8 or 16 devices can be attached to a single bus. There can be any number of hosts and peripheral devices but there should be at least one host. SCSI uses hand shake signals between devices, SCSI-1, SCSI-2 have the option of parity error checking. Starting with SCSI-U160 (part of SCSI-3) all commands and data are error checked by a CRC32 checksum. The SCSI protocol defines communication from host to host, host to a peripheral device, peripheral device to a peripheral device. However most peripheral devices are exclusively SCSI targets, incapable of acting as SCSI initiators—unable to initiate SCSI transactions themselves. Therefore peripheral-to-peripheral communications are uncommon, but possible in most SCSI applications. The Symbios Logic 53C810 chip is an example of a PCI host interface that can act as a SCSI target.

SAS
Serial Attached SCSI (SAS) is a computer bus used to move data to and from computer storage devices such as hard drives and tape drives. SAS depends on a point-to-point serial protocol that replaces the parallel SCSI bus technology that first appeared in the mid 1980s in data centers and workstations, and it uses the standard SCSI command set. SAS offers backwards-compatibility with second-generation SATA drives. SATA 3 Gbit/s drives may be connected to SAS backplanes, but SAS drives may not be connected to SATA backplanes.

SATA
Serial ATA (SATA or Serial Advanced Technology Attachment) is a computer bus interface for connecting host bus adapters to mass storage devices such as hard disk drives and optical drives. Serial ATA was designed to replace the older ATA (AT Attachment) standard (also known as EIDE). It is able to use the same low level commands, but serial ATA host-adapters and devices communicate via a high-speed serial cable over two pairs of conductors. In contrast, the parallel ATA (the redesignation for the legacy ATA specifications) used 16 data conductors each operating at a much lower speed.
SATA offers several advantages over the older parallel ATA (PATA) interface: reduced cable-bulk and cost (reduced from 80 wires to seven), faster and more efficient data transfer, and hot swapping.
The SATA host adapter is integrated into almost all modern consumer laptop computers and desktop motherboards. As of 2009, SATA has replaced parallel ATA in most shipping consumer PCs. PATA remains in industrial and embedded applications dependent on CompactFlash storage although the new CFast storage standard will be based on SATA.[2][3]

iSCSI
In computing, iSCSI (pronounced /aɪˈskʌzi/ "eye-scuzzy"), is an abbreviation of Internet Small Computer System Interface, an Internet Protocol (IP)-based storage networking standard for linking data storage facilities. By carrying SCSI commands over IP networks, iSCSI is used to facilitate data transfers over intranets and to manage storage over long distances. iSCSI can be used to transmit data over local area networks (LANs), wide area networks (WANs), or the Internet and can enable location-independent data storage and retrieval. The protocol allows clients (called initiators) to send SCSI commands (CDBs) to SCSI storage devices (targets) on remote servers. It is a popular Storage Area Network (SAN) protocol, allowing organizations to consolidate storage into data center storage arrays while providing hosts (such as database and web servers) with the illusion of locally-attached disks. Unlike traditional Fibre Channel, which requires special-purpose cabling, iSCSI can be run over long distances using existing network infrastructure.