Tuesday, 3 May 2011

ABOUT DAIRY

A dairy farm near Oxford New York in the United States.

A dairy is a building used for the harvesting of animal milk—mostly from cows or goats, but also from buffalo, sheep, horses or camels —for human consumption. A dairy is typically located on a dedicated dairy farm or section of a multi-purpose farm that is concerned with the harvesting of milk.

Terminology differs between countries. For example, in the United States, a farm building where milk is harvesting is often called a milking parlor. In New Zealand such a building is historically known as the milking shed - although in recent years there has been a progressive change to call such a building afarm dairy.

In some countries, especially those with small numbers of animals being milked, as well as harvesting the milk from an animal, the dairy may also process the milk into butter, cheese and yoghurt, for example. This is a traditional method of producing specialist milk products, especially in Europe. In the United States a dairy can also be a place that processes, distributes and sells dairy products, or a room, building or establishment where milk is stored and processed into milk products, such as butter or cheese. In New Zealand English the singular use of the word dairy almost exclusively refers to the cornerconvenience store, or superette. This usage is historical as such stores were a common place for the public to buy milk products.


As an attributive, the word dairy refers to milk-based products, derivatives and processes, and the animals and workers involved in their production: for example dairy cattle, dairy goat. A dairy farm produces milk and a dairy factory processes it into a variety of dairy products. These establishments constitute the dairy industry, a component of the food industry.

History

Milk producing animals have been domesticated for thousands of years. Initially, they were part of the subsistence farming that nomads engaged in. As the community moved about the country, their animals accompanied them. Protecting and feeding the animals were a big part of the symbiotic relationship between the animals and the herders.


In the more recent past, people in agricultural societies owned dairy animals that they milked for domestic and local (village) consumption, a typical example of a cottage industry. The animals might serve multiple purposes (for example, as a draught animal for pulling a plough as a youngster, and at the end of its useful life as meat). In this case the animals were normally milked by hand and the herd size was quite small, so that all of the animals could be milked in less than an hour—about 10 per milker. These tasks were performed by a dairymaid (dairywoman) or dairyman. The word dairy harkens back to Middle English dayerie, deyerie, from deye (female servant or dairymaid) and further back to Old English dæge (kneader of bread).


With industrialisation and urbanisation, the supply of milk became a commercial industry, with specialised breeds of cattle being developed for dairy, as distinct from beef or draught animals. Initially, more people were employed as milkers, but it soon turned to mechanisation with machines designed to do the milking.

Farmer milking a cow by hand.

Historically, the milking and the processing took place close together in space and time: on a dairy farm. People milked the animals by hand; on farms where only small numbers are kept, hand-milking may still be practiced. Hand-milking is accomplished by grasping the teats (often pronounced tit or tits) in the hand and expressing milk either by squeezing the fingers progressively, from the udder end to the tip, or by squeezing the teat between thumb and index finger, then moving the hand downward from udder towards the end of the teat. The action of the hand or fingers is designed to close off the milk duct at the udder (upper) end and, by the movement of the fingers, close the duct progressively to the tip to express the trapped milk. Each half or quarter of the udder is emptied one milk-duct capacity at a time.


The stripping action is repeated, using both hands for speed. Both methods result in the milk that was trapped in the milk duct being squirted out the end into a bucket that is supported between the knees (or rests on the ground) of the milker, who usually sits on a low stool.


Traditionally the cow, or cows, would stand in the field or paddock while being milked. Young stock, heifers, would have to be trained to remain still to be milked. In many countries, the cows were tethered to a post and milked. The problem with this method is that it relies on quiet, tractable beasts, because the hind end of the cow is not restrained.


In 1937, it was found that bovine somatotropin (bST or bovine growth hormone) would increase the yield of milk. Monsanto Company developed a synthetic (recombinant) version of this hormone (rBST). In February 1994, rBST was approved by the Food and Drug Administration (FDA) for use in the U.S. It has become common in the U.S., but not elsewhere, to inject it into milch kine dairy cows to increase their production by up to 15%.


However, there are claims that this practice can have negative consequences for the animals themselves. A European Union scientific commission was asked to report on the incidence of mastitis and other disorders in dairy cows, and on other aspects of the welfare of dairy cows.[1] The commission's statement, subsequently adopted by the European Union, stated that the use of rBST substantially increased health problems with cows, including foot problems, mastitis and injection site reactions, impinged on the welfare of the animals and caused reproductive disorders. The report concluded that on the basis of the health and welfare of the animals, rBST should not be used. Health Canada prohibited the sale of rBST in 1999; the recommendations of external committees were that, despite not finding a significant health risk to humans, the drug presented a threat to animal health and, for this reason, could not be sold in Canada.

Structure of the industry

Wawa Dairy Farms in Pennsylvania

While most countries produce their own milk products, the structure of the dairy industry varies in different parts of the world. In major milk-producing countries most milk is distributed through wholesale markets. In Ireland and Australia, for example, farmers' co-operatives own many of the large-scale processors, while in the United States many farmers and processors do business through individual contracts. In the United States, the country's 196 farmers' cooperatives sold 86% of milk in the U.S. in 2002, with five cooperatives accounting for half that. This was down from 2,300 cooperatives in the 1940s. In developing countries, the past practice of farmers marketing milk in their own neighborhoods are changing rapidly. Notable developments include considerable foreign investment in the dairy industry and a growing role for dairy cooperatives. Output of milk is growing rapidly in such countries and presents a major source of income growth for many farmers.

As in many other branches of the food industry, dairy processing in the major dairy producing countries has become increasingly concentrated, with fewer but larger and more efficient plants operated by fewer workers. This is notably the case in the United States, Europe, Australia and New Zealand. In 2009, charges of anti-trust violations have been made against major dairy industry players in the United States.

Government intervention in milk markets was common in the 20th century. A limited anti-trust exemption was created for U.S. dairy cooperatives by theCapper-Volstead Act of 1922. In the 1930s, some U.S. states adopted price controls, and Federal Milk Marketing Orders started under the Agricultural Marketing Agreement Act of 1937 and continue in the 2000s. The Federal Milk Price Support Program began in 1949. The Northeast Dairy Compact regulated wholesale milk prices in New England from 1997 to 2001.

Plants producing liquid milk and products with short shelf life, such as yogurts, creams and soft cheeses, tend to be located on the outskirts of urban centres close to consumer markets. Plants manufacturing items with longer shelf life, such as butter, milk powders, cheese and whey powders, tend to be situated in rural areas closer to the milk supply. Most large processing plants tend to specialise in a limited range of products. Exceptionally, however, large plants producing a wide range of products are still common in Eastern Europe, a holdover from the former centralized, supply-driven concept of the market.

As processing plants grow fewer and larger, they tend to acquire bigger, more automated and more efficient equipment. While this technological tendency keeps manufacturing costs lower, the need for long-distance transportation often increases the environmental impact.

Milk production is irregular, depending on cow biology. Producers must adjust the mix of milk which is sold in liquid form vs. processed foods (such as butter and cheese) depending on changing supply and demand.

Operation of the dairy farm

When it became necessary to milk larger numbers of cows, the cows would be brought to a shed or barn that was set up with bails (stalls) where the cows could be confined while they were milked. One person could milk more cows this way, as many as 20 for a skilled worker. But having cows standing about in the yard and shed waiting to be milked is not good for the cow, as she needs as much time in the paddock grazing as is possible. It is usual to restrict the twice-daily milking to a maximum of an hour and a half each time. It makes no difference whether one milks 10 or 1000 cows, the milking time should not exceed a total of about three hours each day for any cow.

As herd sizes increased there was more need to have efficient milking machines, sheds, milk-storage facilities (vats), bulk-milk transport and shed cleaning capabilities and the means of getting cows from paddock to shed and back.

Farmers found that cows would abandon their grazing area and walk towards the milking area when the time came for milking. This is not surprising as, in the flush of the milking season, cows presumably get very uncomfortable with udders engorged with milk, and the place of relief for them is the milking shed.

As herd numbers increased so did the problems of animal health. In New Zealand two approaches to this problem have been used. The first was improved veterinary medicines (and the government regulation of the medicines) that the farmer could use. The other was the creation of veterinary clubs where groups of farmers would employ a veterinarian (vet) full-time and share those services throughout the year. It was in the vet's interest to keep the animals healthy and reduce the number of calls from farmers, rather than to ensure that the farmer needed to call for service and pay regularly.

Most dairy farmers milk their cows with absolute regularity at a minimum of twice a day, with some high-producing herds milking up to four times a day to lessen the weight of large volumes of milk in the udder of the cow. This daily milking routine goes on for about 300 to 320 days per year that the cow stays in milk. Some small herds are milked once a day for about the last 20 days of the production cycle but this is not usual for large herds. If a cow is left unmilked just once she is likely to reduce milk-production almost immediately and the rest of the season may see her dried off(giving no milk) and still consuming feed for no production. However, once-a-day milking is now being practised more widely in New Zealand for profit and lifestyle reasons. This is effective because the fall in milk yield is at least partially offset by labour and cost savings from milking once per day. This compares to some intensive farm systems in the United States that milk three or more times per day due to higher milk yields per cow and lower marginal labor costs.

Farmers who are contracted to supply liquid milk for human consumption (as opposed to milk for processing into butter, cheese, and so on—see milk) often have to manage their herd so that the contracted number of cows are in milk the year round, or the required minimum milk output is maintained. This is done by mating cows outside their natural mating time so that the period when each cow in the herd is giving maximum production is in rotation throughout the year.

Northern hemisphere farmers who keep cows in barns almost all the year usually manage their herds to give continuous production of milk so that they get paid all year round. In the southern hemisphere the cooperative dairying systems allow for two months on no productivity because their systems are designed to take advantage of maximum grass and milk production in the spring and because the milk processing plants pay bonuses in the dry (winter) season to carry the farmers through the mid-winter break from milking. It also means that cows have a rest from milk production when they are most heavily pregnant. Some year-round milk farms are penalised financially for over-production at any time in the year by being unable to sell their overproduction at current prices.

Artificial insemination (AI) is common in all high-production herds.

Industrial processing

A Fonterra cooperative dairy factory in Australia.
Interior of a cheese factory in Seine-et-Marne, France

Dairy plants process the raw milk they receive from farmers so as to extend its marketable life. Two main types of processes are employed: heat treatment to ensure the safety of milk for human consumption and to lengthen its shelf-life, and dehydrating dairy products such as butter, hard cheese and milk powders so that they can be stored.

Cream and butter

Today, milk is separated by huge machines in bulk into cream and skim milk. The cream is processed to produce various consumer products, depending on its thickness, its suitability for culinary uses and consumer demand, which differs from place to place and country to country.

Some cream is dried and powdered, some is condensed (by evaporation) mixed with varying amounts of sugar and canned. Most cream from New Zealand and Australian factories is made into butter. This is done by churning the cream until the fat globules coagulate and form a monolithic mass. This butter mass is washed and, sometimes, salted to improve keeping qualities. The residual buttermilk goes on to further processing. The butter is packaged (25 to 50 kg boxes) and chilled for storage and sale. At a later stage these packages are broken down into home-consumption sized packs.

Skimmed milk

The product left after the cream is removed is called skim, or skimmed, milk.To make a consumable liquid a portion of cream is returned to the skim milk to make low fat milk (semi-skimmed) for human consumption. By varying the amount of cream returned, producers can make a variety of low-fat milks to suit their local market. Other products, such as calcium, vitamin D, and flavouring, are also added to appeal to consumers.

Casein

Casein is the predominant phosphoprotein found in fresh milk. It has a very wide range of uses from being a filler for human foods, such as in ice cream, to the manufacture of products such as fabric, adhesives, and plastics.

Cheese

Cheese is another product made from milk. Whole milk is reacted to form curds that can be compressed, processed and stored to form cheese. In countries where milk is legally allowed to be processed without pasteurisation a wide range of cheeses can be made using the bacteria naturally in the milk. In most other countries, the range of cheeses is smaller and the use of artificial cheese curing is greater. Whey is also the byproduct of this process.

Whey

In earlier times whey was considered to be a waste product and it was, mostly, fed to pigs as a convenient means of disposal. Beginning about 1950, and mostly since about 1980, lactose and many other products, mainly food additives, are made from both casein and cheese whey.

Yogurt

Yoghurt (or yogurt) making is a process similar to cheese making, only the process is arrested before the curd becomes very hard.

Milk powders

Milk is also processed by various drying processes into powders. Whole milk, skim milk, buttermilk, and whey products are dried into a powder form and used for human and animal consumption. The main difference between production of powders for human or for animal consumption is in the protection of the process and the product from contamination. Some people drink milk reconstituted from powdered milk, because milk is about 88% water and it is much cheaper to transport the dried product.

Other milk products

Kumis is produced commercially in Central Asia. Although it is traditionally made from mare's milk, modern industrial variants may use cow's milk instead.

Transport of milk

Historically, the milking and the processing took place in the same place: on a dairy farm. Later, cream was separated from the milk by machine, on the farm, and the cream was transported to afactory for buttermaking. The skim milk was fed to pigs. This allowed for the high cost of transport (taking the smallest volume high-value product), primitive trucks and the poor quality of roads. Only farms close to factories could afford to take whole milk, which was essential for cheesemaking in industrial quantities, to them. The development of refrigeration and better road transport, in the late 1950s, has meant that most farmers milk their cows and only temporarily store the milk in large refrigerated bulk tanks, from where it is later transported by truck to central processing facilities.

Milking machines

The milking machine extracts milk from all teats.

Milking machines are used to harvest milk from cows when manual milking becomes inefficient or labour intensive. The milking unit is the portion of a milking machine for removing milk from an udder. It is made up of a claw, four teatcups, (Shells and rubber liners) long milk tube, long pulsation tube, and a pulsator. The claw is an assembly that connects the short pulse tubes and short milk tubes from the teatcups to the long pulse tube and long milk tube. (Cluster assembly) Claws are commonly made of stainless steel or plastic or both. Teatcups are composed of a rigid outer shell (stainless steel or plastic) that holds a soft inner liner or inflation. Transparent sections in the shell may allow viewing of liner collapse and milk flow. The annular space between the shell and liner is called the pulse chamber.

Milking machines work in a way that is different from hand milking or calf suckling. Continuous vacuum is applied inside the soft liner to massage milk from the teat by creating a pressure difference across the teat canal (or opening at the end of the teat). Vacuum also helps keep the machine attached to the cow. The vacuum applied to the teat causes congestion of teat tissues (accumulation of blood and other fluids). Atmospheric air is admitted into the pulsation chamber about once per second (the pulsation rate) to allow the liner to collapse around the end of teat and relieve congestion in the teat tissue. The ratio of the time that the liner is open (milking phase) and closed (rest phase) is called the pulsation ratio.

The four streams of milk from the teatcups are usually combined in the claw and transported to the milkline, or the collection bucket (usually sized to the output of one cow) in a single milk hose. Milk is then transported (manually in buckets) or with a combination of airflow and mechanical pump to a central storage vat or bulk tank. Milk is refrigerated on the farm in most countries either by passing through a heat-exchanger or in the bulk tank, or both.

In the photo above is a bucket milking system with the stainless steel bucket visible on the far side of the cow. The two rigid stainless steel teatcup shells applied to the front two quarters of the udder are visible. The top of the flexible liner is visible at the top of the shells as are the short milk tubes and short pulsation tubes extending from the bottom of the shells to the claw. The bottom of the claw is transparent to allow observation of milk flow. When milking is completed the vacuum to the milking unit is shut off and the teatcups are removed.

Milking machines keep the milk enclosed and safe from external contamination. The interior 'milk contact' surfaces of the machine are kept clean by a manual or automated washing procedures implemented after milking is completed. Milk contact surfaces must comply with regulations requiring food-grade materials (typically stainless steel and special plastics and rubber compounds) and are easily cleaned.

Most milking machines are powered by electricity but, in case of electrical failure, there can be an alternative means of motive power, often an internal combustion engine, for the vacuum and milk pumps. Raghav Gowda from Karnataka, India has developed a low cost environment friendly milking machine which uses a 2-piston reciprocating pump operated manually for creating vacuum.[8] Milk cows cannot tolerate delays in scheduled milking without serious milk production reductions.

Milking shed layouts

Milking parlour at Pardes Hanna Agricultural High School, Israel

Bail-style sheds— This type of milking facility was the first development, after open-paddock milking, for many farmers. The building was a long, narrow,lean-to shed that was open along one long side. The cows were held in a yard at the open side and when they were about to be milked they were positioned in one of the bails (stalls). Usually the cows were restrained in the bail with a breech chain and a rope to restrain the outer back leg. The cow could not move about excessively and the milker could expect not to be kicked or trampled while sitting on a (three-legged) stool and milking into a bucket. When each cow was finished she backed out into the yard again. The UK bail, developed largely by Rex Patterson, was a six standing mobile shed with steps that the cow mounted, so the herdsman didn't have to bend so low. The milking equipment was much as today, a vacuum from a pump, pulsators, a claw-piece with pipes leading to the four shells and liners that stimulate and suck the milk from the teat. The milk went into churns, via a cooler.

As herd sizes increased a door was set into the front of each bail so that when the milking was done for any cow the milker could, after undoing the leg-rope and with a remote link, open the door and allow her to exit to the pasture. The door was closed, the next cow walked into the bail and was secured. When milking machines were introduced bails were set in pairs so that a cow was being milked in one paired bail while the other could be prepared for milking. When one was finished the machine's cups are swapped to the other cow. This is the same as for Swingover Milking Parlours as described below except that the cups are loaded on the udder from the side. As herd numbers increased it was easier to double-up the cup-sets and milk both cows simultaneously than to increase the number of bails. About 50 cows an hour can be milked in a shed with 8 bales by one person. using the same teat cups for successive cows has the danger of transmitting infection, mastitis, from one cow to another. Some farmers have devised their own ways to disinfect the clusters between cows.

Herringbone Milking Parlours— In herringbone milking sheds, or parlours, cows enter, in single file, and line up almost perpendicular to the central aisle of the milking parlour on both sides of a central pit in which the milker works (you can visualise a fishbone with the ribs representing the cows and the spine being the milker's working area; the cows face outward). After washing the udder and teats the cups of the milking machine are applied to the cows, from the rear of their hind legs, on both sides of the working area. Large herringbone sheds can milk up to 600 cows efficiently with two people.

Swingover Milking Parlours— Swingover parlours are the same as herringbone parlours except they have only one set of milking cups to be shared between the two rows of cows, as one side is being milked the cows on the other side are moved out and replaced with unmilked ones. The advantage of this system is that it is less costly to equip, however it operates at slightly better than half-speed and one would not normally try to milk more than about 100 cows with one person.

Rotary Milking sheds— Rotary milking sheds consist of a turntable with about 12 to 100 individual stalls for cows around the outer edge. A "good" rotary will be operated with 24–32 (~48–50+) stalls by one (two) milkers. The turntable is turned by an electric-motor drive at a rate that one turn is the time for a cow to be milked completely. As an empty stall passes the entrance a cow steps on, facing the centre, and rotates with the turntable. The next cow moves into the next vacant stall and so on. The operator, or milker, cleans the teats, attaches the cups and does any other feeding or whatever husbanding operations that are necessary. Cows are milked as the platform rotates. The milker, or an automatic device, removes the milking machine cups and the cow backs out and leaves at an exit just before the entrance. The rotary system is capable of milking very large herds—over a thousand cows.

80-stand rotary dairy that is fully computerised and records milk production

Automatic Milking sheds— Automatic milking or 'robotic milking' sheds can be seen in Australia, New Zealand and many European countries. Current automatic milking sheds use the voluntary milking (VM) method. These allow the cows to voluntarily present themselves for milking at any time of the day or night, although repeat visits may be limited by the farmer through computer software. A robot arm is used to clean teats and apply milking equipment, while automated gates direct cow traffic, eliminating the need for the farmer to be present during the process. The entire process is computer controlled. There is a description of an automatic system here

Supplementary accessories in sheds— Farmers soon realised that a milking shed was a good place to feed cows supplementary foods that overcame local dietary deficiencies or added to the cows' wellbeing and production. Each bail might have a box into which such feed is delivered as the cow arrives so that she is eating while being milked. A computer can read the eartag of each beast to ration the correct individual supplement. A close alternative is to use 'out-of-parlour-feeders', stalls that respond to a transponder around the cow's neck that is programmed to provide each cow with a supplementary feed, the quantity dependent on her production, stage in lactation, and the benefits of the main ration

The holding yard at the entrance of the shed is important as a means of keeping cows moving into the shed. Most yards have a powered gate that ensures that the cows are kept close to the shed.

Water is a vital commodity on a dairy farm: cows drink about 20 gallons (80 litres) a day, sheds need water to cool and clean them. Pumps and reservoirs are common at milking facilities. Water can be warmed by heat transfer with milk.

Microtechnology

Microtechnology
Microtechnology is technology with features near one micrometre (one millionth of a metre, or 10−6 metre, or 1μm).
In the 1960s, scientists learned that by arraying large numbers of microscopic transistors on a single chip, microelectronic circuits could be built that dramatically improved performance, functionality, and reliability, all while reducing cost and increasing volume. This development led to the Information Revolution.
More recently, scientists have learned that not only electrical devices, but also mechanical devices, may be miniaturized and batch-fabricated, promising the same benefits to the mechanical world as integrated circuit technology has given to the electrical world. While electronics now provide the ‘brains’ for today’s advanced systems and products, micromechanical devices can provide the sensors and actuators — the eyes and ears, hands and feet — which interface to the outside world.
Today, micromechanical devices are the key components in a wide range of products such as automobile airbags, ink-jet printers, blood pressure monitors, and projection display systems. It seems clear that in the not-too-distant future these devices will be as pervasive as electronics.
Micro electromechanical systems
The term MEMS, for Micro Electro Mechanical Systems, was coined in the 1980s to describe new, sophisticated mechanical systems on a chip, such as micro electric motors, resonators, gears, and so on. Today, the term MEMS in practice is used to refer to any microscopic device with a mechanical function, which can be fabricated in a batch process (for example, an array of microscopic gears fabricated on a microchip would be considered a MEMS device but a tiny laser-machined stent or watch component would not). In Europe, the term MST for Micro System Technology is preferred, and in Japan MEMS are simply referred to as "micromachines". The distinctions in these terms are relatively minor and are often used interchangeably.
Though MEMS processes are generally classified into a number of categories – such as surface machining, bulk machining, LIGA, and EFAB – there are indeed thousands of different MEMS processes. Some produce fairly simple geometries, while others offer more complex 3-D geometries and more versatility. A company making accelerometers for airbags would need a completely different design and process to produce an accelerometer for inertial navigation. Changing from an accelerometer to another inertial device such as a gyroscope requires an even greater change in design and process, and most likely a completely different fabrication facility and engineering team.
MEMS technology has generated a tremendous amount of excitement, due to the vast range of important applications where MEMS can offer previously unattainable performance and reliability standards. In an age where everything must be smaller, faster, and cheaper, MEMS offers a compelling solution. MEMS have already had a profound impact on certain applications such as automotive sensors and inkjet printers. The emerging MEMS industry is already a multi-billion dollar market. It is expected to grow rapidly and become one of the major industries of the 21st century. Cahners In-Stat Group has projected sales of MEMS to reach $12B by 2005. The European NEXUS group projects even larger revenues, using a more inclusive definition of MEMS.
Microtechnology is often constructed using photolithography. Lightwaves are focused through a mask onto a surface. They solidify a chemical film. The soft, unexposed parts of the film are washed away. Then acid etches away the material not protected.
Microtechnology's most famous success is the integrated circuit. It has also been used to construct micromachinery.

CAREER IN NDA

My Fight Night Round 4 hands-on preview... NDA lifted, mostly
I've pretty much played them all, I think.

Boxing games, I mean.

You see, I am a hardcore fight fan. I've been following the game since I was 4, and I first saw "Kid Dynamite" Mike Tyson try and decapitate other human beings using only his fists. I'm also a hardcore gamer. So, I've made many stops in my journey to find the best virtual representation of pugilism, beginning with the straight-forward titled, "Boxing" on the Artari 2600, where two stick figures punched each other in the nose, and then witnessing my own decapitation at the hands of Iron Mike a few years later on the NES.

Oh, how far we've come.

While the Fight Night series most not be the most realistic boxing games out there in a few aspects (the Japanese Boxer's Road games hold claim to a superior career mode- for now...), without question it has become the bar against other boxing games are compared. So imagine my excitement when offered the chance to play the upcoming Fight Night Round 4.

For the first match, I chose Thomas Hearns (small afro version), and my opponent chose Leonard. I immediately noticed how much of a difference my reach advantage had compared to previous games. I was actually able to "box", and it was paying dividends, unlike boxing games before. Thanks to the haymaker now being realistic, and the ridiculous parry system gone, it felt exactly like real boxing. But the main thing I noticed? EVERY PUNCH COUNTS. Strategy is the word of the day folks. Eat one wrong, and you're stumbling around the ring like a drunk girl on prom night. Gone are the days of having to get your opponents health to nothing to score a KD. Flush punches hurt. Connect percentages are much more realistic this time around (The highest I saw was 45% in a match where my Hearns dusted off Emmanuel Augustus), thanks mostly to the physics system. The pace of fights is more realistic. In a fight I did with Monzon vs. Hagler,. we threw about 650-700 punches each through 10 rounds. Now mind you, me and the guy I was playing were playing in a very "sim" manner, not like the slugfests you guys are seeing in the vids.

Wanna tweak that? You can, thanks to, for the first time in a FN game, sliders. Yes, that's right. Unfortunately, I didn't note all of the different sliders I saw, but I noticed sliders for everything from punch accuracy to stamina effect. This is a huge addition to the Fight Night series that I'm sure everyone will welcome with open arms.

What makes a realistic sports game is the details- and Brizzo's team delivered. Real boxing brands this time around- Everlast and Grant join the fray. No more "Dodge" boxing shoes and the like. The arenas that were complete were EXACT. The Mecca, Madison Square Garden, is in the game (under the guise "New York Arena"), as are famous venues like The MGM Grand and The Thomas and Mack center. I even believe the Staples Center makes a reappearance, though without the statue for Oscar DelaHoya to throw his motorcycle helmet at (10 points for the movie reference). Tyson comes out in his black shorts and towel. Griffin's boxing gym (a real-life gym in Vancouver, BC) makes an appearance. The presentation looks like an ESPN broadcast. The crowd chants "Hatton Wonderland" when Ricky fights in Manchester. Ok, that last one isn't true. Maybe Round 5. But the details are what will blow you away. You'll actually see cuts open up and swelling develop during the action. The ref actually stops the action to deduct points. Details, people.

Two major changes are the corner and get up games. Previously, one corner had to wait while the other tended to it's fighter's wounds. Now, It's been replaced with a point allocation system to help your fighter. The better you do in the round, you get a certain amount of points to spend on different tasks that replenish either health or stamina, or repair damage to your fighter, like cuts and swelling. A great round gave me 45 points. A small bag of ice cost 10 points and regained 10 health. A large bag was 20 points, 20 heath. Medium was 15. Same with Stamina, which was replenished with water (these values were likely to change, according to the devs). Both corners do this simultaneously- it keeps the pace of the game up. It also adds an interesting element of strategy- Do you give your fighter more health to try and make it to the final bell, or give him stamina and go for the comeback KO? If your health is low, and you've taken a lot of damage, do you risk the stoppage to regain more health? Although I liked the corner game in the previous games, I thought the new one was an EXCELLENT idea.

The get-up game, I was less enamored with- now, it's a mechanic where you actually have to position your fighter to standing from a first-person view. The left stick is used to move him horizontally to his knees, and the right stick is pushed up to get him standing once he is straight up and down on his knees. However, the horizontal movement is momentum based- push too hard on the left stick, and your fighter will simply fall over in the other direction. I thought it was too touchy. I think I got up successfully once in about 7 KD's. The devs stated that it was likely going to be tweaked. I don't think gamers will like it any better or worse than the old system. It's slightly more dramatic, but I'm not so sure it was really all that indicative of how hurt my fighter was. We'll see.

I also messed with the new replay edit feature some. It's as robust as it is in other EA games (it's almost exact to NHL 09's), and is perfect for showing off special moments, especially with the free-roam camera. I expect to see a ton of videos uploaded to EA sports world.

So, 25 years and hundreds of boxing games later, has my journey for the perfect game ended? For now, absolutely, I'm confident that Round 4 will be the most accurate representation of the sweet science ever, from top to bottom. Those of you that pre-ordered, will be in love with the demo, I think. I just know that June 30th marks the beginning of the end of my social life. See you in the ring!
National Defence Academy (NDA) Entrance Examination : Introduction
Recruitment of candidates to Army, Navy and Air force wings of the National Defence Academy (NDA), is through National Defence Academy Entrance Exam which is held twice a year, generally in the month of April and September. NDA exam is conducted by the Union Public Service Commission (UPSC). A candidate must be an unmarried male. The course of training is for three years.

The candidate is required to give his preference for the service he wishes to join, however the final decision also depends on the rank he secures in the merit list. The candidate should first decide their preference for the two academies i.e. National Defence Academy and Naval Academy (Executive Branch) . If a candidate opts for NDA as his first choice, he has to then give his preferences for the three wings of the NDA i.e. Army, Navy, Air force, followed by his preference for Naval Academy. Alternatively, if he gives his first preference for Naval Academy, he has to follow it with his preference for the three wings of the NDA.

The Indian Army is a place where you’ll never stop learning. Nowhere else can you get such phenomenal opportunities to constantly hone and upgrade your skills. NDA awards you a Bachelor’s degree in Arts, Science or Computer Science on completion of your training. If you join the technical stream, you will be offered a Graduate and Post Graduate degree in Engineering from one of the finest institutes of technology in the country. If you are selected for the prestigious Defence Services Staff College course. You’ll be awarded a Master of Science degree in Defence and Strategic Studies . The Indian

a wide range of subjects from engineering to medicine, administration to educational strategy, and armament technology to management. The choice is indeed limitless. In fact, you can even get into Research & Development, if you desire. That’s not all. You can also take a study leave amidst your tenure for an added qualification.

Candidates who desire to join Air Force Academy must indicate AFA as first choice, as they have to be administered pilot aptitude battery test at one of the AFSB and AF Medical at Central Medical Establishment/ Institute of Aviation Medicines.


NETWORKING JOB TITLES

Several types of positions exist in networking, each with different average salaries and long-term potential, and one should possess a clear understanding of these. Unfortunately, job titles in networking, and in Information Technology (IT) generally, often lead to confusion among beginners and experienced folks alike. Bland, vague or overly bombastic titles often fail to describe the actual work assignments of a person in this field.

The basic job titles one sees for computer networking and networking-related positions include

  • Network Administrator
  • Network (Systems) Engineer
  • Network (Service) Technician
  • Network Programmer/Analyst
  • Network/Information Systems Manager
The Network Administrator

In general, network administrators configure and manage LAN and sometimes WANs. The job descriptions for administrators can be detailed and sometimes downright intimidating! Consider the following description that, although fictitious, represents a fairly typical posting:

NETWORK ADMINISTRATOR - HOBO COMPUTING
"Candidate will be responsible for analysis, installation and configuration of company networks. Daily activities include monitoring network performance, troubleshooting problems and maintaining network security. Other activities include assisting customers with operating systems and network adapters, configuring routers, switches, and firewalls, and evaluating third-party tools."

Needless to say, a person early in their career often lacks experience in a majority of these categories. Most employers do not expect candidates to possess in-depth knowledge of all areas listed in the job posting, though, so a person should remain undeterred by the long, sweeping job descriptions they will inevitably encounter.

Comparing Roles and Responsibilities

The job function of a Network Engineer differs little from that of a Network Administrator. Company A may use one title while Company B uses the other to refer to essentially the same position. Some companies even use the two titles interchangeably. Firms making a distinction between the two often stipulate that administrators focus on the day-to-day management of networks, whereas network engineers focus primarily on system upgrades, evaluating vendor products, security testing, and so on.

A Network Technician tends to focus more on the setup, troubleshooting, and repair of specific hardware and software products. Service Technicians in particular often must travel to remote customer sites to perform "field" upgrades and support. Again, though, some firms blur the line between technicians and engineers or administrators.

Network Programmer/Analysts generally write software programs or scripts that aid in network analysis, such as diagnostics or monitoring utilities. They also specialize in evaluating third-party products and integrating new software technologies into an existing network environment or to build a new environment.

Managers supervise the work of adminstrators, engineers, technicians, and/or programmers. Network / Information Systems Managers also focus on longer-range planning and strategy considerations.

Salaries for networking positions depend on many factors such as the hiring organization, local market conditions, a person's experience and skill level, and so on. (Links to more in-depth information on networking salaries appear in the box at the top of each page.)

High School and College Education

Those interested in networking careers can benefit greatly from earning a college degree. Most university programs don't offer a degree in Computer Networking per se, and the precise name of the degree varies significantly from institution to institution. Four-year degree programs suitable for the computer networking field usually involve a variation on one of the following:

  • Computer Science
  • Electrical and Computer Engineering
  • Information Systems
  • Communications Science
  • Telecommunications, Telecommunications Management
  • Telecomputing

As an alternative to a general four-year degree (that covers a variety of technical subjects besides computer networking), some institutions offer shorter-term programs focused specifically on networking topics.

Until recently, computer networking courses were only found in post-secondary education. Nowadays, though, high school students have the opportunity to take networking courses too. These classes can be quite substantial, involving among other things configuring routers and switches, installing wire, network diagnostics, monitoring network activity, and working with various network protocols and operating systems.

Which Program Is Best?

Is a college degree worth the investment, or is a shorter, more focused curriculum the way to go? Opinions vary. A four-degree can demonstrate to prospective employers a level of dedication and long-term flexibility that a short program cannot. On the other hand, a more focused program can teach the basic networking skills quickly, and allow more time for on-the-job experience.

Certifications

Network adminstrators and managers in particular have grown fond of networking-based certifications like Microsoft MCSC and Cisco CCNA . In general, to gain and keep a certification one must pass a lengthy (usually multiple-choice question) paper exam, then pass recertification exams at periodic intervals (usually every two or three years). A person has the choice of preparing for the exam through self-study or by enrolling in a certification course or "program" run by a training organization (sometimes within high-tech companies themselves). Taking any certification exam involves paying a test "sitting" fee (usually in the range of $100 to $300 USD), and employers sometimes reimburse their employees for this cost.

Certifications are designed to accredit someone for a certain amount of industry experience that they've already gained. Some of the programs will even make recommendations to this effect, typically one to two years of prior background for the entry-level certifications. However, experience is not strictly required. Some have criticized the entry-level exams for being too "bookish" in this respect, too easy to pass without prior hands-on experience.

Which certification is best? MCSE? CCNA? Something else? Again, the answer depends on the individual's interests and also the preferences of hiring companies. Some ambitious students of networking avoid this problem by acquiring multiple certifications... sometimes as many as five or more! Be aware, though, that certifications are an incomplete substitute for formal education and industry experience. Ideally, one will acquire a few certifications as part of a balanced overall mix of education and career experience.

Many companies, particularly larger ones, offer their employees ongoing training opportunities. The employer will either build their own courses or will bring in an outside company to hold the training. These courses are typically focused on a specific product technology or tool, or on the specific technical information needed to pass a certification exam. One could argue it is preferable for the beginning networker to focus on general technologies at first rather than certifications, as companies in these case likely prefer to train employees "their own way" anyhow.

Networking Experience


The common lament of job seekers, that "employers only hire people with experience, yet the only way to gain experience is to get hired" applies in the computer networking field as well. Despite optimistic statements that one hears frequently regarding the number of available jobs in IT, landing an entry-level position can still prove difficult and frustrating.

One way to gain networking experience is to pursue a full-time programming or help desk "internship" during the summer months, or a part-time "work study" job at school. An internship may not pay well initially, the work may turn out to be relatively uninteresting, and it is very likely one will not be able to finish any substantial project during the limited time there. However, the most important factor to consider is the training and hands-on experience such a job offers. The mere fact a person invests their time in this way, demonstrates the dedication and interest employers like to see.


The better the position, the more likely multiple candidates will apply for it, even if the job entails only part-time work. A good way to "stand out" from the competition is to demonstrate prior work and accomplishments, even if these involve projects done on one's own time. A person can start with a class project, for example, and extend it in some way. Or they can create their own personal projects, experimenting with networking administration tools and scripts, for example.


Explaining Experience

One of the most overlooked skills in computer networking is the ability to explain technical information. Whether verbally, through email, or in formal writing, networkers that communicate well gain a significant advantage in building their careers.


For the beginning networker, the most obvious benefit of good communications skills is realized in job interviews. Being able to talk with people about technical subjects can be hard to do, but as one gains skill in answering impromptu questions, one builds confidence and relaxes, making one that much better prepared for career advancement. It is a good idea to periodically engage in job interviews for this reason, even if the position involved does not seem particularly appealing. Likewise one should also consider visiting local job fairs occasionally.


Technologies


One of the most common questions asked by beginning networkers is "Which technology should I focus on first? Microsoft? UNIX? Cisco? Novell?" As with certifications, preferences vary from company to company and person to person.


One way for a person to answer this question is to start with the technology that appears most interesting to them personally. Researching a company that one plans to interview with, and choosing a technology that the company deems important, is another way. Ultimately it probably matters little which networking technology one learns first. More importantly, one should acknowledge that technology changes rapidly, and that the person who can enjoy a successful career by learning about only one technology is rare indeed.


Focus on the Basics

Computer networking involves a certain number of fundamental technologies. These technologies form the basis of many networking courses. Regardless of the form of education one chooses to invest in, one's career will always benefit from deeper study of technologies like IP and TCP/IP, the OSI model, Ethernet, internetworking, and others listed on this site, whether through formal coursework or through self-study.


Conclusion


Some people have asserted that networking (and IT generally) is a "young person's game," and that companies generally prefer to turn over their employee base periodically, to bring in younger, more affordable workers. This concept might sound appealing to some, but if it were true, it would make networking careers less inviting to most people.


Realistically, the field of computer networking presents so much complexity, and involves such a wide range of technologies, that most serious companies should value both experienced employees and ambitious new employees highly. In fact, an effective career strategy involves seeking out more experienced people in one's field, and learning new skills from these mentors.


Many firms view four-years degrees as a sign of commitment to the field. Network technology changes very fast, so employers care both about a person's current knowledge and also their ability to learn and adapt for the future. Certifications effectively prove current knowledge, but college degrees best demonstrate one's general learning ability.


Self-study in networking is always effective and underrated by many. By making contacts with those in networking careers, either people in one's local area, or individuals or sites on the Internet, one can quickly acquire a wealth of information ranging from technical details, to advice on writing a resume, to advice on specific hiring companies, schools, and so on.

Sunday, 1 May 2011

What is the scope in computer science engineering and what will it be in four years? Read more:

Computer software engineers apply the principles of computer science and mathematical analysis to the design, development, testing, and evaluation of the software and systems that make computers work. The tasks performed by these workers evolve quickly, reflecting new areas of specialization or changes in technology, as well as the preferences and practices of employers. (A separate section on computer hardware engineers appears in the engineers section of the Handbook.) 
Software engineers can be involved in the design and development of many types of software, including computer games, word processing and business applications, operating systems and network distribution, and compilers, which convert programs to machine language for execution on a computer.
Computer software engineers begin by analyzing users' needs, and then design, test, and develop software to meet those needs. During this process they create the detailed sets of instructions, called algorithms, that tell the computer what to do. They also may be responsible for converting these instructions into a computer language, a process called programming or coding, but this usually is the responsibility of computer programmers. (A separate section on computer programmers appears elsewhere in the Handbook.) Computer software engineers must be experts in operating systems and middleware to ensure that the underlying systems will work properly.
Computer applications software engineers analyze users' needs and design, construct, and maintain general computer applications software or specialized utility programs. These workers use different programming languages, depending on the purpose of the program. The programming languages most often used are C, C++, and Java, with Fortran and COBOL used less commonly. Some software engineers develop both packaged systems and systems software or create customized applications.
Computer systems software engineers coordinate the construction, maintenance, and expansion of an organization's computer systems. Working with the organization, they coordinate each department's computer needs-ordering, inventory, billing, and payroll recordkeeping, for example-and make suggestions about its technical direction. They also might set up the organization's intranets-networks that link computers within the organization and ease communication among various departments.
Systems software engineers also work for companies that configure, implement, and install the computer systems of other organizations. These workers may be members of the marketing or sales staff, serving as the primary technical resource for sales workers. They also may help with sales and provide customers with technical support. Since the selling of complex computer systems often requires substantial customization to meet the needs of the purchaser, software engineers help to identify and explain needed changes. In addition, systems software engineers are responsible for ensuring security across the systems they are configuring.
Computer software engineers often work as part of a team that designs new hardware, software, and systems. A core team may comprise engineering, marketing, manufacturing, and design people, who work together to release a product.
Job Outlook

Job prospects should be excellent, as computer software engineers are expected to be among the fastest-growing occupations through the year 2016.
Employment change. Employment of computer software engineers is projected to increase by 38 percent over the 2006 to 2016 period, which is much faster than the average for all occupations. This occupation will generate about 324,000 new jobs, over the projections decade, one of the largest employment increases of any occupation.
Employment growth will result as businesses and other organizations adopt and integrate new technologies and seek to maximize the efficiency of their computer systems. Competition among businesses will continue to create incentive for sophisticated technological innovations, and organizations will need more computer software engineers to implement these changes.
Demand for computer software engineers will also increase as computer networking continues to grow. For example, expanding Internet technologies have spurred demand for computer software engineers who can develop Internet, intranet, and World Wide Web applications. Likewise, electronic data-processing systems in business, telecommunications, government, and other settings continue to become more sophisticated and complex. Implementing, safeguarding, and updating computer systems and resolving problems will fuel the demand for growing numbers of systems software engineers.
New growth areas will also continue to arise from rapidly evolving technologies. The increasing uses of the Internet, the proliferation of Web sites, and mobile technology such as wireless Internet have created a demand for a wide variety of new products. As individuals and businesses rely more on hand-held computers and wireless networks, it will be necessary to integrate current computer systems with this new, more mobile technology.
In addition, information security concerns have given rise to new software needs. Concerns over "cyber security" should result in businesses and government continuing to invest heavily in software that protects their networks and vital electronic infrastructure from attack. The expansion of this technology in the next 10 years will lead to an increased need for computer engineers to design and develop the software and systems to run these new applications and integrate them into older systems.
As with other information technology jobs, outsourcing of software development to other countries may temper somewhat employment growth of computer software engineers. Firms may look to cut costs by shifting operations to foreign countries with lower prevailing wages and highly educated workers. Jobs in software engineering are less prone to being offshored than are jobs in other computer specialties, however, because software engineering requires innovation and intense research and development.
Source: U.S. Department of Labor

Recently, Smriti Chokhani got her first taste of professional dance troupes. Her family had invited a small local troupe for her wedding. The families had a blast, according to Smriti
We did not know it would be so successful. We had the functions at Mayfair Rooms (Mumbai ). This small troupe of about eight people not only were the central attraction, but later they also helped people get into the groove," she recollects.
The dancer troupe was led by Aditya Kumar, who is still studying in college. Aditya studied under Shaimak Davar. "I always loved dancing," he recollects, "I took part in dance functions at school. About five years ago when a few friends decided to go to Shaimak Davar's I joined them."
That's what changed the course of his life. "I am now part of a professional dance troupe," he says, "Basically, a few of us who had gone to the school and a few others got together. We perform at small functions since most of us are still studying."
The stage has literally opened up for dance troupes. Be it sangeet functions or popular reality show dance competitions or even stage performances -- dance has come a long way as a profession. Today, many youngsters take pride in being part of a dance troupe. The journey to being a successful dance performer is not without challenges though.
Who can be part of a dance troupe?Dancing in a troupe is an exciting and very challenging assignment. "There are many people who are good soloists. But the demand for solo performers is very limited," says Aditya.
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Aditya says that anyone with a good sense of rhythm and flexibility can be a good dancer. "You need to understand dance and movements well. You need to intrinsically understand rhythm and music," he explains.
You also need to be a good team player. "Since in a troupe you almost need to look like one entity, it is important to be a good team player," adds Aditya.
Where can you learn to dance?There are many dance schools that provide dance training and many more that are mushrooming thanks to the growing demand for trained dancers.
The most popular are Shiamak Davar's Salsa Dance Company, Sandeep Soparkar and Ashley Lobo's Danceworx. These are primarily based in Mumbai. However, Salsa now has centres all over the country.
The courses are announced either through a newspaper or you could call to check on the next course dates.
All these institutes have websites that announce the dates of the courses.
What do you learn?There are many who believe that you can learn any dance form as long as you learn rhythm and flexibility.
"Some of the people in my troupe have also learnt classical dance," explains Aditya. However, he recommends that you need to know a few of the Western forms like salsa, jive, foxtrot, waltz, samba, rumba, tango, and such. "That gives you the entire spectrum. Each dance form teaches you a new aspect, hence the more you learn the better your performance," Aditya explains.
Dance classes focus on warm-up and exercises too.
What are the course fees and what sort of remuneration should one expect?The course fees range from Rs 2,000 to Rs 4,000 for Western classical dances. Indian classical dance takes many years to be mastered.
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As for remuneration, you can charge anywhere from Rs 5,000 to Rs 25,000 for a two-hour performance. Based on the type of performance the charges vary, says Aditya.
What are the challenges you can face?The key is to decide whether you want to make a career in dance. If yes, you will need to first get into shape, say experts.
Dancing involves long hours. "On an average we practice for an hour everyday and about four hours on the weekends. You have to stay fit to be able to have the stamina to perform, with a smile on your face."
The other challenge is to get over stage fright. "I know many people who dance very well in closed set ups and during practice. The minute they are on stage, they freeze, they blunder," he explains. "The only way you can overcome that is by making up your mind that you are going to go ahead and do it. Dance has to be part of your body movements. Eventually, it just becomes a part of you."
How can you plot a career?Rigorous training and promotion is the key to success, says Aditya. He has plans. "Currently we are a loosely held troupe. Once we are through with our academics (that's a familial request), we intend setting up our own company."
To succeed you have to innovate and entertain. "The key is to do things that impress people -- you have to take care of the "wow" factor. This is showbiz and you have to give it the attention it needs."
Here are a few more tips:
  • You have to feel confident and look confident.
  • You have to dress for success.
  • You need to constantly market yourself and your company.
  • You need to be able to put in 18-20 hours of work everyday.
  • You need to regularly upgrade your skills by learning newer forms from around the world.