Tuesday, 13 September 2011

Opinion: Album reviews

The First Kasabian Album called "Kasabian" released in September 2004.


Domestic badasses are usually pretty one-dimensional. From the musclebound Joe Weider plank snapper to the wizened loose-cannon drunk or the free-swinging pro athlete, they're just different versions of the same uninteresting dolt. That's why English louts often seen more interesting to us Americans than our homegrown ones. Buoyed by football, illicit drugs, and lager-- or the remnants of mid-90s lad culture in general-- these types often take an elemental approach to bad behavior. They integrate torrents of entertaining drunk speak into fistfights both won and lost; they're boastful, prideful, or just plain full. They're going to live fast and die young, but not until after the kebab shops close.
Kasabian is the latest UK outfit to tap into this bravado conduit, and as they've shown over singles ranging back to the beginning of 2004 (all of which appear on this self-titled debut LP), the Leicester combo likes their hedonism a la carte. "Processed Beats" apes shamelessly the shambolic beat and double-tracked lead vocals of vintage Stone Roses, "L.S.F. [Lost Souls Forever]" is a sly and seamy ride through the hybridist sonic absurdism of Lo Fidelity Allstars, and "Butcher Blues" is another version of Swinging London revisionism with its hazy dissolves, tube station announcement vocals, and head-nodding electronic percussion. Each of these songs possess that certain kinetic fizz that makes a great single. The strutting Mani-istic bass of "Processed", "L.S.F."'s handclaps, hip-hop breaks, and soaring chorus ("Come on! We got our backs to the wall!")-- in its best moments, Kasabian is the soundtrack to the slow-motion Guy Ritchie movie inside every lad's head.
That quality makes "Club Foot"'s tensely barbed guitar perfect for punching faces to. And yet, its initial rush dissipates. Like the harsh house lights of the pub at closing time, the groove can't go on forever-- especially when it eventually starts to morph into every Primal Scream song you've ever heard. That's where Kasabian begins to waver. It's a catchy and energizing Friday evening record that draws from its sources well, but seems to have had some staying power sapped by the spliffs. It drags in places and sags in others. "U Boat" tries for layered organic and electronic bliss but drifts distractedly into a wispy Beta Band mess. "I.D." doesn't go anywhere we haven't been before, either. Once its thumping beat and lilting synthesizer surge has transported us back to the Hacienda, Kasabian fades in favor of some old Happy Mondays records.
Kasabian is brash, loutish, and seems liable at times to cut you; the consistent kick drum beat throughout it is like a great party's heartbeat. But like the roustabout in the corner, drinking all the lager and scratching up your old records, it can be more loudmouthed than substantial.

Album review from:
http://pitchfork.com/reviews/albums/4588-kasabian/

I disagree a lot with this review but it does give a good background as to where the music originated from.

Opinion: Kasabian is good

Biography:
Kasabian took the British press by storm in the early 2000s by mixing traces of the Stone Roses, Happy Mondays, and Primal Scream with Oasis-sized confidence and DJ Shadow-influenced electronics. Named after Linda Kasabian, Charles Manson's getaway driver turned state witness, the Leicester-based group also stole a page from the Band by moving into a remote farmhouse to brew its music. Communal life and a slew of shared influences produced an electronic, rock-oriented sound that harked back to the Madchester days of baggy pants and druggy dancing. Kasabian expanded that sound on later albums, but the band's foundation remained rooted in swaggering, fragmented dance textures and boisterous rock & roll.
With his acerbic approach to interviews, swaggering lead singer Tom Meighan quickly became a darling of the press during the band's infancy, and Kasabian's revolutionary logos and sleeve art only added to the excitement. Fold-out poster sleeves, 10" versions, and hand-stenciled covers accompanied singles like "Club Foot," "L.S.F," and "Processed Beats." The hype paid off as Kasabian's self-titled debut cracked the Top Five in October 2004, just one month after its U.K. release. Four singles landed in the Top 20 within six months, establishing the bandmates as rock & roll royalty in the process.
Founding guitarist Chris Karloff left the lineup two years later, citing creative differences with the remaining members. Kasabian's second album, Empire, had already been recorded, and guitarist Jay Mehler was brought aboard to replace Karloff during live performances. (Mehler eventually became an official member in 2008.) Empire was ultimately released in August 2006 and debuted atop the U.K. charts, with the title track soon becoming the band's third Top Ten hit. The band took home an NME Award in 2007 and began work on another album later that year. Dan the Automator was brought in to share production duties with Serge Pizzorno, and the resulting U.K. chart-topper West Ryder Pauper Lunatic Asylum appeared in 2009. Two years later, Automator would return for the album Velociraptor!, featuring the leadoff single "Switchblade Smiles."


Opinion: Kasabian is Good

Kasabian is a legendary band, they have won multiple awards and its their electronic and rock inflaunces which opened my interest into more dance and electronic genre's.
It's not just their music which attracted me to the band members and the atmosphere their music produces which has been discribed as: 



"Kasabian is brash, loutish, and seems liable at times to cut you; the consistent kick drum beat throughout it is like a great party's heartbeat."


Kasabians revolutionary logo's and album artwork was another thing which drew me to the band after listening to their music. 



Concepts: Camera Filters

Introduction:
Camera filters are transparent or translucent optical elements that alter the properties of light entering the camera lens for the purpose of improving the image being recorded.  Filters can affect contrast, sharpness, highlight flare, color, and light intensity, either individually, or in various combinations.  They can also create a variety of "special effects."  It is important to recognize that, even though there are many possibly confusing variations and applications, all filters behave a reasonably predictable way when their properties are understood and experienced.  Most of these properties related similarly to filter use in both film and video imaging. 


Ultraviolet Filters:
Film, as well as video, often exhibits a greater sensitivity to what is to us invisible, ultraviolet light.  This is most often outdoors, especially at high altitudes, where the UV-absorbing atmosphere is thinner; and over long distances, such as marine scenes.  It can show up as a bluish color cast with color film, or it can cause a low-contrast haze that diminishes details, especially when viewing far-away objects, in either color or black-and-white.  Ultraviolet filters absorb UV light generally without affecting light in the visible region.


Infra-Red Filters
Certain special situations call for the use of black-and-white or color infra-red sensitive films.  For aerial haze penetration, recording heat effects, and other purposes they are invaluable. Their color and tonal renditions are very different, however, from other film types (consult film manufacturers for further details).  Various filters are used to reduce unwanted visible light.  Red, orange, and yellow filters, as used for panchromatic black-and-white film can enhance contrast and alter color. Total visible light absorption transmitting only infra-red, as with the Wratten #87 or #89 series of filters, can also be useful.  The results will vary with film type and other factors.  Prior testing for most situations is a must.


Neutral Density Filters
When it is desirable to maintain a particular lens opening for sharpness or depth-of-field purposes, or simply to obtain proper exposure when confronted with too much light intensity, use a neutral density (ND) filter.  This will absorb light evenly throughout the visible spectrum, effectively altering exposure without requiring a change in lens opening and without introducing a color shift.



Polarizing Filters
Polarizers allow color and contrast enhancement, as well as reflection control, using optical principles different from any other filter types.  Most light that we record is reflected light that takes on its color and intensity from the objects we are looking at.  White light, as from the sun, reflecting off a blue object, appears blue because all other colors are absorbed by that object.  A small portion of the reflected light bounces off the object without being absorbed and colored, retaining the original (often white) color of its source.  With sufficient light intensity, such as outdoor sunlight, this reflected "glare" has the effect of washing out the color saturation of the object.  It happens that, for many surfaces, the  the reflected glare we don't want is polarized while the colored reflection we do want isn't.









Concept: Some of my own landscape photography







These are some of my own photography work which i would like to use for graphic design work or rather use the same techniques to take different photos relevant to projects. I used a Canon 450D digital Slr.

Concept: photography within graphic design




Dustin Chasin

Monday, 12 September 2011

Concept: Photography (an introduction to camera's and how they work)

Photography is the art, science, and practice of creating pictures by recording radiation on a radiation-sensitive medium, such as a photographic film, or electronic image sensors. Photography uses foremost radiation in the UV, visible and near-IR spectrum. For common purposes the term light is used instead of radiation. Light reflected or emitted from objects form a real image on a light sensitive area (film or plate) or a FPA pixel array sensor by means of a pin hole or lens in a camera during a timed exposure. The result on film or plate is a latent image, which is developed into a visual image (negative or diapositive). An image on a paper base is known as a print. The result on an FPA pixel array sensor is an electrical charge at each pixel which is electronically processed and stored in a computer (raster)-image file for subsequent display or processing. Photography has many uses for business, science, manufacturing (f.i. Photolithography), art, and recreational purposes.



The camera is the image-forming device, and photographic film or a silicon electronic image sensor is the sensing medium. The respective recording medium can be the film itself, or a digital electronic or magnetic memory.[4]
Photographers control the camera and lens to "expose" the light recording material (such as film) to the required amount of light to form a "latent image" (on film) or "raw file" (in digital cameras) which, after appropriate processing, is converted to a usable image. Digital camerasuse an electronic image sensor based on light-sensitive electronics such as charge-coupled device (CCD) or complementary metal-oxide-semiconductor (CMOS) technology. The resulting digital image is stored electronically, but can be reproduced on paper or film.
The camera (or 'camera obscura') is a dark room or chamber from which, as far as possible, all light is excluded except the light that forms the image. The subject being photographed, however, must be illuminated. Cameras can range from small to very large, a whole room that is kept dark while the object to be photographed is in another room where it is properly illuminated. This was common for reproduction photography of flat copy when large film negatives were used. A general principle known from the birth of photography is that the smaller the camera, the brighter the image. This meant that as soon as photographic materials became sensitive enough (fast enough) to take candid or what were called genre pictures, small detective cameras were used, some of them disguised as a tie pin that was really a lens, as a piece of luggage or even a pocket watch (the Ticka camera).
The discovery of the 'camera obscura' that provides an image of a scene is very old, dating back to ancient China. Leonardo da Vinci mentions natural camera obscuras that are formed by dark caves on the edge of a sunlit valley. A hole in the cave wall will act as a pinhole camera and project a laterally reversed, upside down image on a piece of paper. So the invention of photography was really concerned with finding a means to fix and retain the image in the camera obscura. This in fact occurred first using the reproduction of images without a camera when Josiah Wedgewood, from the famous family of potters, obtained copies of paintings on leather using silver salts. As he had no way of fixing them, that is to say to stabilize the image by washing out the non exposed silver salts, they turned completely black in the light and had to be kept in a dark room for viewing.
Renaissance painters used the camera obscura which, in fact, gives the optical rendering in color that dominates Western Art.
The movie camera is a type of photographic camera which takes a rapid sequence of photographs on strips of film. In contrast to a still camera, which captures a single snapshot at a time, the movie camera takes a series of images, each called a "frame". This is accomplished through an intermittent mechanism. The frames are later played back in a movie projector at a specific speed, called the "frame rate" (number of frames per second). While viewing, a person's eyes and brain merge the separate pictures together to create the illusion of motion.[5]
In all but certain specialized cameras, the process of obtaining a usable exposure must involve the use, manually or automatically, of a few controls to ensure the photograph is clear, sharp and well illuminated. The controls usually include but are not limited to the following:



ControlDescription
FocusThe adjustment to place the sharpest focus where it is desired on the subject.
ApertureAdjustment of the lens opening, measured as f-number, which controls the amount of light passing through the lens. Aperture also has an effect on depth of field and diffraction – the higher the f-number, the smaller the opening, the less light, the greater the depth of field, and the more the diffraction blur. The focal length divided by the f-number gives the effective aperture diameter.
Shutter speedAdjustment of the speed (often expressed either as fractions of seconds or as an angle, with mechanical shutters) of the shutter to control the amount of time during which the imaging medium is exposed to light for each exposure. Shutter speed may be used to control the amount of light striking the image plane; 'faster' shutter speeds (that is, those of shorter duration) decrease both the amount of light and the amount of image blurring from motion of the subject and/or camera.
White balanceOn digital cameras, electronic compensation for the color temperature associated with a given set of lighting conditions, ensuring that white light is registered as such on the imaging chip and therefore that the colors in the frame will appear natural. On mechanical, film-based cameras, this function is served by the operator's choice of film stock or with color correction filters. In addition to using white balance to register natural coloration of the image, photographers may employ white balance to aesthetic end, for example white balancing to a blue object in order to obtain a warm color temperature.
MeteringMeasurement of exposure so that highlights and shadows are exposed according to the photographer's wishes. Many modern cameras meter and set exposure automatically. Before automatic exposure, correct exposure was accomplished with the use of a separate light metering device or by the photographer's knowledge and experience of gauging correct settings. To translate the amount of light into a usable aperture and shutter speed, the meter needs to adjust for the sensitivity of the film or sensor to light. This is done by setting the "film speed" or ISO sensitivity into the meter.
ISO speedTraditionally used to "tell the camera" the film speed of the selected film on film cameras, ISO speeds are employed on modern digital cameras as an indication of the system's gain from light to numerical output and to control the automatic exposure system. The higher the ISO number the greater the film sensitivity to light, whereas with a lower ISO number, the film is less sensitive to light. A correct combination of ISO speed, aperture, and shutter speed leads to an image that is neither too dark nor too light, hence it is 'correctly exposed,' indicated by a centered meter.
AutofocuspointOn some cameras, the selection of a point in the imaging frame upon which the auto-focus system will attempt to focus. ManySingle-lens reflex cameras (SLR) feature multiple auto-focus points in the viewfinder.

A brief history:


Photography is the result of combining several technical discoveries. Long before the first photographs were made, Chinese philosopher Mo Di and Greek mathematicians Aristotle and Euclid described a pinhole camera in the 5th and 4th centuries BC.[7][8] In the 6th century AD, Byzantine mathematician Anthemius of Tralles used a type of camera obscura in his experiments,[9] Ibn al-Haytham (Alhazen) (965–1040) studied thecamera obscura and pinhole camera,[8][10] Albertus Magnus (1193–1280) discovered silver nitrate,[11] and Georges Fabricius (1516–71) discoveredsilver chloride.[12] Daniele Barbaro described a diaphragm in 1568.[13] Wilhelm Homberg described how light darkened some chemicals (photochemical effect) in 1694.[14] The fiction book Giphantie, published in 1760, by French author Tiphaigne de la Roche, described what can be interpreted as photography.[13]

Invented in the first decades of the 19th century, photography (by way of the camera) seemed able to capture more detail and information than traditional mediums, such as painting and sculpting.[15] Photography as a usable process goes back to the 1820s with the development of chemical photography. The first permanent photoetching was an image produced in 1822[6] by the French inventor Nicéphore Niépce, but it was destroyed by a later attempt to duplicate it.[6] Niépce was successful again in 1825. He made the first permanent photograph from nature with a camera obscura in 1826.[16] However, because his photographs took so long to expose (8 hours), he sought to find a new process. Working in conjunction with Louis Daguerre, they experimented with silver compounds based on a Johann Heinrich Schultz discovery in 1816 that a silver and chalk mixture darkens when exposed to light. Niépce died in 1833, but Daguerre continued the work, eventually culminating with the development of the daguerreotype in 1837. Daguerre took the first ever photo of a person in 1838 when, while taking a daguerreotype of a Paris street, a pedestrian stopped for a shoe shine, long enough to be captured by the long exposure (several minutes). Eventually, France agreed to pay Daguerre a pension for his formula, in exchange for his promise to announce his discovery to the world as the gift of France, which he did in 1839.
Meanwhile, Hercules Florence had already created a very similar process in 1832, naming it Photographie, and English inventor William Fox Talbothad earlier discovered another means to fix a silver process image but had kept it secret. After reading about Daguerre's invention, Talbot refined his process so that portraits were made readily available to the masses. By 1840, Talbot had invented the calotype process, which creates negativeimages.[17] Talbot's famous 1835 print of the Oriel window in Lacock Abbey is the oldest known negative in existence.[18][19] John Herschel made many contributions to the new methods. He invented the cyanotype process, now familiar as the "blueprint". He was the first to use the terms "photography", "negative" and "positive". He discovered sodium thiosulphate solution to be a solvent of silver halides in 1819, and informed Talbot and Daguerre of his discovery in 1839 that it could be used to "fix" pictures and make them permanent. He made the first glass negative in late 1839.
In March 1851, Frederick Scott Archer published his findings in "The Chemist" on the wet plate collodionprocess. This became the most widely used process between 1852 and the late 1860s when the dry plate was introduced. There are three subsets to the Collodion process; the Ambrotype (positive image on glass), the Ferrotype or Tintype (positive image on metal) and the negative which was printed on Albumenor Salt paper.
In 1908 Gabriel Lippmann won the Nobel Laureate in Physics for his method of reproducing colors photographically based on the phenomenon of interference, also known as the Lippmann plate.
Many advances in photographic glass plates and printing were made in through the 19th century. In 1884,George Eastman developed the technology of film to replace photographic plates, leading to the technology used by film cameras today.