Sunday, November 7, 2010

Sunshine


Those who have read my most recent note know that I am fascinated by light. I consider light the essential phenomenon in so many ways.

Biblically Jesus referred to himself as the light of the world. "Again Jesus spoke to them, saying, ‘I am the light of the world; he who follows me will not walk in darkness, but will have the light of life.’ “(John 8:12 RSV) And we are told to shine the light. ”You are the light of the world — like a city on a hilltop that cannot be hidden.” Matthew 5:14 NLT)

Light is the primary means of experiencing the wonders of creation, from sunrise to sunset, from a baby’s smile to the smile of your baby, from the nearness of a microscopic view of tissue to the "farness" of the distant stars. Light is the primary way we communicate with the creation. (Of course we also have touch and taste as well as hearing, but none of these senses give us the near/far perspective we obtain from light and vision.)

Light is key to much of modern physics from the study of optics and gravity by Sir Isaac Newton to the study of electromagnetic forces and Maxwell’s equations to the discovery of the special theory of relativity and the general theory of relativity by Einstein to the black holes of Karl Schwarzschild and Stephen Hawking. As I have already related, it was in the deep study of Maxwell’s equations that I reached the pinnacle of my scientific studies and comprehension. I saw the light!

And it is light that gives us life here on the earth. With all the discussion about energy and nonrenewable and renewable sources of energy, it may not be apparent that all energy comes form the sun. Either directly in the heat that gives us wind power and water power to the plants that give us coal and oil. Even the energy of radioactive materials found in the earth had their birth place in the stars — and our sun is just one of many stars — albeit the closest.

So let’s talk about stars or suns. As the night sky will testify, there are many, many stars in the sky. Most are very distant with the nearest night time stars Alpha Proxima. This is a triple star formation in the constellation of Centarus. These stars are approximately 4.2 light years from earth. That is, it takes 4.2 years for the light, traveling at just under 300,000 miles per second, to reach us. But, of course, there is a much closer star, the one we call our sun. Its formal name is “Sol.” Sol or our sun is approximately 93,000,000 miles from the earth. That means the light from the sun or Sol reaches us in just 8.3 minutes.

Our sun is not particularly special in the spectrum of all the stars, and thank God for that. The fact that our sun is rather ordinary and steady is key to life on this earth. It is not the biggest sun by far, but not the smallest either. You see, stars (or suns) have a life cycle. They are born, they live, and they die. However, the timescale on which this occurs is millions of years.

So where does sunshine or the light from the sun come from? This is a question that has intrigued mankind for thousands of years. Ancient myths had the sun as a large burning object carried in a chariot across the sky. Many ancient cultures recognized the sun as key to life with its warmth and light, and even made it into a god. Genesis tells us that the Lord placed the Sun in the sky to govern the day, and rule it does. Due to the bright light of the sun most stars and even the moon cannot be seen during the day. Only the very brightest can compete with Sol during the daylight, and have to wait for nightfall to make their presence known.

Before we start discussing just what makes sunshine, let’s do a little review of physics. As you all remember, all matter (or stuff) is made up of atoms. These atoms are combinations of three atomic particles. First are electrons. Electrons are negatively charged and orbit around the atomic nucleus. In the nucleus are protons and neutrons. Protons have a positive charge and weigh a little more than 1000 time as much as an electron. Neutrons are electrically neutral and weigh an amount about equal to a proton plus an electron.

Electrons, being negative, are attacked to the nucleus which is positive. This is called electrostatic attraction and, as you all recall, unlike charges attract. But what about all those positive protons so tightly packed in the nucleus? Since like charges repel, what holds these particles together? The answer is something called the “strong nuclear force.” This force only operates at very short distances, but it is responsible for keeping the nucleus of an atom together.

There are only four fundamental forces in the universe. Gravity, which holds us bound to the earth and earth bound to the sun; electromagnetic force, which is much, much stronger than gravity and binds the electrons to the nucleus; strong nuclear force (also called the “strong interaction") which is able to overcome the repulsion force of the electromagnetic force and binds the protons to the nucleus, and finally the weak nuclear force (or weak interaction) which is also present in the nucleus of the atom and binds the proton together.

Binds the proton together? I thought a proton was as small as it gets? No, these three fundamental atomic particles, the electron, the proton, and the neutron, are thought to be made up of even smaller particles called “sub atomic particles” and this is the frontier of modern physics as these subatomic particles are explored and explained. The strong and weak interactions will become important as our discussion of sunshine continues.

Now that we have the atomic components down, let’s start building atoms. It is the number of protons in an atom that determine the element. For example, an atom with only one proton is called hydrogen. If it has two protons, it is helium. And so on through the periodic table. Oxygen has 8 and Iron has 26 protons. At the higher end of the table we find lead with 82 protons and uranium with 92. There are some elements, very short lived and not found in nature with over 110 protons, but these elements are very unstable and don’t last very long before splitting into atoms with less protons.

So, with an understanding of these basic building blocks, what makes them shine, how do they grow, and how do they eventually die. A star is born when a massive cloud of hydrogen gas, many times the size of our solar system, is slowly compressed by the force of gravity. The gravitational force compressing the gas gradually heats up the gas, as gravitational energy is converted into the kinetic energy of the hydrogen atoms.

As temperatures keep increasing, the electrons are torn out of their orbits and you get a soup of electrons and nuclei called a "plasma." Plasma is the fourth state of matter after solid, liquid, and gas.

Normally, the repulsive charge of the protons within the hydrogen plasma is sufficient to keep the atoms apart. But at a certain point, when the temperature rises to 10 to 100 million K (a measure of temperature similar to Celsius, but with no negative values) a nuclear reaction occurs. (Zero K is absolute zero, and lowest possible temperature, which is -273.15 degrees C. So 10 to 100 million K is hot, hot, hot.) At this temperature, the kinetic energy of the protons (which are just hydrogen nuclei) overcomes their electrostatic repulsion and they slam into one another. The nuclear force then takes over from the electromagnetic force, and the two hydrogen nuclei “fuse” into helium, releasing vast quantities of energy.

This is called nuclear fusion. The energy released is related to a conversion from mass to energy given by Einstein’s equation e = mc2. That is a small amount of mass (the quality of matter that gives it weight) is lost since the nucleus of helium weighs slightly less than than the nucleus of two hydrogen atoms. Recall that c, equal to the speed of light, is a very large number, and in this equation it is squared making it much, much larger. So a tiny amount of mass converted to energy yields a tremendous amount of heat and light.

In other words, a star is a nuclear furnace, burning hydrogen first and creating nuclear “ash” in the form of waste helium. A star is also a delicate balancing act between the force of gravity, which tends to crush the star into oblivion, and the nuclear force, which tends to blow the star a part with the force of trillions of hydrogen bombs. A star then matures and ages as it exhausts its nuclear fuel.

Our sun is a “yellow” sun. That is the burning of hydrogen into helium produces a spectrum of light in the yellow range. This light can be modeled by stating a temperature in Kelvin that a large black body would have to be heated to so it would produce the same spectrum of light. Sunlight is modeled as 5,000 K. As this light is reflected and refracted during the day, it can be modeled as between 5,000 and 6,000 K. Lights that are designed to simulate sunlight would be in this range. Incandescent lights designed for use with photography and simulating this color of light have been around for a long time. What is new is fluorescent bulbs that produce light in this color range. These fluorescent bulbs are a great benefit to photographers and videographers because they produce much less heat than incandescent and don’t require as much power to operate. I have a complete range of soft and hard light sources using these special bulbs, and they are a lot cheaper and lighter and easier to use.

I won’t get into the evolution of stars and how they change as the hydrogen is eventually exhausted. The final result can be everything from a “red giant” to a “white dwarf” and even a supernova and neutron star or pulsar. Under certain conditions stars may actually evolve into black holes. These are such massive stars that even light cannot escape the pull of gravity, and so they appear black.

Our own Sol is about 5 billion years old. It is considered a middle aged star, and should burn for anther 5 billion years before its supply of hydrogen is exhausted, so you don’t need to get too worried about the sun burning out in our life times. When one first hears the life history of stars, one may be a bit skeptical. After all, no one has ever lived 10 billion years to witness their evolution. However, since there are uncountable stars in the heavens, it is a simple matter to see stars at practically every stage in their evolution. For example, the 1987 supernova, which was visible to the naked eye in the southern hemisphere, yielded a treasure trove of astronomical data that matched the theoretical predictions of a collapsing dwarf with an iron core. Also the spectacular supernova observed by ancient Chinese astronomers in 1054, left behind a remnant, which has now been identified as a neutron star.

Before I close, I mentioned the nearest star other than our own sun, but what is the farthest star we’ve observed? Well that honor is currently held by a star discovered on April 27, 2009 — a self-destructing star that exploded 13.1 billion light years from Earth. It detonated just 630 million years after the big bang, around the end of the cosmic "dark ages", when the first stars and galaxies were lighting up space. The light from this early star is giving us a front row seat to the most ancient of creations.


Just like my daddy used to say …


He used to say soul shine,

It’s better than sunshine,

It’s better than moonshine,

Damn sure better than rain.

Yeah now people don’t mind,

We all get this way some time,

Got to let your soul shine, shine till the break of day.

Saturday, October 23, 2010

A Treatise on Light (and Color)

Abstract
In this article I will attempt to discuss all aspects of light (and color) from the scientific to the esthetic. There is no attribute of light (and color) that will escape analysis. Therefore, contained within this document is everything you might have ever wished to know about light, and possibly a few things you didn’t want to know.

By the way, a suggestion for reading: if you get to a section (nicely indicated by the author provided section headings) that you find too detailed, or that is putting you to sleep, or that is causing bad flashbacks from math class, then just skip that section by jumping to the next heading (so conveniently provided by the author to facilitate skipping).


Inspiration
I was inspired to write this during my short stay in the hospital after surgery. I had a wonderful room on the third floor of this brand new and beautiful hospital called the Medial Center of the Rockies. My room faced east, and I had a very large window in most of the eastern wall. There was a column area just next to my bed that was in a perfect position to block the sun, so I could enjoy the light all day without being cooked like a pheasant under glass.

Saturday morning I awoke before 5:00 AM and watched the light show as the sun slowly rose in my window. I could not see the orb itself, but saw the many colors of sunrise as it slowly rose above the horizon. The blue sky was there, but so were the reds and oranges and other deep, warm colors associated with sunrises and sunsets.

It reminded me of my dad who was an avid sunrise and sunset photographer. He was also a pilot, and I remember going up with him early in the morning to catch those beautiful colors of dawn from 12,000 feet. I grew up in Montana which was snow country, and my dad has hundreds of 35mm slides of the rising (or setting) sun reflected on the snow. Those colors are burned into my childhood.

As I grew and developed a scientific bent, I went to college and started collecting degrees, but I was always drawn back to light. In physics I learned about the theories of light and the dual wave/particle nature of the quantum light packet called the photon.


In the Beginning
Let’s start at the beginning. Genesis 1:3, “And God said, Let there be light: and there was light.” That certainly was the beginning.

Move ahead to Michael Faraday (1791-1867). Faraday studied the magnetic field around a conductor carrying an electric current, and established the basis for the electromagnetic field concept in physics. He discovered electromagnetic induction, diamagnetism, and laws of electrolysis. He established that magnetism could affect rays of light and that there was an underlying relationship between the two phenomena.

We’ve all seen the experiment with a magnet and iron filings that appears to show the existence of some sort of lines of force emanating from the magnet. Faraday demonstrated similar results when an electric current flowed through a wire and established a connection between the electric force and the magnetic force.

He described his fields geometrically using a set of numbers called Faraday’s Field Equations. His concept of a field was accepted as a better explanation of how a magnetic field could induce a voltage and a current in a moving conductor at a distance. It is a much more philosophically pleasing explanation than Newton’s “action at a distance” which he used to explain gravity. (Albert Einstein (1879-1955) would use field equations later in his general theory of relativity to explain gravity.) Basically Faraday described a set of numbers that could be calculated for every point in three dimensional space which modeled the dynamic interaction of electric and magnetic fields.

This work was guided by the earlier research of Carl Frederick Gauss (1777-1865), the “prince” of mathematics, (and not too shabby of a physicist). Gauss had described the static electric field and the static magnetic field mathematically. Charels-Augustin Coulomb (1736-1806) had also discovered important relationships between charged particles that were included in Gauss’ formulas. Faraday continued this work with his field theory.

Here is Faraday’s equation stated using surface and path integrals and the “dot product.”


Figure 1.

“V” is the electric potential measured in volts; “E” is the strength of the electric field; and “l” is the length of wire moving through the field. “A” is a constant characteristic of space, “B” is the strength of the magnetic field, and “S” is the surface area of the magnetic field cut through by the moving wire.

This equation describes a field, a basic geometric quality of space. Thus the connection between moving charge and magnetic fields is a change in the geometry of space, not action at a distance as was the popular understanding at that time.

Later, James Clerk Maxwell (1831-1879) took Faraday’s equation, and combining it with Gauss’ equations, plus another equation developed by Andrei-Marie Ampere (1775-1836), but with an added term for the pure purpose of mathematical symmetry and to match Faraday’s equation. Maxwell’s view was that the set of equations would be more “complete,” more “balanced,” more “symmetrical” with the addition of a term to Ampere’s equation for current. That made it more like Faraday’s equation of voltage.

What a different approach. Gauss, Faraday, and Ampere derived their equations to match experimental results, but Maxwell just used pure math and a striving for a form of mathematical beauty called “symmetry.”


Maxwell’s Equations of Light


Figure 2.

However, the addition of this term led to a remarkable prediction: the existence of electromagnetic waves. With the full set of equations, Maxwell was able to calculate the speed of these waves. He found that their speed was a constant, independent of the nature of the electric and magnetic fields. What Maxwell found was that electromagnetic waves traveled at the speed of light. Maxwell had just discovered a fundamental constant of nature: the speed of light. It just "popped out" of the full set of equations.

Thus, the Maxwell equations not only unify the theories of electricity and of magnetism, but of optics as well. In other words, electricity, magnetism, and light could all be understood as aspects of a single object: the electromagnetic field. Quite a remarkable achievement!

This set of equations predicts that a wave moves through space without the benefit of wires or other conductors. This result was somewhat suspect since there was no experimental evidence of such a phenomenon. However, soon after, an Italian inventor by the name of Gugleielm Marconi (1874-1937) experimentally showed this “radiation field” did exist and started the revolution that led to talk radio and the top 40 hits!

The force described by Maxwell’s equations is called the “electromagnetic” force and is one of the four fundamental forces that exist in nature. (The other three are gravity, and the strong and weak nuclear forces.)

For those intimidated by such foreign looking equations full of symbols that you never saw in any high school math class, don’t feel alone. Although I studied Maxwell’s equations and radio wave propagation while obtaining my four year degree in electronics engineering, I admit I didn’t comprehend the physics and struggled with the math. Sure I could answer the test questions and perform the required calculations, but it was not intuitively obvious to me what was going on.

It wasn’t until I started pursuit of a Master’s degree in math and physics that I got the insights to really understand what was going on. Thanks to Dr. H. M. Schey whose Advanced Partial Differential Equations class at the University of Colorado taught me the intuitive side of Div, Grad, and Curl and helped me understand the different forms of the equations and what each form represented.

Under his tutelage I started using the vector calculus versions of the equations, which were much easier to intuitively understand, and I actually reached the point I could derive the equations from first principles and solid geometry, and not have to rely on my memory. Further, this is really the form that Maxwell used when he inserted the displacement current term to the Ampere equations. Here are the equations in differential form.


Figure 3.

And it was the world renowned George Gamow of the C.U. physics department who had such clear insights into the physical world that some had to rub off on all his students. I did not have a personal relationship with him since there were several hundred students in his class, but I soaked up every morsel I could get from his lectures. It all seemed so simple when he explained it.

I began to see how Maxwell had taken the existing, experimentally derived equations available at that time, and reframed them to match Faraday’s field concepts and to eliminate action at a distance. I must admit, however, I still don’t understand what flash of brilliance led him to add the small correction for displacement current. This adjustment, I learned much later, was actually confirmed experimentally by Heinrich Hertz (1857-1894) before Marconi’s radio experiments.

(Hertz, however, used scalar equations in all his work and not the easier to manipulate vector forms. His “On the Relations between Maxwell’s Fundamental Electromagnetic Equations …” firmly established the field theories of Faraday and Maxwell in the scientific conscious and was a major contributor to Einstein’s work on relativity. It also was the reason that “cycles-per-second was renamed in his honor in 1960.)

So I eventually found my way and felt at home in these theoretical concepts which meshed with my practical experience with X-band radar in the Navy and the design of high frequency FM receivers at A.R.F. products.

Those were heady times for me as I felt I comprehended some of the basic forces of the universe. It is a great feeling when you understand a difficult concept so well you can perform complex calculations in your head.

I even went so far as to purchase a t-shirt that I wore around campus with the statement, “And it came to pass that …” followed by the four equations and the text “and there was light.” I thought I had found the scientific statement that matched Genesis 1:3.


Electromagnetic Radiation
One important characteristic of electromagnetic waves is frequency. Frequency is a measurement of how quickly the polarity of the force reverses and is measured in cycles per second which is referred to as Hertz. KHz is kilohertz or thousands of cycles and MHz is megahertz or millions of cycles.

You can also measure frequency as the length of the wave in space or “wavelength.” Mathematically, frequency is just the reciprocal of wavelength, and vice-versa. As frequency increases, wavelength decreases. We tend to describe radio waves by frequency such as 1230 KHz, KXLO AM radio or 90.1 MHz, KBCO FM radio.

At the higher frequencies of radiation we use wavelength. For example, “microwave” radiation has a wavelength smaller than a centimeter. Visible light is a frequency range even higher. There are radiation with yet higher frequency than light such as ultraviolet which causes sun burns, X-rays which can penetrate the body, and Gamma Rays and other “Cosmic Rays.”

Here is a chart of the frequency ranges and names for the electromagnetic radiation spectrum. It compares the frequency in Hz with the wavelength in meters. Note that you also get electromagnetic radiation from hot objects. That is what produces sunshine. It is the radiation of light from the sun due to the sun’s temperature. You get the same effect in a light bulb by heating the filament until it is “white hot” and emitting light.

Also note the comparison of wavelength to physical objects. That is an important fact because atoms can emit light based on their physical properties. That is how fluorescent lights work. Atoms in a fluorescent coating are excited by energy from the electricity flowing in the gas in the tube and the atoms emit photons of light. With neon lighting that you see in beer signs, the atoms of the gas directly emit photons of very specific, narrow frequencies, and that is why neon signs have those interesting red and orange colors.

It is also important to note how the earth’s atmosphere protects us from high energy photons from space, yet allows radio waves and light to pass.


Figure 4.

It is interesting that the human body can NOT sense most types of electromagnetic radiation, and it is only the narrow band that represents visible light that we have the ability to detect and discern. (Our skin can detect infrared radiation with a sense of warmth, but it is not a very precise sense.)


The Eye
This leads to a study of the eye. After all, it is the eye of the artist that beholds the scene. Wait, that is not entirely true. The eye of the artist presents the scene; it is the artist’s brain, the artist’s talent, the artist’s influences that produce the final product. Still it is a worthwhile place to start as it is at the genesis of it all.

The eye is a wonder of creation. Yes, that’s right, I believe in a creator and not that the eye evolved in some long drawn out application of Darwin’s Survival of the Fittest. I don’t think the earth was created in seven literal days, or even if the sequence of events necessarily matches the book of Genesis. I think the Lord inspired a guide for the Israelites wandering in the wilderness, and scientific accuracy may not have been His primary goal. But I don’t believe it just all happened through mutation and natural selection. As I describe the depth and power of this human sense organ I think you will see that a designer was required.

The eye is much like a camera. It has a lens, it can focus, and it has an iris that can be “stopped down.” But what is the equivalent of the film or digital sensor. Ah that is where the wonder can really begin.

The human eye is a truly astounding piece of biological engineering. It is able to pick up images in near darkness and in blazing sunlight. Overall, the human eye can perceive light in a bright to darkness range of almost a billion to one. Unfortunately when shooting video or film, the critical visual receptor is not your eye, it is the camera, and the camera perceives light differently from your eye and in a much more restricted range.

Light in certain wavelengths is reflected off of objects. Some of this reflected light finds its way into the eye. There, the light beams are focused on a multi-layered receptor called the retina, where 125 million rods and 6 million cones translate the photons into neural impulses. The rods, spread all around the retina, are responsible for dim light and peripheral perception and really do not perceive color. The cones, which are concentrated in a central area call the macula, are responsible for color perception and see in the most detail. They require a higher light level to perceive color and detail.

But the eye is not the most amazing instrument of vision; that really is the human brain – the place where the neural impulses from rods and cones in the back of the eye are assembled and interpreted. What we glibly call “vision” is an incredibly complex event that involves the entire brain and is much more than sight. At least 32centers for visual processing are distributed throughout the brain. The visual experience will normally have every waking minute is a multi-layered integration of two different sets of peripheral vision and the detailed vision of the macula. The neural impulses from these two sets of rods and cones are transmitted to the brain where they are integrated and interpreted.

Recall I stated that you can perceive a contrast range of a billion to one. That is not actually correct because the eye can’t view all of these levels of light at the same time. There are a number of adaptations in the eye that allow it to perceive a contrast range of between 2000:1 and 1000:1. Changes in the pupil diameter work just like the iris in a camera to physically limit the light admitted to the retina, and there is actually a photochemical shift in cone sensitivity. When you leave a brightly lit area into a darkened room you have noticed that it takes some time to get use to the low level of light. When you first walk into a movie theatre while the film is running it takes a while for your eyes to adjust. The retina generates a chemical called rhodopsin which increases the eyes sensitivity. This chemical is bleached out by bright light.

Sailors preparing to go on night watch would spend an hour in a room with only red lighting to build up the rhodopsin prior to going on deck. You are also aware of the almost painful experience of leaving the darkened movie theater into the bright sunlight. While the rhodopsin is bleached out of the eye to reduce sensitivity, you usually shield the light with your hands.


Light and Twentieth Century Physics
Light not only has an impact on the eye and the brain in perceiving, but it is much more than that in the history of science. It was in imagining light and traveling at the speed of light in his head (gedanken experiments – thought experiments) that led Einstein to both the special and the general theories of relativity. He was well on his way to describing all four forces of nature as field phenomenon in his “grand unified theory” when the scientific thought was side tracked by the quantum theory and the “Standard Model.”

(Agreed the Standard Model has been immensely effective and has lots of verification, but I like my scientific theories expressed in elegant equations, not the mish-mash of the Standard Model.) Only today, after fifty years of wandering in the particle zoo wilderness are we back on the field theory with concepts like superstrings and a hyperspace of ten and twenty-six dimensions.

But I digress greatly. I’ll share my views on modern physics and field theory in another note and another time, and discuss then the beauty of ideas from Faraday’s fields, Riemann’s powerful metric tensor, Einstein’s simple curved space, and the Kaluza-Klein theory which is a single sentence combines all of Einstein’s and Maxwell’s equations into a single, multi-dimensional elegance.

Today, I just want to talk about light and color. Light and color has been an object of interest to me for many years. I, like my father, have hundreds of sunrise and sunset pictures, and I have never lost the feeling of wonder at the beautiful fireworks of nature that go off twice a day.


Impressionism
Let’s start with my first visit to the Chicago Museum of Art on a cold Chicago winter day in 1967. It was there that this country boy from Montana first saw the power of the great 18th century artists of the Impressionist movement. That started my lifelong love affair with Impressionism (although I have had a few other mistresses such as Cubism).

While visiting I met a volunteer museum guide. Now I was 20 years old, and I guessed this old guy was about 100. (OK, maybe 65.) He took the time to explain to me how the Impressionist used light in their paintings. That is, they portrayed light. It was a wonderful effect and I could understand how the artist saw the scene and those “impressions” were relayed to me. That is the sign of great art.

Ever since then, in my travels to New York, Los Angeles, Washington, D.C., Berlin, I’ve always visited the key museums and galleries to partake of such wonderful works such as Guilaumin’s Sunset at Ivry or even the American Impressionist Moon over Estes Park by Emerson Glass in the Denver Art Museum.

Interestingly, the Museum of Modern Art (MOMA) in New York had a better collection of these 18th century paintings than the many other museums in N.Y., although the Metropolitan is also very good. Most recently while teaching in Thousand Oaks at a new acquisition of IBM’s, I got a chance to visit the Getty Museum. They have a great collection of Degas, Cezanne, and Renoir.

Claude Monet remains my favorite. I remember first seeing Claude Monet’s Impression, soleil levant (Sunrise) which gave the name to the movement in a museum in Brussels. A picture of a sunrise!


Figure 5.

Remember, the power and delight of the whole Impressionism school is in the use of light. Many were outdoor scenes, but in all the use of light are so special. When I saw these paintings I was so drawn to how the illumination is within the painting. I later learned that, even though the luminance (I’ll discuss that technical term later) of the sun in Monet’s Sunrise is actually the same as the rest of the sky; the effect is that the sun stands as a beacon, a “light on a hill” to the total scene. This is when I first learned how the great artists present to the viewer the image they hold in their minds.


What is Color?
Most are familiar with the experiments performed using a prism that demonstrate that white light is actually made up of a whole spectrum of colors. We see the same effect in the rainbow made famous in the story of Noah.

So what is color? Well it is just the specific frequency or wavelength of light. Just as sound has tones or pitches that rise from the low frequency of the bass guitar or a large drum to the high frequencies of Robert Plant or Steve Winwood, so does light which goes from the low frequencies of the “reds” to the high frequencies of the “violets.”

(Sound is also a wave phenomenon, but it is not a fundamental force of nature. Sound is mechanical movement through a medium such as air or water, while electromagnetic waves do not require a medium. Sound is more like a repeated punch on the shoulder or the waves in the ocean.)


Rainbow
Shall we talk about the rainbow? I use the rainbow to make a point about various levels of testing in one of the technical classes I developed and teach. I ask the students “how many colors in a rainbow?” Usually someone will give one possible correct answer, “seven.” Hmmm, where does that come from. Well, people who are superstitious about numbers consider seven a lucky number. To the Israelites it represented completeness as in the seven creative days and the days of the week. So it makes sense to come up with seven colors: red, orange, yellow, green, blue, indigo, and violet (or purple). Yes those are the common colors of everyday existance … wait … indigo … where did that come from? Just needed another color to make seven. Actually, I think we all know that the correct answer to the question of how many colors in the rainbow is that it is a continum of colors, so the best answer would be infinity. That’s right, there is every color and all colors in the rainbow. But only some actually have names.

As I said, the lowest frequency is red. Electromagnetic radiation at frequencies just below that are called infrared and are involved with heat radiation. And, of course, at the other end of the spectrum is violet with the invisible wavelengths even shorter called ultra-violet.

Just as music is a combination of various frequencies of sound, so light is a combination of various frequencies of light. Many sources of light give off “white” or multiple frequencies or colors. But when this white light reflects off objects, some colors are absorbed and others are reflected. So an object appears blue, because all the other colors (red, orange, yellow, green, indigo, and violet) are absorbed.

Light of one specific wavelength is a pure color or hue just as sound of one specific frequency is a pure tone. Frankly, both are rather boring, and it is in the combination and gradation of sound or color that artistic beauty appears. For example, if you take a pure color and mix in various amounts of white, you get what are referred to as “tints.” If you take a pure color and mix in various amounts of black, you get what are referred to as “shades.”

Reproducing color can actually be done two ways. One is called “additive” color and involves light sources. A very common technique uses the three colors of Red, Green, and Blue (RGB). That is what you see on a color monitor, color TV, or color video projector. You can (theoretically) produce all other colors from an appropriate combination of these three. For example, Red + Green = Yellow. A combination of all three will yield white.

The other kind of color is called “subtractive.” That is what you get when you look at a painting or printing. The light you see is reflected light, so when you see blue, it implies that all the other colors were absorbed, and only the blue was reflected.

In the color printing business, most often, process color is created using combinations of cyan, yellow, and magenta produced by pigments or dyes in the ink or toner. For example the ink color “Y” absorbs blue light and reflects red and green. So you see “Yellow.” You can get black if you combine the three, but it is more effective to add pure black. Hence the CYMK (K for blacK) color process printing.

In both cases the actual image is typically produced by millions of little dots with either RGB or CYMK properties that blend in the eye allowing us to see the image in appropriate colors.

(Of course, it is also possible to print with specific colors, but that usually limits the system to 2 or 3 colors total. The use of partidular dyes to get a specific color is common with clothing. There are charts defining every color and often corporations will define their brand logo as a specific color referencing these standard charts. Printers will try to reproduce the color using CYMK or they may use specific dyes called spot color to get the hue and saturation exactly right. A similar process is used in mixing paint to get a particular color.)

In theory, any color can be produced from an appropriate combination of illumination (RGB) or subtractive (CYMK) processes, but in reality, they have a limited range of color reproduction called a “gamut.”

You can analyze the gamut using a Chromacity Diagram. These diagrams are used to model something called a “color space."


Color Space
One of the first mathematically defined color spaces is the CIE XYZ color space (also known as CIE 1931 color space), created by the International Commission on Illumination at 1931. This color space is based on the Standard Colorimetric Observer functions. The figure shows the related chromaticity diagram with wavelengths in nanometers.


Figure 6.

It allows all other colors to be defined as weighted sum of the three "primary" colors. There are no real three colors that can be combined to give all possible colors. Therefore the standard "primary" colors established by CIE don't correspond to real colors.

So the 3 "primary" colors are the virtual colors A, B, and C. Then for a given real color, its components with respect to the primaries are as follows:

x = A/(A+B+C)
y = B/(A+B+C)
z = C/(A+B+C)

Since x + y + z = 1, if x and y are known then z can be determined.

By mapping all the colors the human eye can see, the chromaticity diagram also makes it easy to visualize the colors a monitor can show or a printer can print.


Conversion
Since RGB and CMYK spaces are both device-dependent spaces, there is no simple or general conversion formula that converts between them. Conversions are generally done through color management systems, using color profiles that describe the spaces being converted. Nevertheless, the conversions cannot be exact, particularly where these spaces have different gamuts.

The problem of computing a colorimetric estimate of the color that results from printing various combinations of ink has been addressed by many scientists. A general method that has emerged for the case of halftone printing is to treat each tiny overlap of color dots as one of 8 (combinations of CMY) or of 16 (combinations of CMYK) colors, which in this context are known as Neugebauer primaries. The resultant color would be an area-weighted colorimetric combination of these primary colors, except that the Yule–Nielsen effect ("dot gain") of scattered light between and within the areas complicates the physics and the analysis; empirical formulas for such analysis have been developed, in terms of detailed dye combination absorption spectra and empirical parameters.

I’m sure most of you have had the experience of walking into an electronics store with dozens of color TVs showing the same channel, perhaps a football game. Did you notice the grass was a different green on every screen? Older color TVs had adjustments for color and tint or some other equivalent terms. My favorite was a TV with a setting that simply disabled all the customer adjustments and went back to the factory settings. That “fixed” a lot of broken TVs, especially after the kids got done twisting all the knobs hidden behind the little trap door.

Modern TVs have self adjusting color circuits, but I would wager you will still see several colors of green grass when you visit the TV display at the local store.

So, as you can see, color science can become very complicated. At the printer company where I work we have specific people trained in color science and we are constantly tweaking our color correction program code and profiles to fit the needs of a specific customer or to allow a new printer to print the same colors as the previous printer model or manufacturer. As the technical quality leader of the corporation, I often have to deal with complaints such as “this color printed fine on our Xerox printer, but now it isn’t the same on your printer.” At that point, our color scientists are the first people I call. Unfortunately, this sometimes means writing specific code for each and every customer. We are working with Adobe and others to create more generic color correction profiles and deploy them world wide.

This is very precise and very subtle work, and the color matching is done under controlled conditions of light source. Again, a comparison to music and fine instruments such as a Stradivarius violin would be appropriate. In fact, we often refer to the tonal content of music and of musical instruments as “color.”

Color Television
As a person who grew up in the 50’s, I was very aware of TV. My parents didn’t have one, but grandma and grandpa did, and I watched plenty of old black and white programs while visiting them. I later learned the engineering marvel and masterpiece that retrofitted color to the existing monochrome system, without making old B&W sets obsolete.

TV has a specific bandwidth of 6 MHz. That is, the channel assigned to a particular TV station is 6 MHz wide. For example, channel 2 is 54-60 MHz; channel 3 is 60-66 MHz, and so on. In that channel the FCC allocated 4.5 MHz for the picture or video content and the rest for audio and guard band.

So along comes color, where do you put the color signal. Well the engineers at the time analyzed the spectrum of B&W TV and realized that it had greatly reduced amplitude at the higher video frequencies and, due to the very dominate signal from the refresh or frame rate, there were “openings” in the band near the top of the signal. So they designed a 3.58 MHz sub carrier to contain the color data. The B&W signal is referred to as the “luminance” signal since it determines brightness. The 3.58 MHz sub carrier was modulated with the “chrominance” signal carrying the color. The result was that the color signal did not have as high of a resolution as the monochrome or luminance component, however that worked well because the human eye does not see color as precisely as monochrome. (Remember the rods and the cones.) For example, perhaps you’ve seen a fine pen and ink drawing colored with water colors. Even though the water colored component is not as finely detailed as the black ink, it is very pleasing to the eye as the ink provides the detail and the, literally, broader brush of color is combined in our vision.


Figure 7.

That NTSC color TV scheme was introduced in North America in 1953 and survives to this day, although digital and high definition color are rapidly taking its place in the consumer’s home.


Color Wheels
Let’s talk about another view of color familiar to any home decorator or graphic designer. The color wheel, interestingly, was also explored by Isaac Newton and James Maxwell. There are color wheels based on the primary, secondary, tertiary, and even 12 colors. They are often used to determine color harmony. In addition to pure colors or “hues” there are also variations called “saturation.” I spoke earlier about tones where the hues are mixed with black and tints where the hues are mixed with white. You can get color wheels that have tones or tints in addition to the hues. For simplicity, let’s just focus on the pure bright hues. Rather than seven colors (rainbow) I find the 12 color wheel most useful, and – in fact – I’m currently using it on the design of a CD cover for my granddaughter.


Figure 8.

Examples of using the color wheel in graphic design follow. In addition to the colors, black and white are used in the overall design.

Colors that are opposite each other on the color wheel are considered to be complementary colors (example: red and green). The high contrast of complementary colors creates a vibrant look especially when used at full saturation. This color scheme must be managed well so it is not jarring. Complementary color schemes are tricky to use in large doses, but work well when you want something to stand out. Complementary colors are really bad for text.


Figure 9.

Analogous color schemes use colors that are next to each other on the color wheel. They usually match well and create serene and comfortable designs. Analogous color schemes are often found in nature and are harmonious and pleasing to the eye. Make sure you have enough contrast when choosing an analogous color scheme. Choose one color to dominate, a second to support. The third color is used (along with black, white or gray) as an accent.


Figure 10.

A triadic color scheme uses colors that are evenly spaced around the color wheel. Triadic color schemes tend to be quite vibrant, even if you use pale or unsaturated versions of your hues. To use a triadic harmony successfully, the colors should be carefully balanced -- let one color dominate and use the two others for accent.


Figure 11.

The split-complementary color scheme is a variation of the complementary color scheme. In addition to the base color, it uses the two colors adjacent to its complement. This color scheme has the same strong visual contrast as the complementary color scheme, but has less tension. The split-complimentary color scheme is often a good choice for beginners, because it is difficult to mess up. Another variation on split complementary is choosing one color, then go to the color directly opposite and chose the colors on each side of the complementary color.


Figure 12.

The square color scheme is similar to the rectangle, but with all four colors spaced evenly around the color circle. Square color schemes works best if you let one color be dominant. You should also pay attention to the balance between warm and cool colors in your design.


Figure 13.

This is just a start to the use of color wheels in graphic design or decorating, but you should understand how the color wheels combined with symmetry effects can be very useful. (Oh, wait, wasn’t it mathematical symmetry that led to Maxwell’s equations for light? Why yes, the design of the creation keeps reappearing if you look closely.)

Why is the sky blue?
This seems like a question a child would ask, and they do. Do you know the answer?

The blue color of the sky is caused by the scattering of sunlight off the molecules of the atmosphere. This scattering is called Rayleigh scattering. When photons (light) cross the atmosphere, some of the photons will be absorbed by gas molecules. This puts the molecule in an excited state, and it is then free to drop down to ground state again and release the energy in the form of another photon. (Recall that the wavelength of light is the size of molecules and atoms, so there are strong interactions.

To excite the molecule, you must do so with a photon at or near its resonant frequency. It so happens that the resonant frequency of the gas molecules in the atmosphere is in the purple-blue part of the visible spectrum. This means that it will absorb and scatter much of the blue light contained in the sun's rays, green to a lesser degree, yellow to a lesser degree and red to a lesser still degree. This is why the sky is blue; some of the blue light coming from the sun is scattered laterally by the gas molecules in the atmosphere. We see the blue light coming at us from all directions in the sky.

Sunsets are reddish because the sun is not directly overhead and its rays must cross through much more atmosphere than the midday sun. After having crossed so much air, most of the blue light is scattered out, as well as most of the green. This leaves the red, yellow and orange colors free to paint their pictures of fiery sunsets and hazy moons.


Sunrise and sunset
So that takes me full circle back to sunrises and sunsets. I realize now I don’t have any copies of those early sunrise pictures my dad used to take back in the fifties. I’ll have to locate those slides and scan them into my computer the next time I’m in Oregon. For now, please enjoy these pictures of sunsets on the Pacific coast I took on my last visit.










Conclusion
And so ends our journey through light (and color). I know the exhausted reader is not going to agree, but there is so much more that can be said about light (and color). It is light that connects us with our family and friends at a dinner party and it is light that connects us with the distant galaxies.

My concern is will I lose the feeling of wonder and appreciation of God’s creation by digging deeply into the scientific explanations. (Not that the scientists have it all figured out – far from that.)

Let me close, then, with a poem by Walt Whitman. And I suggest that you, too, go outside and look up in perfect silence at the stars.


When I Heard the Learn’d Astronomer by Walt Whitman, 1865

When I heard the learn'd astronomer,
When the proofs, the figures, were ranged in columns before me,
When I was shown the charts, the diagrams, to add, divide, and measure them,
When I sitting heard the learned astronomer where he lectured with much applause in the lecture room,
How soon unaccountable I became tired and sick,
Till rising and gliding out I wander'd off by myself,
In the mystical moist night-air, and from time to time,
Look'd up in perfect silence at the stars.

Tuesday, September 21, 2010

Some thoughts on the amazing music of Brian Wilson

Just finished “Heroes and Villains” by Steven Gaines. It is a biography of the Beach Boys. I’ve always been a big fan of Brian Wilson and his work, plus I own every Beach Boy album and CD there is — even some UK pressings. In the mid sixties, Brian was writing amazing music despite his personal problems. I graduated from High School in 1965, and these were my teen age symphonies. I know kids today don’t know the rest of the story about the Beach Boys, and especially the special albums “Pet Sounds” and the almost non-existing “Smile” LPs. (Do kids today even know what “LPs” are?) So, sit back and wonder through the musical pages with me. Come over some time and I’ll play “Heroes And Villains” and "Mrs. O’Leary’s Cow” or “Cabin Essence” for you. I know you know “Good Vibrations.”

There are three types of person that misunderstand the Beach Boys. The first are latter day employees of their record label and management, who purposefully market their career as one long four-decade celebration of surfing, summer, and the fun to be had on hot days (especially where girls and various makes of car are concerned).

This in turn gives rise to the other two categories of Beach Boys misunderstand-er. The first are those who fall for the “summer fun” image and myth. They can be found buying the latest repackaging of the obvious hit singles as "Endless Summer Dreams III" whenever they are told to by television adverts, sing along to “Be True To Your School” as if its sentiments ever held any kind of weight among the cool cats, and regard “Good Vibrations” and “Heroes And Villains” as "the bit when they went all flower power." In their universe there is nothing beyond the well known hit singles, but that isn't necessarily any reason to hold them in snobbish contempt, as musical elitists also tend to be guilty of the exact same blindered misunderstandings for the exact same reasons.

Cooler-than-thou types will yak for ages and ages about how they hate The Beach Boys, their folkie harmonies and their clean cut “All American Boy” image (which in itself is a misconception, as proved when you look at any early photos of them — how could any of the band that started out as the “Pendeltones” and wore the signature Oregon wool shirts possibly have been considered to fit into that category?), and regard their music as an irritating triviality that gets in their way in a world where people could be spending more productive use of their time listening to Led Zeppelin and Nirvana. Needless to say, all of these people are wrong.

For starters, there's nothing about their early material that warrants such gratuitous trivialization. Maybe some of it does fall perilously close to the wrong side of bubble gum and unlistenable, but for every “I Get Around” there's a “Warmth of the Sun”, an “In My Room” and a “California Girls.” More to the point, the concentration on this aspect of their career deliberately masks — very conveniently for all parties — some other aspects that are decidedly at odds with the manner in which they would seem to prefer us to regard The Beach Boys.

For example, there's the incident from the late 1960s when Carl Wilson was drafted to fight in Vietnam and refused to go. He was then ordered to do community service, which he also refused to do. Eventually a compromise was reached, but by then the band had so upset polite society in America that for a couple of years, their popularity went into a decline that saw them return from filling stadiums in the UK to playing small concert halls in their homeland. Talk about The Doors and John Lennon until you're blue in the face if you like, but you won't find a more startling example of an artist taking on the establishment for the sake of staying true to his principles in the entire history of 1960s pop music. Then there's the band's very successful flirtation with the progressive rock movement in the early 1970s — of which more later — and a surprisingly far from embarrassing attempt to go disco in the latter part of the decade. And then there's the mid-1960s.

As mentioned earlier, the compilations love to paint a picture of the early Beach Boys as clean-cut, flag-saluting, fun-loving All American boys with a tried and tested formula of dated hip jargon, “Four Freshmen” folkie harmonies (an actual early influence!) and rudimentary musical backings. You'll find nothing difficult or complicated here, the subtext appears to be. Come on in — surf's up, and the water's fine. Yet even among all of that nonsense about being bugged with driving down the same old strip, there was something remarkable going on. Brian Wilson had started his musical career as a bass player, occasional vocalist and unstoppable songwriting machine who could turn out dozens of cookie cutter compositions each month.

Since being let loose among the developing technologies and possibilities of the recording studio, however, he had started to develop pretentions towards something more elaborate and artsy. Increasingly responsible for the band's arrangements and production, he had started to craft symphonic backings for songs like “In The Back Of My Mind,” and his songwriting was also beginning to display more innovative touches with the atypical and unexpected chord changes in “The Warmth Of The Sun” and the famously inventive intro to “California Girls.” Surprisingly, given the phenomenal output of the band in the first half of the 1960s, most of the songs were written and recorded in brief bursts between near non-stop rounds of touring, and then as the early albums progress chronologically there is a definite sense that Brian Wilson would have created something far more substantial if he had the time and in late 1965, he finally did get the time.

Hardly the least sensitive or most stable of souls, Brian Wilson had been badly affected by the band's relentless work-rate, and the incessant touring had such a detrimental effect on him, both mentally and physically, that he was advised to sit out the next couple of tours on medical grounds. The others recruited Bruce Johnston to fill his position in the live line-up, and Brian was left with plenty of free time in which to perfect his songwriting. With the aid of The Wrecking Crew, an elite team of session musicians (including Hal Blaine and Glen Campbell) who played on most of the biggest American pop hits of the decade and whose versatility and dexterity allowed Brian to overcome the limitations of using his band mates to supply the instrumental parts, he was encouraged to work away at backing tracks in the studio while The Beach Boys were “officially” out on the road. While enjoying his extended break of rest and relaxation, Brian was introduced to two influences that would chance his approach to music forever. The first was of an “herbal” nature and came wrapped inside a suspiciously thick cigarette.

The second was The Beatles' pivotal album "Rubber Soul," which saw them break from the constraints of their established “Mersey Sound” to experiment with dense musical textures and atypical, downbeat lyrics. Brian was so taken with both of these new experiences, possibly both encountered at the same time, that he made it his stated intention to produce something where "a whole album becomes a gas." Prior to this time, most albums were made up of a hit single or two bundled with a bunch of 3rd or 4th rate "filler" songs. Certainly previous Beatles albums were filled with good music, but that was more an indication of the high quality of ALL Beatles songs. He meant a “gas” in the sense that those who were given to supporting “flower power” understood it, and set about writing and recording something that represented, to all intents and purposes, his personal equivalent to "Rubber Soul." The album in question, which could indeed be rightfully described as a “gas” if you are given to using such beatnik slang, arrived in 1966 and was named "Pet Sounds." (Ironically, the Beatles cite "Pet Sounds" as an inspiration to their following "Sgt. Peppers" album!) ((Funny how talent can inspire talent and music matures and prospers due to these kinds of cross pollinations.))

Although Brian's reminiscences about this period of intense creativity have tended to revolve around an interminable and confused anecdote about watching a tapestry bird fly around the room for hours on end, the truth of the matter is that he spent hundreds of hours in the studio working on adventurous new compositions, and the tapes still exist to prove this (and have in fact seen release as the box set "The Pet Sounds Sessions," which contains some interesting pieces although it would be a brave listener who could actually claim to listen to the whole set in its entirety). Armed with only a skillful team of musicians and his own seemingly limitless imagination, he painstakingly rehearsed and perfected musical ideas until they coalesced into dense sonic tapestries, augmenting “traditional” Beach Boys arrangement and instrumentation with layer upon layer of banjos, sleigh bells, delicate keyboard sounds and lush orchestration. The resultant backing tracks were far in advance of anything that the Beach Boys had produced previously, and while they were still identifiable as being broadly characteristic of their established sound, they were far removed from the glory days of “Surfin' USA” and “Help Me Rhonda” in terms of structure and melody as well as instrumentation.

Not surprisingly, Brian decided that these sophisticated new compositions would require lyrics to match. Previously, Brian had furnished his compositions with lyrics written by his cousin and fellow Beach Boy Mike Love, who was adept at conjuring up the sort of catchy alliterative phrases heard on their most famous early hits. For this new project, he wanted to say something deeper, and so brought in advertising man Tony Asher to translate the emotions he intended each backing track to convey into words. At a time when the popular music industry was geared almost exclusively towards churning out radio-friendly hit singles at as frantic a pace as was physically possible, and before the majority of people had started to regard pop as anything more than lightweight and ephemeral, this method of working was radical and experimental, and with the obvious exception of "Rubber Soul" was totally without precedent, and the results were little short of breathtaking.

At the time, though, not everyone agreed with that sentiment. The other Beach Boys had been on tour for virtually the entirety of the sessions, and were understandably somewhat startled by the sudden change of direction. When recording session began for the vocal tracks, several members of the band voiced concerns about how such a move into uncharted musical waters could have a detrimental — and possibly irreversible — effect on their sales figures, and even the normally placid Al Jardine was heard to remark with some unease that this was "a whole new thing." Before long, there were serious disagreements about the nature of some of the material, and Mike Love succeeded in forcing a rewrite of the overtly drug-influenced “Hang On To Your Ego,” which became “I Know There's An Answer.”

In the end, all that was changed were a few scattered words and the two-line chorus, and the released version had the exact same vocal arrangement and backing track as “Hang On To Your Ego” had done — so next time you hear some clever individual opining how they don't like “I Know There's An Answer” but adore “Hang On To Your Ego,” treat their groundless and smug attempts at appearing intellectual with the contempt that they deserve. By the time that the vocals were being recorded, the projected release date was looming so close that there was barely any time left to mix the album.

Finally, the entire finished album was mixed in one frantic day long session, with the result that a bit of studio chatter accidentally found its way onto “Here Today” (incidentally, although rumors have long persisted that the barely-audible muttering is some kind of coded message to Charles Manson or something, it actually features nothing more satanic than the band discussing cameras and Brian asking the engineer to rewind the tape), and there was no time to overdub the vocal track on to “Let's Go Away For A While,” which ended up as an instrumental.

Even after the various Beach Boys had been placated and a master tape had been hastily cobbled together, there was still the pertinent question of exactly how Capitol Records would be able to market the album. There were no obvious hit singles contained on the album (they eventually settled on “Wouldn't It Be Nice” and “Sloop John B,” both more downbeat and introspective than any previous Beach Boys single), and after years of pushing the band as the ultimate purveyors of good time surf pop, it was going to require an enormous rethink in marketing strategy to successfully present them as serious musicians.

In any case, Capitol didn't manage to successfully present The Beach Boys as serious musicians. In the days before the advent of album bands and alternative music, dominating radio and making the top twenty were seen as the be all and end all of a record's success, and "Pet Sounds" was simply too complex to achieve either at that point in time. Reviewers, radio programmers and listeners alike were all confused by the new sounds, and sales were correspondingly disappointing.

Or at least they were in America. Over in Britain, where the Beatles' ever-lengthening studio experiments were the subject of frequent front-page coverage and bands like The Jimi Hendrix Experience and Pink Floyd were generating excitement on the live circuit, "Pet Sounds" was hailed as a masterpiece and sold in healthy quantities. (Recall that Pink Floyd worked for years, and finally abandoned an album that was to only contain sounds like cars and jackhammers somehow fit into musical scores. “Atom Heart Mother” was the much more traditional result.)

As the band had only enjoyed moderate and sporadic success in the UK up to that point, it was enough to convince the band and Capitol that it was worth persevering with Brian's vision in the hope that, before long, America would catch on too.

"Pet Sounds" may not really have caught on at the time of release, but in subsequent years it has come to be rightfully recognized as one of the best albums ever made. Quite aside from the intricate beauty of Brian's songs (notably “That's Not Me,” “Don't Talk (Put Your Head On My Shoulder),” the widely-loved “God Only Knows,” the tellingly autobiographical and startlingly prophetic “I Just Wasn't Made For These Times,” and the instrumental title track, that sounds like surf music would if the composer was catching a wave somewhere on Mars), the musical backdrop is one of fascinating depth and clarity, using over amped bass guitars, french horn arrangements and even early electronic instruments like the theremin at a time when most other major artists thought it was the height of experimentation to use a trumpeter.

The album has been praised by musicians as diverse as Paul McCartney and John Cale, and remains one that anyone with even the vaguest interest in music ought to hear. “I Just Wasn't Made For These Times” may have been describing Wilson's own insecurity about himself and his abilities, but its sentiments could also be seen as the perfect encapsulation of the story of the album itself; greeted with initial confusion as though the world wasn't quite ready for the scope of its invention and originality, but later recognized for its true power and strength, it was a record that can genuinely lay claim to having been ahead of its time.

As it happened, by the time that "Pet Sounds" was released to a disappointingly mixed reception, Brian was already busy in the studio and working on a single that he hoped would mirror all of the achievements of the album in under three minutes. Endless musical variations were worked out on the basic musical idea of “Good Vibrations” before Brian edited the best ones into a three minute single, and the result still sounds startling even today. “Good Vibrations” moves seamlessly through a succession of changes in mood and tempo and seemingly unrelated musical segments, but succeeds in sounding like a song that had been purposefully written from start to finish as a pop single. The masterstroke of production was the fact that the final chorus and inspired fade-out had been recorded in a completely different studio to the rest of the track, the subtle sonic changes making it sound as though it comes crashing in from another dimension when it arrives after a couple of seconds of well-judged silence.

Although “Good Vibrations” was the product of similar experimentation to that which had created "Pet Sounds," it differed in that it boasted an infectious and upbeat melody reminiscent of their earlier singles, waves of cascading vocals on the chorus, and strong lyrics by Mike Love that married his earlier simplistic style with the evocative aspirations of Brian's recent work. What's more, it was ideally suited to radio play, and “Good Vibrations” rocketed to the top of the charts on both sides of the Atlantic.

In America, the success of the single was enough to restore confidence in the band's abilities, while in Britain; the Beach Boys achieved the previously unimaginable feat of toppling the Beatles in the music press end of year polls. Buoyed by this success, Brian announced he was starting work on an even more ambitious project — a projected album that he described, with excitement at the possibilities rather than any sense of arrogance or egotism — as "a teenage symphony to God."

Behind the scenes, however, all was not quite as well as the success of “Good Vibrations” might have made it appear. While the other Beach Boys had been pleased with the success of the single, they still hadn't forgotten the relative failure of "Pet Sounds" and were resenting the stranglehold that Brian now seemed to have over the group — not to mention finding it difficult to slot his more complicated new material comfortably in amongst their earlier work in their live set. Meanwhile, Tony Asher had stormed off describing Brian as "a genius musician, but an amateur human being" in an ominous foretaste of what lay ahead. As Mike Love was out on the road and wouldn't have been particularly keen on writing any more lyrics for “Brian's ego music” anyway, classically trained composer Van Dyke Parks was brought on board as a new lyricist. Together the two began work on a project that they described as an “American gothic trip” blending Brian's increasingly adventurous and evocative compositions with equally evocative and decidedly elliptical lyrics from Van Dyke.

Odd rumors about what they and the Wrecking Crew had been up to in the studio began to filter out to the music press (who, ironically, probably knew more about the intended album at that point than the other Beach Boys did), but little was known for certain until Brian was invited to perform on a serious television documentary presented by Leonard Bernstein, and entitled "Inside Pop." For the broadcast, he chose to perform a new song called “Surf's Up” alone at the piano. Although its title may well be reminiscent of the songs for which The Beach Boys are better known, the song itself could not be further removed from that style. Even in this rough and unadorned early incarnation, it is recognizable as a composition of remarkable and incredible depth, and in retrospect it's hardly surprising that such an air of anticipation and expectation grew up around the album, initially known as "Dumb Angel" and then later renamed "Surf's Up," that this performance was acting as a trailer for.

"Smile" was originally intended for release early in 1967; Capitol assigned it a release date and printed not only an elaborate full color cover (stored for years in a warehouse and finally destroyed), but also a lavish illustrated lyric booklet, and fully expected it to be delivered and released on time. However, when the other Beach Boys returned from touring to record their vocals, the future of "Smile" suddenly started to look a lot less certain. Brian had opted for the tactic of recording the album in small individual musical segments to be joined up at a later date rather than as complete takes of individual songs, and this left them without any tangible compositions to use as a frame of reference.

More significantly, however, they were puzzled and frustrated by the impenetrable meaningless of Van Dyke's lyrics. Unease grew as they ran through their vocal parts, culminating in a furious row that saw Mike Love screaming "what do these lyrics mean?" when called on to add lead vocals to a song called “Cabin Essence.” Fearing that he might become the cause of a rift between the Wilson brothers, Van Dyke immediately quit the project, leaving Brian without any vocal supporters.

Hardly the most strong-willed of individuals, he reacted to the stance adopted by the rest of the band by retreating further into his hallucinogenic habit, and unofficially abandoning "Smile." With insecurity clouding his creative abilities and his psyche further imbalanced by his mammoth chemical intake (not long before, he had run from a movie theatre in terror after a character in a film addressed another as "Mr. Wilson"), this was the start of a mental decline that would haunt him for many years.

"Smile" was to have been preceded by “Heroes And Villains,” a seven minute song spread across two sides of a single. As the second part had not been assembled from Brian's fragmentary recordings, a new and heavily truncated version was hurriedly recorded and put out some months later as an A-side (the B-side was “You're Welcome,” a catchy vocal chant that itself had been intended for "Smile"). Unsurprisingly, the single failed to replicate the success of “Good Vibrations,” and public excitement over "Smile" began to dissipate.

However, there was no "Smile," at least not in a releasable state, and Capitol was putting the band under immense pressure to come up with a new album. In one day-long session, they recorded rushed, badly arranged and at times near unlistenable versions of some of the songs that had been intended for the album, added the single versions of “Good Vibrations” and “Heroes And Villains” for good measure, and put it out as "Smiley Smile." During a summer that was dominated by The Beatles' acclaimed "Sergeant Pepper's Lonely Heart's Club Band," the lackluster offering was barely noticed.

The rest of the band quickly went back into the studio and knocked together the “back to basics” set "Wild Honey" and the impressive single “Do It Again,” which re-established them as the successful Beach Boys that they had been before "Pet Sounds," and it looked as though "Smile" had been quietly and conveniently forgotten about.

However, in the long term the record proved to be very difficult to forget about, and material that was intended for the abandoned album had a habit of leaking out in various places. Longtime Beach Boys associates Jan and Dean released a cover version of “Vegetables,” and both “Our Prayer” and “Cabin Essence” turned up on the otherwise straightforward Beach Boys album "20/20" in 1968. Even “Do It Again” ended with a couple of seconds of sounds of hammering and sawing wood, which originated from one of Brian's more adventurous "Smile" sessions.

In the early 1970s, The Beach Boys found new favor with the progressive rock audience, who recognized parallels between Brian Wilson's mid-1960s work and the sophisticated progressive rock that had followed in its wake. Inevitably the subject of "Smile" arose again, with the result that both “Cool Cool Water” (which had originally formed part of an intended “Elements Suite” on "Smile," where it was known as “I Love To Say Da-Da”) and “Surf's Up” were dragged out and touched up for release, the latter becoming the title track of the band's 1971 album.

Throughout the following years there were continual hints that "Smile" was due for imminent release in some form, but all of these came to nothing until the unissued “Heroes And Villains Part One” turned up as a bonus track on a CD issue of "Smiley Smile" in 1990, and most of the tracks were included on the "Good Vibrations" box in 1993.

Needless to say, there have been countless theories proposed on how the world might have been different if "Smile" had been released, ranging from the predictable and thoroughly unrealistic deification of Brian Wilson and the supposition that its release might have prevented wars and pioneered nuclear fusion, to the rather more realistic possibility that it would have met with an even more baffled and unenthusiastic response than "Pet Sounds" had done, and would have forced the Beach Boys into a panic-stricken return to their original style and image, with the rest of the story running pretty much as it did in reality.

Needless to say, most of the speculation was based on the fact that "Smile" was to all intents and purposes unfinished, and that the world had been left with the merest tantalizing glimpse of a legendary project to fuel their imaginations. Yet the album was completed in the late 1980s, when Brian Wilson returned to the Capitol tape archive under the guidance of his long-term psychologist Dr. Eugene Landy, and assembled the tapes into some semblance of the album as he had originally intended back in 1966.

With the official release of much of the material and the availability of much of the rest on bootleg, it has become possible for listeners to piece together their own complete version of "Smile" too. So how does the legendary album really sound? Well, it certainly puts a new perspective on many of the mythologies that have built up around its making and contents.

Tapes, including the aforementioned “woodchopping session” and another that features the band making animal noises, that had baffled bootleggers for years and led to all manner of speculation about Brian's mental state at the time, are presented in their proper musical context and suddenly seem to make a lot more sense. Although already familiar, “Our Prayer,” “You're Welcome,” “Surf's Up,” and “Cabin Essence” still sound amazing (the latter being one of the best songs recorded during the 1960s, and about as far removed from the stereotypical view of the Beach Boys' music as you can get), as do the breezy “Wind Chimes” and the hilarious “I Wanna Be Around Friday Night.” The two-part “Heroes And Villains” is certainly more interesting and adventurous than the better-known single version, but it starts to drag towards the end, and many of the segments feel like they've just been tagged on for the sake of it rather than for any valid musical reason. Similarly, even though Paul McCartney can reputedly be heard somewhere in the backing track, “Vegetables” just seems a bit silly (not least the oddly "do-it-yourself" -like sentiments of the verse where the listener is asked to write in and tell the band the name of their favorite vegetable!).

On the other hand, some standalone fragmentary pieces like “The Old Master Painter” work perfectly, and the continued back-references to recurring musical motifs (in particular, hints of “Heroes and Villains” and “Good Vibrations” show up at regular intervals) lend the album a symphonic and thematic feel. Although made up of seemingly unconnected fragments, the “Elements Suite” is highly effective, and succeeds in evoking each of the elements in its component pieces; the jubilant “Look!,” the sparkling “I Love To Say Dada,” the tribal feel of “Earth Chant” and the notorious “Mrs. O'Leary's Cow.” The latter track was recorded during a session where the musicians were asked to wear fire service uniforms and small bonfires were lit in the studio. This succeeded in helping create the right sort of surging, powerful feel for the track, but also had the unfortunate side effect of further heightening Brian's paranoia when they learned that a nearby building had burnt down at the same time as the session had been held. Believing his music to be responsible, he reputedly destroyed the master tapes by burning them — although this quite obviously did not actually happen!

The highlight of the album is without question “Wonderful,” a beautiful and mysterious love song with a delicate arrangement that fits between the fragments “He Gives Speeches” and “Child Is Father To The Man” in near-ethereal fashion. Overall, it isn't quite the musical holy grail that popular mythology has built it up to be, and it certainly would not have found favor with a mass audience in 1967, but it's certainly a challenging and adventurous work that would have been hailed as a masterpiece many times by now.

The Beach Boys and their marketing advisers might well prefer the public to remember them as the neatly turned out young men who sang “Help Me Rhonda” and posed on hot rods on their album sleeves, but their true musical legacy remains "Pet Sounds," "Smile," and “Good Vibrations.” All are well worth hearing, not merely because they still sound fascinating and breathtaking adventurous even all this time later, but because they're extremely useful for disproving misconceptions about The Beach Boys.

If you're short of something to do, why not try playing “Mrs. O'Leary's Cow” to someone who thinks the band was only ever responsible for lightweight insubstantial pop fluff, and asking them what they think of it. Or better still, why not play “Cabin Essence” to someone who likes them because they believe that the band were only responsible for lightweight 1960s pop fluff. Let's see them do their ironic sixties dance to that...

Hey Mickey, What's with all the Notes?

I’m sure you’ve been wondering why I’ve been writing so many “notes” in Facebook. What’s that, you hadn’t even noticed? Well …

(And why do they call them “notes”? I would consider them “blogs,” which, by the way, I think is a terrible name. It is a blend of the terms “web log,” not even a good acronym in the IBM manner like "ASCII." (There's a joke in there; do you get it?) It is true that the power of the web, allowing anyone to post content, is the source of the name "blog" as well as the object. In the old days, you had to go to a “vanity publisher” and pay to have your thoughts published — at least those whose thoughts were not deemed “commercial.”)

(And what’s with all the “quote marks”? (And should the question mark go inside the quote like periods and commas do? I have so many questions.)))

Well, getting back, why I publish “notes,” (and I think they would best fit the description of “articles,” although I’m not sure where these articles would be published), I do it to express myself. (No, not Madonna! Charlie Wright and the Watts 103rd Street Rhythm Band:)

Express Yourself!
Express Yourself!
You don’t ever need help from nobody else. All you got to do now:
Express Yourself!

What ever you do, do it good. What ever you do, do it good. All right...
It’s not what you look like, when you’re doin’ what you’re doin’.
It’s what you’re doin’ when you’re doin’ what you look like you’re doin’!

Express Yourself! Express Yourself!
They’re doin ‘it on the moon, yeah... In the jungle too.
Everybody on the floor, now. Jumpin’ like a kangaroo.
So let the horns do the thing they do, yo...
Some people have everything, and other people don’t.
But everything don’t mean a thing if it ain’t the thing you want.

Express Yourself!
Express Yourself!
O, do it! O, do it. Do it to it.
Go on and do it.
Yo, do it. Give.
Express Yourself!
Express Yourself

Now that is poetry … Shakespearean even … Go Charlie … express yourself.

Yeah, "It’s not what you look like, when you’re doin’ what you’re doin’. It’s what you’re doin’ when you’re doin’ what you look like you’re doin’!" So, what do I look like I’m doin’? Are you lookin’ at me? Are you lookin’ at me? (And what happened to all the “g’s”?)

Sorry, I got distracted again. Short attention span, you know. Now where was I … (those are called ellipsis, and there are only supposed to be three … think about that people!)

I know you’ve all heard of “left brain, right brain” stuff. You know, the left brain is where the logical, sequential, rational, ratiocinative (now there’s a $20 word!!), analytical, objective, view things as parts, modular, thinking occurs

… and right brain is where the random, intuitive, holistic, synthesizing, perspicacious (OK, that’ll be $40 please), subjective, view things as whole, complete thinking occurs.

The left brain is rational and the right brain is creative. I’ve spent my life and my career working in the left brain side. Of course, that is a simplification, because math and engineering and invention is in there too, but we tend to think of artists and musicians and poets and novelist as being right brain.

I have a need to be creative. I suspect we all do. That is one reason I’m drawn to music and photography and creation of multimedia objects; especially arts where I can apply technology, science, and my knowledge and skills. AND THAT IS WHY I WRITE!! (Stop shouting!!!)

But I am also a teacher by inclination and — at times — trade. I love to explain things. Hell, let’s be honest, I just love to talk. A classroom was a perfect, captive audience, venue for me. But people kept interrupting me with questions, “could you hold that until I’ve finished talking, please.” Writing is perfect — no-one raising their hand or jumping in with their view on what I was so perfectly pontificating.

Oh how I love to write. In my best Dr. Seuss: “Oh the things I think and once they’re thunk they must be placed on the page, ker-plunk.”

I have so many things I would like to talk about. And so many interests I want to pursue.

— Isn’t the internet wonderful? Why if I was writing about the synchronicity between certain Beach Boys songs and Beatles songs and the impact of “Penny Lane,” I can quickly Google the release dates of “Pet Sounds” and “Good Vibrations” and contrast them with the release of “Rubber Soul,” the “Penny Lane” single, and “Sgt. Peppers.” Love that Google. (I first used a search engine called Alta Vista — it was nice — wonder what happened to it — a-hah — a “note.” — No, make that an “article,” and stop with all the dashes already.)

(Did anyone notice the single dash or "minus" vs. the double "daaash"? And thank you MS Word for providing the correct typographical and lexilogical symbol. "LEXILOGICAL" … oh now you're just making up words. What a pompous ass! or is it: What! A pompous ass? Did you know "pompis" is Spanish for "backside"? A pompis ass … hmmmm … redundant.)

((And what about all these parentheses … are they just parenthetical, or are they key to understanding the thinking?) (((STOP interrupting me !!))) … or should it be {[(STOP interrupting me !!)]} … now I like that … so mathematical.

Sorry about that; where was I; oh yes; now I have a blog, and I know none of you even know about it. Maybe some? Sum? Zero sum?? Alas, I have no “followers.” [Steve has “followers.” Why can’t I get any “followers?”] (See http://mickey-cheatham.blogspot.com/ — see: no followers!)

But, on Facebook, I have “followers” … err … “friends.” But, again, alas, I’ve seemed to have lost them too. I used to post notes on FB and get comments and “likes.” But, I overdid it, I know that’s the problem, the last few notes just disappeared into the ether (proven to not exist by the Michelson Morley experiment, 1887, (thanks Google) which ultimately led to Einstein’s special theory of relativity — a-hah, another note.)

So, even though I am just talking to myself — and no interruptions please — that is why I write “notes” or, as I prefer, “articles.”

No, they won’t stop me until they take this keyboard from my cold dead fingers. I have a first amendment right you know, I can say what I please and political correctness be damned (oops, sorry about that kids, better flag this as mature audience only), I’ll say what I want, no matter how illogical and poorly informed, ‘cause I got the right. Scene: crowded theater, actor turns to audience, “Fire!,” “Fire!” … "not ‘till you see the whites of their eyes." "OK pilgrim.")

{Do you like jazz? Do you know what “scat singing” is? How about “stream of consciousness”? Well, this is “stream of unconsciousness.” How do you like it so far?}

And so ends a note without a single smiley face. Isn’t life grand? What’s that? A piano # (Oh my God, is that a question? A statement. An exclamation! An explanation!?! What punctuation do I use? I can’t take this any longer!)

Coda

Friday, May 14, 2010

My Time in (Aero) Space

Today’s final launch of the shuttle Atlantis (and the two remaining launches before the entire fleet goes into mothballs) has me reminiscing. It was 1973 and I had just moved to Colorado after leaving the Navy. My first job was with A.R.F. Products. They had a little R & D Lab in Boulder on Valmont Reservoir with about 20 engineers and 10 support people. The main manufacturing plant was in Raton, New Mexico, and we did all the research and government work.

I was hired as an engineering technician (I had not completed my EE degree at that point), and worked on the design and test of “Command Receivers.” These were little UHF FM radios that received signals and activated relays. They were entirely self-contained and typically used to receive the dreaded “Command Destruct Signal.” This is a radio signal to a missile or rocket commanding the built-in explosive package to detonate. This was done if a missile or rocket booster went off course to prevent it from crashing into the ground. Instead, just pieces crash into the ground.

Now my high frequency experience from the Navy was all vacuum tube, klystron, magnetron, traveling wave tube, and stuff like that. The receiver I was working on at A.R.F. had a 500 MHz, integrated circuit, Phase Locked Loop local oscillator and complementary CMOS transistor RF front end; absolute state of the art. I was like a kid in a candy store working with this latest (for 1970) technology. It was very expensive in those days, but these were government contracts, so let the cost be damned!

My primary job was acceptance testing. We would manufacture about 30 of these babies a month, and I would put them through their paces. We called it “shake and bake.” I would put the receivers into a small environmental chamber, about the size of a microwave oven, and take them up to 100 degrees centigrade: that’s the boiling point of water. I would test them for sensitivity and spurious signal rejection and harmonic operation points and they had to pass perfectly. Then down to minus 40 degrees C (same temperature as minus 40 F) using CO2 as the cooling agent and repeat tests.

I would also put them on a vibration tester. This was a giant, water cooled coil about one foot across. It was just like the driver of a loudspeaker, only it was 1,000 watts. I would drive it from a signal generator sweeping the frequency from 5 Hz to 1000 Hz at 10 Gs of acceleration. (We later added random signal tests — I suggested we play Led Zeppelin, but the stuffy old engineer insisted on some signal source that matched milspec 100.17b — no Led Zep!)

If the receiver failed any of these tests, I would troubleshoot and fix it. I remember trying to hold a scope probe on one of the receiver’s circuit boards while it shook at 10 Gs. Finally soldered wires to the test points to do the signal trace.

I got to go to Wiz-Mar a few times (White Sands Missile Range) when we had some telemetry failures. The problem turned out to be static electricity. Solid state devices have always been sensitive to static discharge. When we assembled the CMOS devices, they came with a wire wrapping all the pins and grounding out the case. We would use special mats to solder on and had wrist straps grounding us out. I was not allowed to wear any jewelry. We built telemetry devices that would be taken out on the range and installed in these instrument boxes in preparation for a missile launch. When they plugged in the antenna, the static would zap the front end of the receiver. I actually saw a blue spark once. The wind and the sand at Wiz-Mar were awful.

Our command receivers were used in early Boeing cruise missiles. Then we got the call to design a receiver for the shuttle. We completely redid the design and built about 500 of the receivers. They are still used today, two of them, one in each solid fuel booster. (There have been about 130 shuttle launches, with two of our receivers on every one.)

When the Challenger shuttle disaster occurred, our receivers were used to destroy the solid fuel boosters because their parachutes failed due to the external fuel tank explosion. It was a sad day for all of us that had worked on the shuttle, but I was proud our little A.R.F. contribution worked as intended. I have a big picture in my office of the shuttle being prepared on the pad. It was a gift from a friend. I still look at that picture with the eyes of Arthur C. Clark. That, folks, is a space ship — well, maybe more of a delivery van — but it goes into space!

Later in the 70’s, I started teaching at Electronics Technical Institute in Denver, Colorado, but still worked at A.R.F. nights and weekends. I got involved in some power supply designs and also a special radio running at extremely low frequency to be used in mines. That never really worked out. We didn’t even get to creating prototypes because the math just didn’t work. It is just hard to get radio signals to pass through a mile or more of dirt. Wouldn't it have been great to have those underground radios during this recent coal mine disaster?

My entire early career was around two technical areas. One was testing and the other was radio. From my time as a radio station and later TV station engineer, to my Navy experience as a calibration technician and radio technician, to my teaching of microwave electronics and F.C.C. License preparation, to my work on UHF radio gear at A.R.F., I was the “analog guy.” It wasn’t until ten years later at IBM that I started working in computers. And then the focus became test. And that is where I still am today.

So, since graduating from Navy Electronics Technician 'A' School in 1967 to retirement some time in 2011, I've worked with technology for forty-four years, and that doesn't count my pre-High School experience with HAM radio. I think I probably started all this stuff in 1959 at the tender age of 12 — actually I think I started at the age of 9 with my first telescope. (Yup, I was gonna be an astronomer. Certain of that.)

Today I can play the radio, but I haven’t designed one in three decades. So this is how it ends for an old HAM Radio guy. No radio for you. No space shuttle for you. And in about one more year, no more computers for you.

So it is with some sadness (actually a lot of sadness) that I see my career coming to an end. I plan to be very involved with photography, video, and production business after I retire, but other than fixing people’s PCs, I don’t see much of a future in designing and programming computers. I did have a lot of fun this last week when a vendor was in Boulder and we got to install and check out a nice static analysis tool, and I got a fast refresh in UNIX, but you know I’ve already given all my UNIX text books away to old friends and I’m on the downward slide to social security.

Still I remember those heady days when the smell of alcohol was in the air and the frost from liquid O2 was on the side of the rocket and hearing the loud speaker in the block house count down: three, two, one, zero … all systems are go, we have LAUNCH.

What’s that honey? Oh, you said lunch. I thought … never mind!