Technology
This article is about the use and knowledge of techniques and processes for producing goods and services. For other uses, see
Technology (disambiguation).
A
steam turbine
with the case opened. Such turbines produce most of the electricity
used today. Electricity consumption and living standards are highly
correlated.
[1] Electrification is believed to be the most important engineering achievement of the 20th century.
Technology ("science of craft", from
Greek Ï„Îχνη,
techne, "art, skill, cunning of hand"; and
-λογία,
-logia[2]) is first robustly defined by Jacob Bigelow in 1829 as: "...
principles,
processes, and
nomenclatures of the more conspicuous arts, particularly those which involve
applications of science, and which may be considered useful, by promoting the benefit of society, together with the emolument [compensation
[3]] of those who pursue them".
[4]
- Principle is a term defined current-day by Merriam-Webster[5]
as: "a comprehensive and fundamental law, doctrine, or assumption", "a
primary source", "the laws or facts of nature underlying the working of
an artificial device", "an ingredient (such as a chemical) that exhibits
or imparts a characteristic quality".[6]
- Process is a term defined current-day by the United States Patent Laws (United States Code Title 34 - Patents)[7] published by the United States Patent and Trade Office (USPTO)[8]
as follows: "The term 'process' means process, art, or method, and
includes a new use of a known process, machine, manufacture, composition
of matter, or material."[9]
- Nomenclature is term defined by Merriam-Webster[10]
as: "name, designation", "the act or process or an instance of naming",
"a system or set of terms or symbols especially in a particular
science, discipline, or art".[11]
- Application of Science is a term defined current-day by the United States' National Academies of Sciences, Engineering, and Medicine[12]
as: "...any use of scientific knowledge for a specific purpose, whether
to do more science; to design a product, process, or medical treatment;
to develop a new technology; or to predict the impacts of human
actions."[13]
The simplest form of technology is the development and use of basic
tools. The
prehistoric discovery of
how to control fire and the later
Neolithic Revolution increased the available sources of food, and the invention of the
wheel helped humans to travel in and control their environment. Developments in historic times, including the
printing press, the
telephone, and the
Internet, have lessened physical barriers to
communication and allowed humans to interact freely on a global scale.
Technology has many effects. It has helped develop more advanced
economies (including today's
global economy) and has allowed the rise of a
leisure class. Many technological processes produce unwanted by-products known as
pollution and deplete natural resources to the detriment of Earth's
environment. Innovations have always influenced the
values of a society and raised new questions of the
ethics of technology. Examples include the rise of the notion of
efficiency in terms of human
productivity, and the challenges of
bioethics.
Philosophical debates have arisen over the use of technology, with disagreements over whether technology improves the
human condition or worsens it.
Neo-Luddism,
anarcho-primitivism, and similar
reactionary
movements criticize the pervasiveness of technology, arguing that it
harms the environment and alienates people; proponents of ideologies
such as
transhumanism and
techno-progressivism view continued technological progress as beneficial to society and the
human condition.
Definition and usage
The use of the term "technology" has changed significantly over the
last 200 years. Before the 20th century, the term was uncommon in
English, and it was used either to refer to the description or study of
the
useful arts[14] or to allude to technical education, as in the
Massachusetts Institute of Technology (chartered in 1861).
[15]
The term "technology" rose to prominence in the 20th century in connection with the
Second Industrial Revolution. The term's meanings changed in the early 20th century when American social scientists, beginning with
Thorstein Veblen, translated ideas from the German concept of
Technik into "technology." In German and other European languages, a distinction exists between
technik and
technologie
that is absent in English, which usually translates both terms as
"technology." By the 1930s, "technology" referred not only to the study
of the
industrial arts but to the industrial arts themselves.
[16]
In 1937, the American sociologist Read Bain wrote that
"technology includes all tools, machines, utensils, weapons,
instruments, housing, clothing, communicating and transporting devices
and the skills by which we produce and use them."
[17]
Bain's definition remains common among scholars today, especially
social scientists. Scientists and engineers usually prefer to define
technology as
applied science, rather than as the things that people make and use.
[18]
More recently, scholars have borrowed from European philosophers of
"technique" to extend the meaning of technology to various forms of
instrumental reason, as in
Foucault's work on
technologies of the self (
techniques de soi).
Dictionaries and scholars have offered a variety of definitions. The
Merriam-Webster Learner's Dictionary
offers a definition of the term: "the use of science in industry,
engineering, etc., to invent useful things or to solve problems" and "a
machine, piece of equipment, method, etc., that is created by
technology."
[19] Ursula Franklin,
in her 1989 "Real World of Technology" lecture, gave another definition
of the concept; it is "practice, the way we do things around here."
[20] The term is often used to imply a specific field of technology, or to refer to
high technology or just
consumer electronics, rather than technology as a whole.
[21] Bernard Stiegler, in
Technics and Time, 1, defines technology in two ways: as "the pursuit of life by means other than life," and as "organized inorganic matter."
[22]
Technology can be most broadly defined as the entities, both
material and immaterial, created by the application of mental and
physical effort in order to achieve some value. In this usage,
technology refers to tools and machines that may be used to solve
real-world problems. It is a far-reaching term that may include simple
tools, such as a
crowbar or wooden
spoon, or more complex machines, such as a
space station or
particle accelerator. Tools and machines need not be material;
virtual technology, such as
computer software and
business methods, fall under this definition of technology.
[23] W. Brian Arthur defines technology in a similarly broad way as "a means to fulfill a human purpose."
[24]
The word "technology" can also be used to refer to a collection
of techniques. In this context, it is the current state of humanity's
knowledge of how to combine resources to produce desired products, to
solve problems, fulfill needs, or satisfy wants; it includes technical
methods, skills, processes, techniques, tools and raw materials. When
combined with another term, such as "medical technology" or "space
technology," it refers to the state of the respective field's knowledge
and tools. "
State-of-the-art technology" refers to the
high technology available to humanity in any field.
Technology can be viewed as an activity that forms or changes culture.
[25]
Additionally, technology is the application of math, science, and the
arts for the benefit of life as it is known. A modern example is the
rise of
communication technology, which has lessened barriers to human interaction and as a result has helped spawn new subcultures; the rise of
cyberculture has at its basis the development of the
Internet and the
computer.
[26] Not all technology enhances culture in a creative way; technology can also help facilitate
political oppression and war via tools such as guns. As a cultural activity, technology predates both
science and
engineering, each of which formalize some aspects of technological endeavor.
Science, engineering and technology
Antoine Lavoisier conducting an experiment with combustion generated by amplified sun light
The distinction between science, engineering, and technology is not always clear.
Science is systematic knowledge of the physical or material world gained through observation and experimentation.
[27] Technologies are not usually exclusively products of science, because they have to satisfy requirements such as
utility,
usability, and
safety.
[citation needed]
Engineering is the
goal-oriented
process of designing and making tools and systems to exploit natural
phenomena for practical human means, often (but not always) using
results and techniques from science. The development of technology may
draw upon many fields of knowledge, including scientific, engineering,
mathematical,
linguistic, and
historical knowledge, to achieve some practical result.
Technology is often a consequence of science and engineering,
although technology as a human activity precedes the two fields. For
example, science might study the flow of
electrons in
electrical conductors
by using already-existing tools and knowledge. This new-found knowledge
may then be used by engineers to create new tools and machines such as
semiconductors,
computers,
and other forms of advanced technology. In this sense, scientists and
engineers may both be considered technologists; the three fields are
often considered as one for the purposes of research and reference.
[28]
The exact relations between science and technology in particular
have been debated by scientists, historians, and policymakers in the
late 20th century, in part because the debate can inform the funding of
basic and applied science. In the immediate wake of
World War II,
for example, it was widely considered in the United States that
technology was simply "applied science" and that to fund basic science
was to reap technological results in due time. An articulation of this
philosophy could be found explicitly in
Vannevar Bush's treatise on postwar science policy,
Science – The Endless Frontier:
"New products, new industries, and more jobs require continuous
additions to knowledge of the laws of nature ... This essential new
knowledge can be obtained only through basic scientific research."
[29]
In the late-1960s, however, this view came under direct attack, leading
towards initiatives to fund science for specific tasks (initiatives
resisted by the scientific community). The issue remains contentious,
though most analysts resist the model that technology simply is a result
of scientific research.
[30][31]
History
Paleolithic (2.5 Ma – 10 ka)
The use of tools by
early humans was partly a process of discovery and of evolution. Early humans evolved from a
species of
foraging hominids which were already
bipedal,
[32] with a brain mass approximately one third of modern humans.
[33] Tool use remained relatively unchanged for most of early human history. Approximately 50,000 years ago, the use of tools and
complex set of behaviors emerged, believed by many archaeologists to be connected to the emergence of fully modern
language.
[34]
Stone tools
Hominids started using primitive stone tools millions of years ago.
The earliest stone tools were little more than a fractured rock, but
approximately 75,000 years ago,
[35] pressure flaking provided a way to make much finer work.
Fire
The discovery and utilization of
fire, a simple
energy source with many profound uses, was a turning point in the technological evolution of humankind.
[36] The exact date of its discovery is not known; evidence of burnt animal bones at the
Cradle of Humankind suggests that the domestication of fire occurred before 1 Ma;
[37] scholarly consensus indicates that
Homo erectus had controlled fire by between 500 and 400 ka.
[38][39] Fire, fueled with
wood and
charcoal,
allowed early humans to cook their food to increase its digestibility,
improving its nutrient value and broadening the number of foods that
could be eaten.
[40]
Clothing and shelter
Other technological advances made during the Paleolithic era were
clothing
and shelter; the adoption of both technologies cannot be dated exactly,
but they were a key to humanity's progress. As the Paleolithic era
progressed, dwellings became more sophisticated and more elaborate; as
early as 380 ka, humans were constructing temporary wood huts.
[41][42] Clothing, adapted from the fur and hides of hunted animals, helped humanity expand into colder regions; humans began to
migrate
out of Africa by 200 ka and into other continents such as
Eurasia.
[43]
Neolithic through classical antiquity (10 ka – 300 CE)
An array of Neolithic artifacts, including bracelets, axe heads, chisels, and polishing tools
Human's technological ascent began in earnest in what is known as the
Neolithic Period ("New Stone Age"). The invention of polished
stone axes was a major advance that allowed
forest clearance
on a large scale to create farms. This use of polished stone axes
increased greatly in the Neolithic, but were originally used in the
preceding
Mesolithic in some areas such as
Ireland.
[44] Agriculture fed larger populations, and the transition to
sedentism allowed simultaneously raising more children, as infants no longer needed to be carried, as
nomadic ones must. Additionally, children could contribute labor to the raising of crops more readily than they could to the
hunter-gatherer economy.
[45][46]
With this increase in population and availability of labor came an increase in
labor specialization.
[47] What triggered the progression from early Neolithic villages to the first cities, such as
Uruk, and the first civilizations, such as
Sumer, is not specifically known; however, the emergence of increasingly
hierarchical
social structures and specialized labor, of trade and war amongst
adjacent cultures, and the need for collective action to overcome
environmental challenges such as
irrigation, are all thought to have played a role.
[48]
Metal tools
Continuing improvements led to the
furnace and
bellows and provided, for the first time, the ability to
smelt and
forge of
gold,
copper,
silver, and
lead – native metals found in relatively pure form in nature.
[49]
The advantages of copper tools over stone, bone, and wooden tools were
quickly apparent to early humans, and native copper was probably used
from near the beginning of
Neolithic times (about 10 ka).
[50]
Native copper does not naturally occur in large amounts, but copper
ores are quite common and some of them produce metal easily when burned
in wood or charcoal fires. Eventually, the working of metals led to the
discovery of
alloys such as
bronze and
brass (about 4000 BCE). The first uses of iron alloys such as
steel dates to around 1800 BCE.
[51][52]
Energy and transport
The
wheel was invented circa 4000 BCE.
Meanwhile, humans were learning to harness other forms of energy. The earliest known use of wind power is the
sailing ship; the earliest record of a ship under sail is that of a Nile boat dating to the 8th millennium BCE.
[53] From prehistoric times, Egyptians probably used the power of the annual
flooding of the Nile
to irrigate their lands, gradually learning to regulate much of it
through purposely built irrigation channels and "catch" basins. The
ancient
Sumerians in
Mesopotamia used a complex system of canals and levees to divert water from the
Tigris and
Euphrates rivers for irrigation.
[54]
According to archaeologists, the
wheel was invented around 4000 BCE probably independently and nearly simultaneously in Mesopotamia (in present-day
Iraq), the Northern Caucasus (
Maykop culture) and Central Europe.
[55] Estimates on when this may have occurred range from 5500 to 3000 BCE with most experts putting it closer to 4000 BCE.
[56] The oldest artifacts with drawings depicting wheeled carts date from about 3500 BCE;
[57]
however, the wheel may have been in use for millennia before these
drawings were made. More recently, the oldest-known wooden wheel in the
world was found in the Ljubljana marshes of Slovenia.
[58]
The invention of the wheel revolutionized trade and war. It did
not take long to discover that wheeled wagons could be used to carry
heavy loads. The ancient Sumerians used the
potter's wheel and may have invented it.
[59] A stone pottery wheel found in the city-state of
Ur dates to around 3429 BCE,
[60] and even older fragments of wheel-thrown pottery have been found in the same area.
[60] Fast (rotary) potters' wheels enabled early
mass production of pottery, but it was the use of the wheel as a transformer of energy (through
water wheels,
windmills, and even treadmills) that revolutionized the application of
nonhuman power sources. The first two-wheeled carts were derived from
travois[61] and were first used in Mesopotamia and
Iran in around 3000 BCE.
[61]
The oldest known constructed roadways are the stone-paved streets of the city-state of Ur, dating to circa 4000 BCE
[62] and timber roads leading through the swamps of
Glastonbury, England, dating to around the same time period.
[62] The first long-distance road, which came into use around 3500 BCE,
[62] spanned 1,500 miles from the
Persian Gulf to the
Mediterranean Sea,
[62] but was not paved and was only partially maintained.
[62] In around 2000 BCE, the
Minoans on the Greek island of
Crete built a fifty-kilometer (thirty-mile) road leading from the palace of
Gortyn on the south side of the island, through the mountains, to the palace of
Knossos on the north side of the island.
[62] Unlike the earlier road, the Minoan road was completely paved.
[62]
Plumbing
Ancient Minoan private homes had
running water.
[64] A bathtub virtually identical to modern ones was unearthed at the Palace of Knossos.
[64][65] Several Minoan private homes also had
toilets, which could be flushed by pouring water down the drain.
[64] The ancient Romans had many public flush toilets,
[65] which emptied into an extensive
sewage system.
[65] The primary sewer in Rome was the
Cloaca Maxima;
[65] construction began on it in the sixth century BCE and it is still in use today.
[65]
The ancient Romans also had a complex system of
aqueducts,
[63] which were used to transport water across long distances.
[63] The first
Roman aqueduct was built in 312 BCE.
[63] The eleventh and final ancient Roman aqueduct was built in 226 CE.
[63] Put together, the Roman aqueducts extended over 450 kilometers,
[63] but less than seventy kilometers of this was above ground and supported by arches.
[63]
Medieval and modern history (300 CE – present)
Innovations continued through the
Middle Ages with innovations such as
silk, the
horse collar and
horseshoes in the first few hundred years after the fall of the
Roman Empire.
Medieval technology saw the use of
simple machines (such as the
lever, the
screw, and the
pulley) being combined to form more complicated tools, such as the
wheelbarrow,
windmills and
clocks. The
Renaissance brought forth many of these innovations, including the
printing press (which facilitated the greater communication of knowledge), and technology became increasingly associated with
science,
beginning a cycle of mutual advancement. The advancements in technology
in this era allowed a more steady supply of food, followed by the wider
availability of consumer goods.
The
automobile revolutionized personal transportation.
Starting in the United Kingdom in the 18th century, the
Industrial Revolution was a period of great technological discovery, particularly in the areas of
agriculture,
manufacturing,
mining,
metallurgy, and
transport, driven by the discovery of
steam power. Technology took another step in a
second industrial revolution with the harnessing of
electricity to create such innovations as the
electric motor,
light bulb, and countless others. Scientific advancement and the discovery of new concepts later allowed for
powered flight and advancements in
medicine,
chemistry,
physics, and
engineering. The rise in technology has led to
skyscrapers and broad
urban areas whose inhabitants rely on
motors to transport them and their food supply. Communication was also greatly improved with the invention of the
telegraph,
telephone,
radio and
television. The late 19th and early 20th centuries saw a revolution in transportation with the invention of the
airplane and
automobile.
The 20th century brought a host of innovations. In
physics, the discovery of
nuclear fission has led to both
nuclear weapons and
nuclear power.
Computers were also invented and later
miniaturized utilizing
transistors and
integrated circuits.
Information technology subsequently led to the creation of the
Internet, which ushered in the current
Information Age. Humans have also been able to
explore space with
satellites (later used for
telecommunication) and in manned missions going all the way to the moon. In medicine, this era brought innovations such as
open-heart surgery and later
stem cell therapy along with new
medications and treatments.
Complex
manufacturing and
construction techniques and organizations are needed to make and maintain these new technologies, and entire
industries
have arisen to support and develop succeeding generations of
increasingly more complex tools. Modern technology increasingly relies
on training and education – their designers, builders, maintainers, and
users often require sophisticated general and specific training.
Moreover, these technologies have become so complex that entire fields
have been created to support them, including
engineering,
medicine, and
computer science, and other fields have been made more complex, such as
construction,
transportation, and
architecture.
Philosophy
Technicism
Generally, technicism is the belief in the utility of technology for improving human societies.
[66]
Taken to an extreme, technicism "reflects a fundamental attitude which
seeks to control reality, to resolve all problems with the use of
scientific–technological methods and tools."
[67]
In other words, human beings will someday be able to master all
problems and possibly even control the future using technology. Some,
such as Stephen V. Monsma,
[68] connect these ideas to the abdication of religion as a higher
moral authority.
Optimism
Optimistic assumptions are made by proponents of ideologies such as
transhumanism and
singularitarianism, which view
technological development
as generally having beneficial effects for the society and the human
condition. In these ideologies, technological development is morally
good.
Transhumanists generally believe that the point of technology is
to overcome barriers, and that what we commonly refer to as the
human condition is just another barrier to be surpassed.
Singularitarians believe in some sort of "
accelerating change"; that the rate of technological progress accelerates as we obtain more technology, and that this will culminate in a "
Singularity" after
artificial general intelligence is invented in which progress is nearly infinite; hence the term. Estimates for the date of this Singularity vary,
[69] but prominent futurist
Ray Kurzweil estimates the Singularity will occur in 2045.
Kurzweil is also known for his history of the universe in six
epochs: (1) the physical/chemical epoch, (2) the life epoch, (3) the
human/brain epoch, (4) the technology epoch, (5) the artificial
intelligence epoch, and (6) the universal colonization epoch. Going from
one epoch to the next is a Singularity in its own right, and a period
of speeding up precedes it. Each epoch takes a shorter time, which means
the whole history of the universe is one giant Singularity event.
[70]
Some critics see these ideologies as examples of
scientism and
techno-utopianism and fear the notion of
human enhancement and
technological singularity which they support. Some have described
Karl Marx as a techno-optimist.
[71]
Skepticism and critics
On the somewhat skeptical side are certain philosophers like
Herbert Marcuse and
John Zerzan,
who believe that technological societies are inherently flawed. They
suggest that the inevitable result of such a society is to become
evermore technological at the cost of freedom and psychological health.
Many, such as the
Luddites and prominent philosopher
Martin Heidegger, hold serious, although not entirely, deterministic reservations about technology (see "
The Question Concerning Technology"
[72]). According to Heidegger scholars
Hubert Dreyfus
and Charles Spinosa, "Heidegger does not oppose technology. He hopes to
reveal the essence of technology in a way that 'in no way confines us
to a stultified compulsion to push on blindly with technology or, what
comes to the same thing, to rebel helplessly against it.' Indeed, he
promises that 'when we once open ourselves expressly to the essence of
technology, we find ourselves unexpectedly taken into a freeing claim.'
[73]
What this entails is a more complex relationship to technology than
either techno-optimists or techno-pessimists tend to allow."
[74]
Some of the most poignant criticisms of technology are found in
what are now considered to be dystopian literary classics such as
Aldous Huxley's
Brave New World,
Anthony Burgess's
A Clockwork Orange, and
George Orwell's
Nineteen Eighty-Four. In
Goethe's Faust,
Faust selling his soul to the devil in return for power over the
physical world is also often interpreted as a metaphor for the adoption
of industrial technology. More recently, modern works of science fiction
such as those by
Philip K. Dick and
William Gibson and films such as
Blade Runner and
Ghost in the Shell project highly ambivalent or cautionary attitudes toward technology's impact on human society and identity.
The late cultural critic
Neil Postman
distinguished tool-using societies from technological societies and
from what he called "technopolies," societies that are dominated by the
ideology of technological and scientific progress to the exclusion or
harm of other cultural practices, values, and world-views.
[75]
Darin Barney has written about technology's impact on practices of
citizenship
and democratic culture, suggesting that technology can be construed as
(1) an object of political debate, (2) a means or medium of discussion,
and (3) a setting for democratic deliberation and citizenship. As a
setting for democratic culture, Barney suggests that technology tends to
make
ethical
questions, including the question of what a good life consists in,
nearly impossible because they already give an answer to the question: a
good life is one that includes the use of more and more technology.
[76]
Nikolas Kompridis has also
written about the dangers of new technology, such as
genetic engineering,
nanotechnology,
synthetic biology, and
robotics.
He warns that these technologies introduce unprecedented new challenges
to human beings, including the possibility of the permanent alteration
of our biological nature. These concerns are shared by other
philosophers, scientists and public intellectuals who have written about
similar issues (e.g.
Francis Fukuyama,
Jürgen Habermas,
William Joy, and
Michael Sandel).
[77]
Another prominent critic of technology is
Hubert Dreyfus, who has published books such as
On the Internet and
What Computers Still Can't Do.
A more infamous anti-technological treatise is
Industrial Society and Its Future, written by the Unabomber
Ted Kaczynski
and printed in several major newspapers (and later books) as part of an
effort to end his bombing campaign of the techno-industrial
infrastructure. There are also subcultures that disapprove of some or
most technology, such as self-identified
off-gridders.
[78]
Appropriate technology
The notion of
appropriate technology was developed in the 20th century by thinkers such as
E. F. Schumacher and
Jacques Ellul
to describe situations where it was not desirable to use very new
technologies or those that required access to some centralized
infrastructure or parts or skills imported from elsewhere. The
ecovillage movement emerged in part due to this concern.
Optimism and skepticism in the 21st century
This section mainly focuses on American concerns even if it can reasonably be generalized to other Western countries.
The inadequate quantity and quality
of American jobs is one of the most fundamental economic challenges we
face. [...] What's the linkage between technology and this fundamental
problem?
—
Bernstein, Jared, "It’s Not a Skills Gap That’s Holding Wages Down: It’s the Weak
Economy, Among Other Things," in The American Prospect, October 2014
In his article,
Jared Bernstein, a Senior Fellow at the
Center on Budget and Policy Priorities,
[79] questions the widespread idea that
automation, and more broadly, technological advances, have mainly contributed to this growing
labor market
problem.
His thesis appears to be a third way between optimism and skepticism.
Essentially, he stands for a neutral approach of the linkage between
technology and American issues concerning
unemployment and declining wages.
He uses two main arguments to defend his point.
First, because of recent technological advances, an increasing number of
workers are losing their jobs. Yet, scientific evidence fails to
clearly demonstrate that technology has displaced so many workers that
it has created more problems than it has solved. Indeed,
automation
threatens repetitive jobs but higher-end jobs are still necessary
because they complement technology and manual jobs that "requires
flexibility judgment and common sense"
[80] remain hard to replace with
machines. Second, studies have not shown clear links between recent technology advances and the wage trends of the last decades.
Therefore, according to Bernstein, instead of focusing on
technology and its hypothetical influences on current American
increasing unemployment and declining wages, one needs to worry more
about "bad policy that fails to offset the imbalances in demand, trade,
income, and opportunity."
[80]
For people who use both the Internet and mobile devices in excessive quantities it is likely for them to experience
fatigue and over exhaustion as a result of disruptions in their sleeping patterns. Continuous studies have shown that increased
BMI and weight gain are associated with people who spend long hours online and not exercising frequently.
[81] Heavy Internet use is also displayed in the school lower grades of those who use it in excessive amounts.
[82]
It has also been noted that the use of mobile phones whilst driving
has increased the occurrence of road accidents — particularly amongst
teen drivers. Statistically, teens reportedly have fourfold the amount
of road traffic incidents as those who are 20 years or older, and a very
high percentage of adolescents write (81%) and read (92%) texts while
driving.
[83] In this context, mass media and technology have a negative impact on people, on both their mental and physical health.
Complex technological systems
Thomas P. Hughes
stated that because technology has been considered as a key way to
solve problems, we need to be aware of its complex and varied characters
to use it more efficiently.
[84] What is the difference between a
wheel or a
compass and cooking machines such as an
oven or a
gas stove? Can we consider all of them, only a part of them, or none of them as technologies?
Technology is often considered too narrowly; according to Hughes, "Technology is a creative process involving human ingenuity".
[85]
This definition's emphasis on creativity avoids unbounded definitions
that may mistakenly include cooking “technologies," but it also
highlights the prominent role of humans and therefore their
responsibilities for the use of complex technological systems.
Yet, because technology is everywhere and has dramatically changed landscapes and societies, Hughes argues that
engineers,
scientists, and
managers
have often believed that they can use technology to shape the world as
they want. They have often supposed that technology is easily
controllable and this assumption has to be thoroughly questioned.
[84] For instance,
Evgeny Morozov particularly challenges two concepts: “Internet-centrism” and “solutionism."
[86]
Internet-centrism refers to the idea that our society is convinced that
the Internet is one of the most stable and coherent forces. Solutionism
is the ideology that every social issue can be solved thanks to
technology and especially thanks to the internet. In fact, technology
intrinsically contains uncertainties and limitations. According to
Alexis Madrigal's
review of Morozov's theory, to ignore it will lead to “unexpected
consequences that could eventually cause more damage than the problems
they seek to address."
[87] Benjamin R. Cohen and Gwen Ottinger also discussed the multivalent effects of technology.
[88]
Therefore, recognition of the limitations of technology, and more
broadly, scientific knowledge, is needed – especially in cases dealing
with
environmental justice
and health issues. Ottinger continues this reasoning and argues that
the ongoing recognition of the limitations of scientific knowledge goes
hand in hand with scientists and engineers’ new comprehension of their
role. Such an approach of technology and science "[require] technical
professionals to conceive of their roles in the process differently.
[They have to consider themselves as] collaborators in research and
problem solving rather than simply providers of information and
technical solutions."
[89]
Competitiveness
Technology is properly defined as any application of science to
accomplish a function. The science can be leading edge or well
established and the function can have high visibility or be
significantly more mundane, but it is all technology, and its
exploitation is the foundation of all competitive advantage.
Technology-based planning is what was used to build the US industrial giants before WWII (e.g.,
Dow,
DuPont,
GM) and it is what was used to transform the US into a
superpower. It was not economic-based planning.
Other animal species
This adult
gorilla uses a branch as a
walking stick to gauge the water's depth, an example of technology usage by non-human primates.
The use of basic technology is also a feature of other animal species apart from humans. These include primates such as
chimpanzees,
[90] some
dolphin communities,
[91] and
crows.
[92][93]
Considering a more generic perspective of technology as ethology of
active environmental conditioning and control, we can also refer to
animal examples such as beavers and their dams, or bees and their
honeycombs.
The ability to make and use tools was once considered a defining characteristic of the genus
Homo.
[94]
However, the discovery of tool construction among chimpanzees and
related primates has discarded the notion of the use of technology as
unique to humans. For example, researchers have observed wild
chimpanzees utilising tools for foraging: some of the tools used include
leaf sponges, termite fishing probes,
pestles and
levers.
[95] West African chimpanzees also use stone hammers and anvils for cracking nuts,
[96] as do
capuchin monkeys of
Boa Vista, Brazil.
[97]
Future technology
Theories of technology often attempt to predict the future of technology based on the
high technology and science of the time. As with all predictions of the future, however, technology's is uncertain.
In 2005, futurist
Ray Kurzweil predicted that the future of technology would mainly consist of an overlapping "GNR Revolution" of
genetics,
nanotechnology and
robotics, with robotics being the most important of the three.
[98]
See also
- Theories and concepts in technology
- Economics of technology
- Technology journalism
- Other
References
- National
Research Council; Division on Engineering and Physical Sciences; Energy
Engineering Board; Commission on Engineering and Technical Systems;
Committee on Electricity in Economic Growth (1986). Electricity in Economic Growth. Washington, DC: National Academies Press. pp. 16, 40. ISBN 0309036771.
- Liddell, Henry George; Scott, Robert (1980). A Greek-English Lexicon (Abridged Edition). United Kingdom: Oxford University Press. ISBN 0199102074.
- https://www.merriam-webster.com/dictionary/emolument
- https://books.google.ca/books?id=ed8JAAAAIAAJ&printsec=frontcover&dq=Bigelow,+Jacob.+1829.+Elements+of+Technology&hl=en&sa=X&ved=0ahUKEwifiKPg1PbaAhVP5mMKHUPSC5QQ6AEIJzAA#v=onepage&q=Bigelow%2C%20Jacob.%201829.%20Elements%20of%20Technology&f=false
- https://www.merriam-webster.com/
- https://www.merriam-webster.com/dictionary/principle
- https://www.uspto.gov/web/offices/pac/mpep/consolidated_laws.pdf
- https://www.uspto.gov/
- https://www.uspto.gov/web/offices/pac/mpep/consolidated_laws.pdf
- https://www.merriam-webster.com/
- https://www.merriam-webster.com/dictionary/nomenclature
- http://www.nationalacademies.org/
- https://www.nap.edu/read/13165/chapter/12
- Crabb, George (1823). Universal Technological Dictionary, or Familiar Explanation of the Terms Used in All Arts and Sciences. London: Baldwin, Cradock, and Joy. p. 524 – via Internet Archive.
- Mannix, Loretta H.; Stratton, Julius Adams (2005). Mind and Hand: The Birth of MIT. Cambridge: MIT Press. pp. 190–92. ISBN 0262195240.
- "Technik Comes to America: Changing Meanings of Technology Before 1930". Technology and Culture. 47.
- Bain, Read (1937). "Technology and State Government". American Sociological Review. 2 (6): 860. doi:10.2307/2084365. JSTOR 2084365.
- MacKenzie, Donald A.; Wajcman, Judy (1999). "Introductory Essay". The Social Shaping of Technology (2nd ed.). Buckingham: Open University Press. ISBN 0335199135.
- "Technology | Definition of Technology by Merriam-Webster". Merriam-Webster. Retrieved November 7, 2016.
- Franklin, Ursula (1999). The Real World of Technology (revised ed.). Scarborough: House of Anansi. ISBN 978-0887848919.
- See, for example, "Technology". BBC News. Retrieved November 7, 2016.
- Stiegler, Bernard (1998). Technics and Time, 1: The Fault of Epimetheus. Stanford University Press. pp. 17, 82. ISBN 0804730415. Stiegler has more recently stated that biotechnology can no longer be defined as "organized inorganic matter," given that it is, rather, "the reorganization of the organic." Stiegler, Bernard (2008). L'avenir du passé: Modernité de l'archéologie. La Découverte. p. 23. ISBN 2707154954.
- "Industry, Technology and the Global Marketplace: International Patenting Trends in Two New Technology Areas". Science and Engineering Indicators 2002. National Science Foundation. Archived from the original on 18 August 2005. Retrieved 7 May 2007.
- Arthur, W. Brian (2009). The Nature of Technology. New York: Free Press. p. 28. ISBN 978-1416544050.
- Borgmann, Albert (2006). "Technology as a Cultural Force: For Alena and Griffin" (fee required). The Canadian Journal of Sociology. 31 (3): 351–60. doi:10.1353/cjs.2006.0050. Retrieved 16 February 2007.
- Macek, Jakub. "Defining Cyberculture". Retrieved 25 May 2007.
- "Science". Dictionary.com. 2016. Retrieved November 7, 2016.
- "Intute: Science, Engineering and Technology". Intute. Archived from the original on 17 February 2007. Retrieved 17 February 2007.
- Bush, Vannevar (July 1945). "Science the Endless Frontier". National Science Foundation. Retrieved November 7, 2016.
- Wise, George (1985). "Science and Technology". Osiris (2nd Series). 1: 229–46. doi:10.1086/368647.
- Guston, David H. (2000). Between Politics and Science: Assuring the Integrity and Productivity of Research. New York: Cambridge University Press. ISBN 0521653185.
- "Mother of man – 3.2 million years ago". BBC. Retrieved 17 May 2008.
- "Human Evolution". History Channel. Archived from the original on 23 April 2008. Retrieved 17 May 2008.
- Wade, Nicholas (July 15, 2003). "Early Voices: The Leap to Language". The New York Times. Retrieved November 7, 2016.
- Bower, Bruce (October 29, 2010). "Stone Agers Sharpened Skills 55,000 Years Earlier Than Thought". WIRED. Retrieved November 7, 2016.
- Crump, Thomas (2001). A Brief History of Science. Constable & Robinson. p. 9. ISBN 184119235X.
- "Fossil Hominid Sites of Sterkfontein, Swartkrans, Kromdraai, and Environs". UNESCO. Retrieved 10 March 2007.
- "Stone Age Man". History World. Retrieved 13 February 2007.
- James, Steven R. (February 1989). "Hominid Use of Fire in the Lower and Middle Pleistocene". Current Anthropology. 30 (1): 1–26. doi:10.1086/203705. JSTOR 2743299. (Subscription required (help)).
- Stahl, Ann B. (1984). "Hominid dietary selection before fire". Current Anthropology. 25 (2): 151–68. doi:10.1086/203106. JSTOR 2742818. (Subscription required (help)).
- O'Neil, Dennis. "Evolution of Modern Humans: Archaic Homo sapiens Culture". Palomar College. Retrieved 31 March 2007.
- Villa, Paola (1983). Terra Amata and the Middle Pleistocene archaeological record of southern France. Berkeley: University of California Press. p. 303. ISBN 0520096622.
- Cordaux, Richard; Stoneking, Mark (2003). "South Asia, the Andamanese, and the Genetic Evidence for an 'Early' Human Dispersal out of Africa" (PDF). American Journal of Human Genetics. 72 (6): 1586–90; author reply 1590–93. doi:10.1086/375407. PMC 1180321
. PMID 12817589.
- Driscoll, Killian (2006). The
early prehistory in the west of Ireland: Investigations into the social
archaeology of the Mesolithic, west of the Shannon, Ireland.
- University of Chicago Press Journals (January 4, 2006). "The First Baby Boom: Skeletal Evidence Shows Abrupt Worldwide Increase In Birth Rate During Neolithic Period". ScienceDaily. Retrieved November 7, 2016.
- Sussman,
Robert W.; Hall, Roberta L. (April 1972). "Child Transport, Family
Size, and Increase in Human Population During the Neolithic". Current Anthropology. University of Chicago Press. 13 (2): 258–67. doi:10.1086/201274. JSTOR 2740977.
- Ferraro, Gary P. (2006). Cultural Anthropology: An Applied Perspective. The Thomson Corporation. ISBN 0495030392. Retrieved 17 May 2008.
- Patterson, Gordon M. (1992). The ESSENTIALS of Ancient History. Research & Education Association. ISBN 978-0878917044. Retrieved 17 May 2008.
- Cramb, Alan W. "A Short History of Metals". Carnegie Mellon University. Archived from the original on 8 January 2007. Retrieved 8 January 2007.
- Chisholm, Hugh (1910). The Encyclopædia Britannica: A dictionary of arts, sciences, literature and general information. Encyclopædia Britannica. p. 708. Retrieved 17 May 2008.
- "The
significance of the composition of excavated iron fragments taken from
Stratum III at the site of Kaman-Kalehöyük, Turkey". Anatolian Archeological Studies. 14.
- "Ironware piece unearthed from Turkey found to be oldest steel". The Hindu. March 26, 2009. Archived from the original on 29 March 2009. Retrieved November 8, 2016.
- "The oldest representation of a Nile boat". Antiquity. 81.
- Crawford, Harriet (2013). The Sumerian World. New York City, New York and London, England: Routledge. pp. 34–43. ISBN 978-0-203-09660-4.
- Potts, D. T. (2012). A Companion to the Archaeology of the Ancient Near East. p. 285.
- Childe, V. Gordon (1928). New Light on the Most Ancient East. p. 110.
- Anthony, David A. (2007). The Horse, the Wheel, and Language: How Bronze-Age Riders from the Eurasian Steppes Shaped the Modern World. Princeton: Princeton University Press. p. 67. ISBN 0691058873.
- Gasser, Aleksander (March 2003). "World's Oldest Wheel Found in Slovenia". Republic of Slovenia Government Communication Office. Retrieved November 8, 2016.
- Kramer, Samuel Noah (1963). The Sumerians: Their History, Culture, and Character. Chicago, Illinois: University of Chicago Press. p. 290. ISBN 0226452387.
- Moorey, Peter Roger Stuart (1999) [1994]. Ancient Mesopotamian Materials and Industries: The Archaeological Evidence. Winona Lake, Indiana: Eisenbrauns. p. 146. ISBN 978-1575060422.
- Lay, M G (1992). Ways of the World. Sydney, Australia: Primavera Press. p. 28. ISBN 1875368051.
- Gregersen, Erik (2012). The Complete History of Wheeled Transportation: From Cars and Trucks to Buses and Bikes. New York City, New York: Britannica Educational Publishing. p. 130. ISBN 978-1615307289.
- Aicher, Peter J. (1995). Guide to the Aqueducts of Ancient Rome. Wauconda, Illinois: Bolchazy-Carducci Publishers, Inc. p. 6. ISBN 0865162824.
- Eslamian, Saeid (2014). Handbook of Engineering Hydrology: Environmental Hydrology and Water Management. Boca Raton, Florida: CRC Press. pp. 171–175. ISBN 978-1466552500.
- Lechner, Norbert (2012). Plumbing, Electricity, Acoustics: Sustainable Design Methods for Architecture. Hoboken, New Jersey: John Wiley & Sons, Inc. p. 106. ISBN 978-1118014752.
- Breslin, Gerry, ed. (2011). "technicism". Collins English Dictionary. HarperCollins. ISBN 9780007437863.
- "Philosophical and Ethical Problems of Technicism and Genetic Engineering". Society for Philosophy and Technology. 3.
- Monsma, Stephen V. (1986). Responsible Technology. Grand Rapids: W.B. Eerdmans Pub. Co. ISBN 0802801757.
- Muehlhauser, Luke (November 10, 2015). "Intelligence Explosion FAQ". Machine Intelligence Research Institute. Retrieved November 11, 2016.
- Kurzweil, Ray (2005). "The Six Epochs". The Singularity is Near: When Humans Transcend Biology. Penguin. ISBN 978-1101218884.
- Hughes, James. "Democratic Transhumanism 2.0". Changesurfer. Retrieved November 10, 2016.
- Lovitt, William (1977). "The Question Concerning Technology". The Question Concerning Technology and Other Essays. Harper Torchbooks. pp. 3–35. ISBN 0613913140. Retrieved 21 November 2007.
- Heidegger, Martin (1977). "The Question Concerning Technology". The Question Concerning Technology and Other Essays. Translated by Lovitt, W. New York: HarperCollins. pp. 25–26.
- Dreyfus,
Hubert; Spinosa, Charles (2006). "Further Reflections on Heidegger,
Technology, and the Everyday". In Kompridis, Nikolas. Philosophical Romanticism. New York: Routledge. pp. 265–81.
- Postman, Neil (1993). Technopoly: The Surrender of Culture to Technology. New York: Vintage.
- Barney, Darin (2007). One Nation Under Google. Toronto: House of Anansi Press.
- "Technology's Challenge to Democracy". Parrhesia. 8.
- Vannini, Phillip,
and Jonathan Taggart. "Voluntary simplicity, involuntary complexities,
and the pull of remove: The radical ruralities of off-grid lifestyles."
Environment and Planning A 45.2 (2013): 295-311.
- "Jared Bernstein". Center for Budget and Policy Priorities. Retrieved November 11, 2016.
- "It's Not a Skills Gap That's Holding Wages Down: It's the Weak Economy, Among Other Things". The American Prospect. 25.
- 7.Kim JH 2010 ~Kim
JH, Lau C, Cheuk K-K, Kan P, Hui HL, Griffiths SM. Brief
report:predictorsofheavyinternetuseandassociationswithhealthpromoting
and health risk behaviors among Hong Kong university students. J
Adolesc. 2010;33(1):215–20.
- 1. Rideout VJ 2010 ~
Rideout VJ, Foehr UG, Roberts DF. Generation M2: Media in the
livesof8-to18-year-olds.HenryJKaiserFamilyFoundation.2010.
- Kim JH 2010 ~Kim JH,
Lau C, Cheuk K-K, Kan P, Hui HL, Griffiths SM. Brief report:predictors
of heavy internet use and associations with health promoting and health
risk behaviors among Hong Kong university students. J Adolesc.
2010;33(1):215–20.
- Hughes, Thomas P. (2004). Human-Built World: How to Think About Technology and Culture. Chicago: University of Chicago Press. pp. 1–11. ISBN 978-0226359335.
- Hughes,
Thomas P. (2004) “Introduction: Complex Technology” (1–11) in
"Human-Built World: How to Think About Technology and Culture"
- Morozov, Evgeny (2013). To Save Everything, Click Here: The Folly of Technological Solutionism. New York: PublicAffairs. ISBN 978-1610391399.
- Madrigal, Alexis C. (March 13, 2013). "Toward a Complex, Realistic, and Moral Tech Criticism". The Atlantic. Retrieved November 11, 2016.
- Cohen,
Benjamin; Ottinger, Gwen (2011). "Introduction: Environmental Justice
and the Transformation of Science and Engineering". In Ottinger, Gwen;
Cohen, Benjamin. Technoscience and Environmental Justice: Expert Cultures in a Grassroots Movement. MIT Press. pp. 1–18. ISBN 978-0262015790.
- Ottinger,
Gwen (2011). "Rupturing Engineering Education: Opportunities for
Transforming Expert Identities Through Community-Based Projects". In
Ottinger, Gwen; Cohen, Benjamin. Technoscience and Environmental Justice: Expert Cultures in a Grassroots Movement. MIT Press. pp. 229–48. ISBN 978-0262015790.
- Sagan, Carl; Druyan, Ann; Leakey, Richard. "Chimpanzee Tool Use". Archived from the original on 21 September 2006. Retrieved 13 February 2007.
- Rincon, Paul (June 7, 2005). "Sponging dolphins learn from mum". BBC News. Retrieved November 11, 2016.
- Schmid, Randolph E. (October 4, 2007). "Crows use tools to find food". NBC News. Retrieved November 11, 2016.
- Rutz, C.; Bluff, L.A.; Weir, A.A.S.; Kacelnik, A. (4 October 2007). "Video cameras on wild birds". Science. 318 (5851): 765. Bibcode:2007Sci...318..765R. doi:10.1126/science.1146788.
- Oakley, K. P. (1976). Man the Tool-Maker. University of Chicago Press. ISBN 978-0226612706.
- McGrew, W. C (1992). Chimpanzee Material Culture. Cambridge u.a.: Cambridge Univ. Press. ISBN 978-0521423717.
- Boesch,
Christophe; Boesch, Hedwige (1984). "Mental map in wild chimpanzees: An
analysis of hammer transports for nut cracking". Primates. 25 (2): 160–70. doi:10.1007/BF02382388.
- Brahic, Catherine (January 15, 2009). "Nut-cracking monkeys find the right tool for the job". New Scientist. Retrieved November 11, 2016.
- Kurzweil, Ray (2005). "GNR: Three Overlapping Revolutions". The Singularity is Near. Penguin. ISBN 978-1101218884.
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