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Electrical engineering is an discipline concerned with the study, design, and application of equipment, devices, and systems that use , , and . It emerged as an identifiable occupation in the latter half of the 19th century after the commercialization of the electric telegraph, the telephone, and generation, distribution, and use.

Electrical engineering is divided into a wide range of different fields, including computer engineering, systems engineering, power engineering, telecommunications, radio-frequency engineering, signal processing, , control engineering, photovoltaic cells, , and and . Many of these disciplines overlap with other engineering branches, spanning a huge number of specializations including hardware engineering, power electronics, and waves, microwave engineering, , , renewable energies, mechatronics/control, and electrical materials science. Electrical engineers also study and techniques due to significant overlap.

Electrical engineers typically hold a in electrical engineering, electronic or electrical and electronic engineering. Practicing engineers may have professional certification and be members of a professional body or an international standards organization. These include the International Electrotechnical Commission (IEC), the National Society of Professional Engineers (NSPE), the Institute of Electrical and Electronics Engineers (IEEE) and the Institution of Engineering and Technology (IET, formerly the IEE).

Electrical engineers work in a very wide range of industries and the skills required are likewise variable. These range from to the management skills of a . The tools and equipment that an individual engineer may need are similarly variable, ranging from a simple to sophisticated design and manufacturing software.


History
Electricity has been a subject of scientific interest since at least the early 17th century. William Gilbert was a prominent early electrical scientist, and was the first to draw a clear distinction between and static electricity. He is credited with establishing the term "electricity". He also designed the : a device that detects the presence of statically charged objects. In 1762 Swedish professor invented a device later named that produced a static electric charge. By 1800 had developed the , a forerunner of the electric battery.


19th century
In the 19th century, research into the subject started to intensify. Notable developments in this century include the work of Hans Christian Ørsted, who discovered in 1820 that an electric current produces a magnetic field that will deflect a compass needle; of , who in 1825 invented the ; of and , who invented the in 1835; of , who in 1827 quantified the relationship between the and potential difference in a conductor; of , the discoverer of electromagnetic induction in 1831; and of James Clerk Maxwell, who in 1873 published a unified theory of electricity and in his treatise Electricity and Magnetism.

In 1782, Georges-Louis Le Sage developed and presented in probably the world's first form of electric telegraphy, using 24 different wires, one for each letter of the alphabet. This telegraph connected two rooms. It was an electrostatic telegraph that moved gold leaf through electrical conduction.

In 1795, Francisco Salva Campillo proposed an electrostatic telegraph system. Between 1803 and 1804, he worked on electrical telegraphy, and in 1804, he presented his report at the Royal Academy of Natural Sciences and Arts of Barcelona. Salva's electrolyte telegraph system was very innovative though it was greatly influenced by and based upon two discoveries made in Europe in 1800—Alessandro Volta's electric battery for generating an electric current and William Nicholson and Anthony Carlyle's electrolysis of water. Electrical telegraphy may be considered the first example of electrical engineering. Electrical engineering became a profession in the later 19th century. Practitioners had created a global electric telegraph network, and the first professional electrical engineering institutions were founded in the UK and the US to support the new discipline. created an electric telegraph system in 1816 and documented his vision of how the world could be transformed by electricity.

(2025). 9781783269174, Imperial College Press.
Over 50 years later, he joined the new Society of Telegraph Engineers (soon to be renamed the Institution of Electrical Engineers) where he was regarded by other members as the first of their cohort. By the end of the 19th century, the world had been forever changed by the rapid communication made possible by the engineering development of land-lines, submarine cables, and, from about 1890, wireless telegraphy.

Practical applications and advances in such fields created an increasing need for standardized units of measure. They led to the international standardization of the units , , , , , and henry. This was achieved at an international conference in in 1893. The publication of these standards formed the basis of future advances in standardization in various industries, and in many countries, the definitions were immediately recognized in relevant legislation.

During these years, the study of electricity was largely considered to be a subfield of since early electrical technology was considered electromechanical in nature. The Technische Universität Darmstadt founded the world's first department of electrical engineering in 1882 and introduced the first-degree course in electrical engineering in 1883. The first electrical engineering degree program in the United States was started at Massachusetts Institute of Technology (MIT) in the physics department under Professor Charles Cross, though it was Cornell University to produce the world's first electrical engineering graduates in 1885. The first course in electrical engineering was taught in 1883 in Cornell's Sibley College of Mechanical Engineering and Mechanic Arts.

(2025). 9780918531056 .

In about 1885, Cornell President Andrew Dickson White established the first Department of Electrical Engineering in the United States. In the same year, University College London founded the first chair of electrical engineering in Great Britain. Professor Mendell P. Weinbach at University of Missouri established the electrical engineering department in 1886. Afterwards, universities and institutes of technology gradually started to offer electrical engineering programs to their students all over the world.

During these decades the use of electrical engineering increased dramatically. In 1882, switched on the world's first large-scale electric power network that provided 110 volts— (DC)—to 59 customers on in New York City. In 1884, Sir Charles Parsons invented the allowing for more efficient electric power generation. Alternating current, with its ability to transmit power more efficiently over long distances via the use of , developed rapidly in the 1880s and 1890s with transformer designs by Károly Zipernowsky, Ottó Bláthy and Miksa Déri (later called ZBD transformers), , John Dixon Gibbs and William Stanley Jr. Practical designs including were independently invented by and and further developed into a practical form by Mikhail Dolivo-Dobrovolsky and Charles Eugene Lancelot Brown. Charles Steinmetz and contributed to the theoretical basis of alternating current engineering.

(2003). 9780801873973, JHU Press. .
(2009). 9780883855706, MAA. .
The spread in the use of AC set off in the United States what has been called the war of the currents between a George Westinghouse backed AC system and a Thomas Edison backed DC power system, with AC being adopted as the overall standard.


Early 20th century
During the development of radio, many scientists and inventors contributed to radio technology and electronics. The mathematical work of James Clerk Maxwell during the 1850s had shown the relationship of different forms of electromagnetic radiation including the possibility of invisible airborne waves (later called "radio waves"). In his classic physics experiments of 1888, proved Maxwell's theory by transmitting with a spark-gap transmitter, and detected them by using simple electrical devices. Other physicists experimented with these new waves and in the process developed devices for transmitting and detecting them. In 1895, Guglielmo Marconi began work on a way to adapt the known methods of transmitting and detecting these "Hertzian waves" into a purpose-built commercial wireless telegraphic system. Early on, he sent wireless signals over a distance of one and a half miles. In December 1901, he sent wireless waves that were not affected by the curvature of the Earth. Marconi later transmitted the wireless signals across the Atlantic between Poldhu, , and St. John's, , a distance of . Marconi's biography at Nobelprize.org retrieved 21 June 2008.

communication was first investigated by Jagadish Chandra Bose during 18941896, when he reached an extremely high frequency of up to 60 in his experiments. He also introduced the use of junctions to detect radio waves,

(1997). 9780986488511, IEEE Transactions on Microwave Theory and Research.
reprinted in Igor Grigorov, Ed., Antentop, Vol. 2, No.3, pp. 87–96. when he patented the radio in 1901.

In 1897, Karl Ferdinand Braun introduced the as part of an , a crucial enabling technology for . John Fleming invented the first radio tube, the , in 1904. Two years later, Robert von Lieben and Lee De Forest independently developed the amplifier tube, called the .

In 1920, developed the which would eventually lead to the development of the in 1946 by . In 1934, the began to make strides toward (which also uses the magnetron) under the direction of Dr Wimperis, culminating in the operation of the first radar station at in August 1936.

In 1941, presented the Z3, the world's first fully functional and programmable computer using electromechanical parts. In 1943, designed and built the Colossus, the world's first fully functional, electronic, digital and programmable computer. In 1946, the (Electronic Numerical Integrator and Computer) of John Presper Eckert and followed, beginning the computing era. The arithmetic performance of these machines allowed engineers to develop completely new technologies and achieve new objectives.

In 1948, published "A Mathematical Theory of Communication" which mathematically describes the passage of information with uncertainty ().


Solid-state electronics
The first working was a point-contact transistor invented by and Walter Houser Brattain while working under at the Bell Telephone Laboratories (BTL) in 1947. They then invented the bipolar junction transistor in 1948. While early junction transistors were relatively bulky devices that were difficult to manufacture on a basis,
(2025). 9780470508923, John Wiley & Sons. .
they opened the door for more compact devices.

The first integrated circuits were the hybrid integrated circuit invented by at Texas Instruments in 1958 and the monolithic integrated circuit chip invented by at Fairchild Semiconductor in 1959.

(2025). 9789812814456, . .

The (metal–oxide–semiconductor field-effect transistor, or MOS transistor) was invented by and at BTL in 1959. It was the first truly compact transistor that could be miniaturised and mass-produced for a wide range of uses. It revolutionized the electronics industry,

(1989). 9780471828679, Wiley. .
becoming the most widely used electronic device in the world.
(2025). 9781420006728, . .

The MOSFET made it possible to build high-density integrated circuit chips. The earliest experimental MOS IC chip to be fabricated was built by Fred Heiman and Steven Hofstein at in 1962. MOS technology enabled Moore's law, the on an IC chip every two years, predicted by in 1965.

(2025). 9789400776630, Springer Science & Business Media. .
MOS technology was developed by at Fairchild in 1968. Since then, the MOSFET has been the basic building block of modern electronics.
(2025). 9781439831533, . .
The mass-production of silicon MOSFETs and MOS integrated circuit chips, along with continuous miniaturization at an exponential pace (as predicted by Moore's law), has since led to revolutionary changes in technology, economy, culture and thinking.
(2025). 9783540416821, Springer Science & Business Media.

The which culminated in with Apollo 11 in 1969 was enabled by 's adoption of advances in electronic technology, including MOSFETs in the Interplanetary Monitoring Platform (IMP) and silicon integrated circuit chips in the Apollo Guidance Computer (AGC).

The development of MOS integrated circuit technology in the 1960s led to the invention of the in the early 1970s.

(2025). 9781107052406, Cambridge University Press. .
The first single-chip microprocessor was the Intel 4004, released in 1971. The Intel 4004 was designed and realized by Federico Faggin at Intel with his silicon-gate MOS technology, along with Intel's and and Busicom's Masatoshi Shima. The microprocessor led to the development of and personal computers, and the microcomputer revolution.


Electrical Engineering and Artificial Intelligence
In the recent times, the subject of (including speech systems, and reinforcement learning) has had significant overlap with electrical engineering fields such as signal processing, image processing and control engineering, and is as such studied often by electrical engineers. Machine learning techniques are also used in electrical engineering systems in subfields such as electronic design automation, stochastic and adaptive control, smart grids, adaptive signal processing, etc.


Subfields
One of the properties of electricity is that it is very useful for energy transmission as well as for information transmission. These were also the first areas in which electrical engineering was developed. Today, electrical engineering has many subdisciplines, the most common of which are listed below. Although there are electrical engineers who focus exclusively on one of these subdisciplines, many deal with a combination of them. Sometimes, certain fields, such as electronic engineering and computer engineering, are considered disciplines in their own right.


Power and energy
Power & Energy engineering deals with the generation, transmission, and distribution of electricity as well as the design of a range of related devices. These include , electric generators, , high voltage engineering, and power electronics. In many regions of the world, governments maintain an electrical network called a that connects a variety of generators together with users of their energy. Users purchase electrical energy from the grid, avoiding the costly exercise of having to generate their own. Power engineers may work on the design and maintenance of the power grid as well as the power systems that connect to it. Such systems are called on-grid power systems and may supply the grid with additional power, draw power from the grid, or do both. Power engineers may also work on systems that do not connect to the grid, called off-grid power systems, which in some cases are preferable to on-grid systems.


Telecommunications
Telecommunications engineering focuses on the transmission of information across a communication channel such as a , or free space. Transmissions across free space require information to be encoded in a to shift the information to a carrier frequency suitable for transmission; this is known as . Popular analog modulation techniques include amplitude modulation and frequency modulation. The choice of modulation affects the cost and performance of a system and these two factors must be balanced carefully by the engineer.

Once the transmission characteristics of a system are determined, telecommunication engineers design the and receivers needed for such systems. These two are sometimes combined to form a two-way communication device known as a . A key consideration in the design of transmitters is their power consumption as this is closely related to their . Typically, if the power of the transmitted signal is insufficient once the signal arrives at the receiver's antenna(s), the information contained in the signal will be corrupted by , specifically static.


Control engineering
Control engineering focuses on the modeling of a diverse range of and the design of controllers that will cause these systems to behave in the desired manner. To implement such controllers, electronics control engineers may use electronic circuits, digital signal processors, , and programmable logic controllers (PLCs). Control engineering has a wide range of applications from the flight and propulsion systems of commercial airliners to the present in many modern . It also plays an important role in industrial automation.

Control engineers often use when designing . For example, in an with the vehicle's is continuously monitored and fed back to the system which adjusts the motor's power output accordingly. Where there is regular feedback, can be used to determine how the system responds to such feedback.

Control engineers also work in to design autonomous systems using control algorithms which interpret sensory feedback to control actuators that move robots such as autonomous vehicles, autonomous drones and others used in a variety of industries.


Electronics
Electronic engineering involves the design and testing of electronic circuits that use the properties of components such as , , , , and to achieve a particular functionality.
(2025). 9789231041563, UNESCO. .
The , which allows the user of a radio to filter out all but a single station, is just one example of such a circuit. Another example to research is a pneumatic signal conditioner.

Prior to the Second World War, the subject was commonly known as radio engineering and basically was restricted to aspects of communications and , , and . Later, in post-war years, as consumer devices began to be developed, the field grew to include modern television, audio systems, computers, and . In the mid-to-late 1950s, the term radio engineering gradually gave way to the name electronic engineering.

Before the invention of the integrated circuit in 1959, electronic circuits were constructed from discrete components that could be manipulated by humans. These discrete circuits consumed much space and and were limited in speed, although they are still common in some applications. By contrast, integrated circuits packed a large number—often millions—of tiny electrical components, mainly , into a small chip around the size of a . This allowed for the powerful computers and other electronic devices we see today.


Microelectronics and nanoelectronics
engineering deals with the design and of very small electronic circuit components for use in an integrated circuit or sometimes for use on their own as a general electronic component. The most common microelectronic components are , although all main electronic components (, etc.) can be created at a microscopic level.

is the further scaling of devices down to levels. Modern devices are already in the nanometer regime, with below 100 nm processing having been standard since around 2002.

Microelectronic components are created by chemically fabricating wafers of semiconductors such as silicon (at higher frequencies, compound semiconductors like gallium arsenide and indium phosphide) to obtain the desired transport of electronic charge and control of current. The field of microelectronics involves a significant amount of chemistry and material science and requires the electronic engineer working in the field to have a very good working knowledge of the effects of quantum mechanics.


Signal processing
Signal processing deals with the analysis and manipulation of . Signals can be either , in which case the signal varies continuously according to the information, or digital, in which case the signal varies according to a series of discrete values representing the information. For analog signals, signal processing may involve the and filtering of audio signals for audio equipment or the and of signals for telecommunications. For digital signals, signal processing may involve the , and of digitally sampled signals.

Signal processing is a very mathematically oriented and intensive area forming the core of digital signal processing and it is rapidly expanding with new applications in every field of electrical engineering such as communications, control, radar, , broadcast engineering, power electronics, and biomedical engineering as many already existing analog systems are replaced with their digital counterparts. Analog signal processing is still important in the design of many .

DSP processor ICs are found in many types of modern electronic devices, such as digital , radios, audio equipment, mobile phones, multimedia players, camcorders and digital cameras, automobile control systems, headphones, digital spectrum analyzers, missile guidance systems, systems, and systems. In such products, DSP may be responsible for , speech recognition or , digital media, wirelessly data, triangulating positions using , and other kinds of , , audio processing, and speech processing.


Instrumentation
Instrumentation engineering deals with the design of devices to measure physical quantities such as , flow, and temperature. The design of such instruments requires a good understanding of that often extends beyond electromagnetic theory. For example, flight instruments measure variables such as and altitude to enable pilots the control of aircraft analytically. Similarly, use the Peltier-Seebeck effect to measure the temperature difference between two points.

Often instrumentation is not used by itself, but instead as the of larger electrical systems. For example, a thermocouple might be used to help ensure a furnace's temperature remains constant.

(1993). 9780803114661, ASTM International. .
For this reason, instrumentation engineering is often viewed as the counterpart of control.


Computers
Computer engineering deals with the design of computers and . This may involve the design of new hardware. Computer engineers may also work on a system's software. However, the design of complex software systems is often the domain of software engineering, which is usually considered a separate discipline. represent a tiny fraction of the devices a computer engineer might work on, as computer-like architectures are now found in a range of including video game consoles and . Computer engineers are involved in many hardware and software aspects of computing.
(1988). 9780471605010, Wiley.
are one of the applications of computer engineering.


Photonics and optics
and deals with the generation, transmission, amplification, modulation, detection, and analysis of electromagnetic radiation. The application of optics deals with design of optical instruments such as , , , and other equipment that uses the properties of electromagnetic radiation. Other prominent applications of optics include electro-optical sensors and measurement systems, , fiber-optic communication systems, and optical disc systems (e.g. CD and DVD). Photonics builds heavily on optical technology, supplemented with modern developments such as (mostly involving ), laser systems, optical amplifiers and novel materials (e.g. ).


Related disciplines
is an engineering discipline that deals with the convergence of electrical and systems. Such combined systems are known as electromechanical systems and have widespread adoption. Examples include , , and various subsystems of aircraft and . Electronic systems design is the subject within electrical engineering that deals with the multi-disciplinary design issues of complex electrical and mechanical systems.
(2025). 9783319558394, Springer International Publishing.

The term mechatronics is typically used to refer to systems but have predicted the emergence of very small electromechanical devices. Already, such small devices, known as microelectromechanical systems (MEMS), are used in automobiles to tell when to deploy, in digital projectors to create sharper images, and in to create nozzles for high definition printing. In the future it is hoped the devices will help build tiny implantable medical devices and improve optical communication.

In aerospace engineering and , an example is the most recent electric propulsion and ion propulsion.


Education
Electrical engineers typically possess an with a major in electrical engineering, electronics engineering, electronics and computer engineering, electrical engineering technology, or electrical and electronic engineering. The same fundamental principles are taught in all programs, though emphasis may vary according to title. The length of study for such a degree is usually four or five years and the completed degree may be designated as a Bachelor of Science in Electrical/Electronics Engineering Technology, Bachelor of Engineering, Bachelor of Science, Bachelor of Technology, or Bachelor of Applied Science, depending on the university. The bachelor's degree generally includes units covering , mathematics, , project management, and a variety of topics in electrical engineering. Initially such topics cover most, if not all, of the subdisciplines of electrical engineering.

At many schools, electronic engineering is included as part of an electrical award, sometimes explicitly, such as a Bachelor of Engineering (Electrical and Electronic), but in others, electrical and electronic engineering are both considered to be sufficiently broad and complex that separate degrees are offered.

Some electrical engineers choose to study for a postgraduate degree such as a Master of Engineering/Master of Science (MEng/MSc), a Master of Engineering Management, a Doctor of Philosophy (PhD) in Engineering, an Engineering Doctorate (Eng.D.), or an Engineer's degree. The master's and engineer's degrees may consist of either research, or a mixture of the two. The Doctor of Philosophy and Engineering Doctorate degrees consist of a significant research component and are often viewed as the entry point to . In the United Kingdom and some other European countries, Master of Engineering is often considered to be an undergraduate degree of slightly longer duration than the Bachelor of Engineering rather than a standalone postgraduate degree.Various including graduate degree requirements at MIT , study guide at UWA, the curriculum at Queen's and unit tables at Aberdeen


Professional practice
In most countries, a bachelor's degree in engineering represents the first step towards professional certification and the degree program itself is certified by a professional body.
(2008). 9781593575137, U S Department of Labor, Jist Works. .
After completing a certified degree program the engineer must satisfy a range of requirements (including work experience requirements) before being certified. Once certified the engineer is designated the title of Professional Engineer (in the United States, Canada and South Africa), Chartered engineer or Incorporated Engineer (in India, Pakistan, the United Kingdom, Ireland and ), Chartered Professional Engineer (in Australia and New Zealand) or European Engineer (in much of the ).

The advantages of licensure vary depending upon location. For example, in the United States and Canada "only a licensed engineer may seal engineering work for public and private clients". This requirement is enforced by state and provincial legislation such as 's Engineers Act. In other countries, no such legislation exists. Practically all certifying bodies maintain a that they expect all members to abide by or risk expulsion. In this way these organizations play an important role in maintaining ethical standards for the profession. Even in jurisdictions where certification has little or no legal bearing on work, engineers are subject to . In cases where an engineer's work fails he or she may be subject to the tort of negligence and, in extreme cases, the charge of criminal negligence. An engineer's work must also comply with numerous other rules and regulations, such as and legislation pertaining to environmental law.

Professional bodies of note for electrical engineers include the Institute of Electrical and Electronics Engineers (IEEE) and the Institution of Engineering and Technology (IET). The IEEE claims to produce 30% of the world's literature in electrical engineering, has over 360,000 members worldwide and holds over 3,000 conferences annually. The IET publishes 21 journals, has a worldwide membership of over 150,000, and claims to be the largest professional engineering society in Europe. Obsolescence of technical skills is a serious concern for electrical engineers. Membership and participation in technical societies, regular reviews of periodicals in the field and a habit of continued learning are therefore essential to maintaining proficiency. An MIET(Member of the Institution of Engineering and Technology) is recognised in Europe as an Electrical and computer (technology) engineer. (see here regarding copyright)

In Australia, Canada, and the United States, electrical engineers make up around 0.25% of the labor force.


Tools and work
From the Global Positioning System to electric power generation, electrical engineers have contributed to the development of a wide range of technologies. They design, develop, test, and supervise the deployment of electrical systems and electronic devices. For example, they may work on the design of telecommunications systems, the operation of electric power stations, the and of buildings, the design of household appliances, or the electrical of industrial machinery. (see )

Fundamental to the discipline are the sciences of and mathematics as these help to obtain both a and description of how such systems will work. Today most engineering work involves the use of and it is commonplace to use computer-aided design programs when designing electrical systems. Nevertheless, the ability to sketch ideas is still invaluable for quickly communicating with others.

Although most electrical engineers will understand basic (that is, the interactions of elements such as , , , , and in a circuit), the theories employed by engineers generally depend upon the work they do. For example, quantum mechanics and solid state physics might be relevant to an engineer working on (the design of integrated circuits), but are largely irrelevant to engineers working with macroscopic electrical systems. Even may not be relevant to a person designing telecommunications systems that use off-the-shelf components. Perhaps the most important technical skills for electrical engineers are reflected in university programs, which emphasize , computer literacy, and the ability to understand the technical language and concepts that relate to electrical engineering.

A wide range of instrumentation is used by electrical engineers. For simple control circuits and alarms, a basic measuring , , and resistance may suffice. Where time-varying signals need to be studied, the is also an ubiquitous instrument. In and high-frequency telecommunications, spectrum analyzers and network analyzers are used. In some disciplines, safety can be a particular concern with instrumentation. For instance, medical electronics designers must take into account that much lower voltages than normal can be dangerous when electrodes are directly in contact with internal body fluids. Power transmission engineering also has great safety concerns due to the high voltages used; although may in principle be similar to their low voltage equivalents, safety and calibration issues make them very different. Many disciplines of electrical engineering use tests specific to their discipline. Audio electronics engineers use audio test sets consisting of a signal generator and a meter, principally to measure level but also other parameters such as harmonic distortion and noise. Likewise, information technology have their own test sets, often specific to a particular data format, and the same is true of television broadcasting.

For many engineers, technical work accounts for only a fraction of the work they do. A lot of time may also be spent on tasks such as discussing proposals with clients, preparing and determining project schedules. Many senior engineers manage a team of or other engineers and for this reason project management skills are important. Most engineering projects involve some form of documentation and strong written communication skills are therefore very important.

The of engineers are just as varied as the types of work they do. Electrical engineers may be found in the pristine lab environment of a fabrication plant, on board a , the offices of a or on site at a mine. During their working life, electrical engineers may find themselves supervising a wide range of individuals including scientists, , computer programmers, and other engineers.

Electrical engineering has an intimate relationship with the physical sciences. For instance, the physicist played a major role in the engineering of the first transatlantic telegraph cable.Huurdeman, pp. 95–96 Conversely, the engineer produced major work on the mathematics of transmission on telegraph cables.Huurdeman, p. 90 Electrical engineers are often required on major science projects. For instance, large particle accelerators such as need electrical engineers to deal with many aspects of the project including the power distribution, the instrumentation, and the manufacture and installation of the superconducting electromagnets.Schmidt, p. 218Martini, p. 179


See also
  • Barnacle (slang)
  • Comparison of EDA software
  • Electrical Technologist
  • Electronic design automation
  • Glossary of electrical and electronics engineering
  • Index of electrical engineering articles
  • Information engineering
  • International Electrotechnical Commission (IEC)
  • List of electrical engineers
  • List of electrical engineering journals
  • List of engineering branches
  • List of mechanical, electrical and electronic equipment manufacturing companies by revenue
  • List of Russian electrical engineers
  • Occupations in electrical/electronics engineering
  • Outline of electrical engineering
  • Timeline of electrical and electronic engineering


Notes
Bibliography


Further reading


External links

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