Historical treatment of quaternions

History of Lorentz transformations

The history of Lorentz transformations comprises the development of linear transformations forming the Lorentz group or Poincaré group preserving the Lorentz interval and the Minkowski inner product . In mathematics, transformations equivalent to what was later known as Lorentz transformations in various dimensions were discussed in the 19th century in relation to the theory of quadratic forms, hyperbolic geometry, Möbius geometry, and sphere geometry, which is connected to the fact that the group of motions in hyperbolic space, the Möbius group or projective special linear group, and the Laguerre group are isomorphic to the Lorentz group. In physics, Lorentz transformations became known at the beginning of the 20th century, when it was discovered that they exhibit the symmetry of Maxwell's equations. Subsequently, they became fundamental to all of physics, because they formed the basis of special relativity in which they exhibit the symmetry of Minkowski spacetime, making the speed of light invariant between different inertial frames. They relate the spacetime coordinates of two arbitrary inertial frames of reference with constant relative speed v. In one frame, the position of an event is given by x,y,z and time t, while in the other frame the same event has coordinates x′,y′,z′ and t′. (Wikipedia).

History of Lorentz transformations
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What is the Lorentz Transformation?

What is the Lorentz Transformation? It is a tool we use to relate the different experiences of different observers in special relativity. It is also one of the defining features of special relativity and what differentiates it from Galilean relativity. In this video, we will derive the Lor

From playlist Relativity

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Lorentz Transformations VS Galilean Transformations | Special Relativity

The goal of this video is to show that for small velocities, the Lorentz transformations are equivalent to the Galilean transformations. 00:00 Introduction 00:12 Galilean Transformation 00:46 Lorentz Transformations 01:09 Making a Connection 01:17 Mathematical Details References: [1] Ca

From playlist Special Relativity, General Relativity

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Intuition: Why the Lorentz Transformation is Linear

Main Lorentz Transformation video: https://youtu.be/6f_yxbtM2TI Dr Peyam video on f(x+y)=f(x)+f(y): https://youtu.be/WnglFnfjjFs Special relativity intro: https://youtu.be/upfIW5Ci0mQ One of the most important starting points for deriving the Lorentz transformation is the fact that it is

From playlist Special Relativity

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Visualization of Einstein's special relativity [HD]

This is a remake of my video from 2008, rendered in HD, with narration and minor changes. This video demonstrates the effects of Einstein's special relativity on objects that move at high velocities due to the Lorentz transformation. The Lorentz transformation was already known a few ye

From playlist Animated Physics Simulations

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Mechanics and curves | Math History | NJ Wildberger

The laws of motion as set out by Newton built upon work of Oresme, Galileo and others on dynamics, and the relations between distance, velocity and acceleration in trajectories. With Newton's laws and the calculus, a whole new arena of practical and theoretical investigations opened up to

From playlist MathHistory: A course in the History of Mathematics

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12. Introduction to Relativity

For more information about Professor Shankar's book based on the lectures from this course, Fundamentals of Physics: Mechanics, Relativity, and Thermodynamics, visit http://bit.ly/1jFIqNu. Fundamentals of Physics (PHYS 200) This is the first of a series of lectures on relativity. The lec

From playlist Fundamentals of Physics with Ramamurti Shankar

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Physics - Special Relativity (20 of 43) The Lorentz Transformation Equations: Length

Visit http://ilectureonline.com for more math and science lectures! In this video I will explain and find Lorentz transformation equation in regards to length. Next video in the Special Relativity series can be seen at: http://youtu.be/N34J3CDj_6w

From playlist MODERN PHYSICS 1: SPECIAL RELATIVITY

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Algebraically manipulating Lorentz transformation | Physics | Khan Academy

The forms in which we've introduced the Lorentz transformations are really nice in that they reveal the symmetry of the two axes of spacetime. But there are other representations: some are just more common in practical use, while others reveal other interesting similarities with classical

From playlist Special relativity | Physics | Khan Academy

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Evaluating a Lorentz transformation | Special relativity | Physics | Khan Academy

We'll consider an example of the Lorentz transformation with actual numbers, and analyze the results we get. Watch the next lesson: https://www.khanacademy.org/science/physics/special-relativity/lorentz-transformation/v/algebraically-manipulating-lorentz-transformation?utm_source=YT&utm_m

From playlist Special relativity | Physics | Khan Academy

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Special Relativity | Lecture 4

(April 30, 2012) Leonard Susskind moves into the topic of fields and field theory. For the most part he will focus on classical field theory, but occasionally will relate it to some of the concepts from quantum mechanics. In 1905, while only twenty-six years old, Albert Einstein publish

From playlist Lecture Collection | Special Relativity

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Lecture 6 | Quantum Entanglements, Part 3 (Stanford)

Lecture 6 of Leonard Susskind's course concentrating on Quantum Entanglements (Part 3, Spring 2007). Recorded May 14, 2007 at Stanford University. This Stanford Continuing Studies course is the third of a three-quarter sequence of classes exploring the "quantum entanglements" in modern

From playlist Lecture Collection | Quantum Entanglements: Part 3 (Spring 2007)

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Lecture 3 | Modern Physics: Special Relativity (Stanford)

Lecture 3 of Leonard Susskind's Modern Physics course concentrating on Special Relativity. Recorded April 28, 2008 at Stanford University. This Stanford Continuing Studies course is the first of a six-quarter sequence of classes exploring the essential theoretical foundations of modern

From playlist Lecture Collection | Modern Physics: Special Relativity

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Episode 42: The Lorentz Transformation - The Mechanical Universe

Episode 42. The Lorentz Transformation: If the speed of light is to be the same for all observers, then the length of a meter stick, or the rate of a ticking clock, depends on who measures it. “The Mechanical Universe,” is a critically-acclaimed series of 52 thirty-minute videos covering

From playlist The Mechanical Universe

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Introduction to the Lorentz transformation | Special relativity | Physics | Khan Academy

So we've got two coordinate systems from the perspectives of two observers. How can we convert spacetime coordinates between these? Enter the Lorentz transformation! Watch the next lesson: https://www.khanacademy.org/science/physics/special-relativity/lorentz-transformation/v/evaluating-a

From playlist Special relativity | Physics | Khan Academy

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Lorentz transformation derivation part 3 | Special relativity | Physics | Khan Academy

Finishing our Lorentz transformation derivation for t'. Watch the next lesson: https://www.khanacademy.org/science/physics/special-relativity/einstein-velocity-addition/v/lorentz-transformation-for-change-in-coordinates?utm_source=YT&utm_medium=Desc&utm_campaign=physics Missed the previo

From playlist Special relativity | Physics | Khan Academy

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Deriving Lorentz transformation part 2 | Special relativity | Physics | Khan Academy

Continuing the algebra to solve for the Lorentz factor. Watch the next lesson: https://www.khanacademy.org/science/physics/special-relativity/lorentz-transformation/v/lorentz-transformation-derivation-part-3?utm_source=YT&utm_medium=Desc&utm_campaign=physics Missed the previous lesson? h

From playlist Special relativity | Physics | Khan Academy

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History of Astronomy Part 3: Copernicus and Heliocentrism

Once it was determined that the Earth is round, the next step was to decipher the geometry of the solar system. Does everything rotate around the Earth, like in the geocentric model of Ptolemy? We thought so for thousands of years, but that all changed when Copernicus came along. He sugges

From playlist Astronomy/Astrophysics

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Lorentz transformation derivation part 1 | Special relativity | Physics | Khan Academy

Using symmetry of frames of reference and the absolute velocity of the speed of light (regardless of frame of reference) to begin to solve for the Lorentz factor. Watch the next lesson: https://www.khanacademy.org/science/physics/special-relativity/lorentz-transformation/v/deriving-lorent

From playlist Special relativity | Physics | Khan Academy

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Physics - Special Relativity (21 of 43) The Lorentz Transformation Equations: Time

Visit http://ilectureonline.com for more math and science lectures! In this video I will explain Lorentz transformation equation in regards to time. Next video in the Special Relativity series can be seen at: http://youtu.be/R860ZO2jL-o

From playlist MODERN PHYSICS 1: SPECIAL RELATIVITY

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