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"Nothing less than an insider's guided tour of theoretic physics over the last century or so. . . .allows us to see the world of science from the inside out." —Jonathan Kirsh, The Los Angeles Times In his first book ever, the father of string theory reinvents the world's concept of the known universe and man's unique place within it. Using string theory, the multiverse and anthropic principle, Susskind explains how the universe came together without an intelligent designer, or supernatural guidance. The edition includes line drawings. Review: Bold speculation, but refuted as science - This is an excellent book, by a clear writer, who has big ideas, and expresses them well. I recommend reading this book, then reading a critic of String theory, Lee Smolin's The Trouble With Physics. Leonard Susskind is the original inventor of String Theory over 25 years ago, and has now merged its latest permutations with Inflationary cosmology to produce a theory of everything. Susskind throughout the book talks about how he spends much of his time trying to figure out how to explain esoteric ideas in physics to laymen. I have an undergraduate degree in physics, and have read perhaps a dozen books on cosmology, and was able to follow this book fairly well. I am a "layman" compared to Susskind, but have a much stronger astrophysics background than most "laymen", so take warning. Understanding this book is not as easy as falling off a log. His starting point is that Fine Tuning is a legitimate argument - that our universe is fine tuned to create life to a bizarre degree. I will not present his rationale for Fine Tuning. He for many years rejected the Fine Tuning claims, but became convinced himself when the Cosmological Constant was shown to be very small but positive. Since the possible range of the CC is huge, and anything but zero or very close to zero values will lead to very short-lived universes, or ones with no matter concentrations, many physicists assumed that the CC was somehow forced to be zero, by unknown physics laws. That it is not was startling to astrophysicists, and for Susskind this was the last straw to support a Fine Tuning argument. There are two ways we know of to get Fine Tuning, design or evolutionary selection. Selection requires multiple random options to select between, and because he rejects Design, this is where Susskind goes. He proposes the Anthropic Principle, in which virtually infinite universes are created, and only the very, very, very few which are habitable are ever observed by sentient life. To take you through his reasoning requires a peculiar journey through speculative physics. Inflation is what happens when the vacuum fluctuations of virtual particles in empty space sum up to a positive value. This positive term ends up producing a repulsion force against anything which has mass, meanwhile the virtual particles themselves DO have a mass, and the repulsion exceeds their gravitational attraction - which causes space to grow. The Cosmological Constant is the bulk term which describes the speed at which growth occurs. Since this new space is also filled with the same virtual particle field, mass is basically being created from nothing. The current Big Bang model is based on an initial high value of the CC, and then a drop down to our current very, very, very small but positive CC. String theory has an explanation for the CC, as well as for everything else. String theory started with an attempt to describe the behavior of quarks and other similar elementary particles. Some behave like elastic strings with masses at each end, and others like three strings linked like a Y, each with a mass at the end. This part of the theory is very solid. It was then extended to all the rest of physics. When one tries to explain the behavior of all the other elementary particles and forces using a similar model, a model CAN describe approximately our suite of particles and forces, but it requires 11 dimensions plus time (8 of these dimensions are rolled up rather than extended, which is why our universe looks 3-dimentionsla rather than 11-dimensional). Currently none of the models produced quite work out, so String Theorists have kept coming up with variations on the equations which can add features which might let them actually match our universe. As a minimum, they add things like shape, twist, flux, branes (string localizers) of various dimensions, shape for the branes, and singularities to the equations for each dimension. This produces a near infinite number of possible "String Theories", and a near infinite number of variables to dial to fit our world. Within the theory, the CC, fundamental forces, and elementary particles all could be different with a different set of dimensions, shapes, fluxes, branes, etc. One way to bring order to this is that not all possible combinations are stable. Basically, if there is an adjacent state which has a lower energy level (translates to a lower CC), frictional effects will lead a possible universe to drop to the lower state. What this means is that only local energy minima (valleys in a rough surface) are stable, and any universe that exists for any length of time must be in one of these en43ergy minima valleys. Susskind adopts the Eternal Inflation hypothesis of Alan Guth and Andrei Linde, and assumes that there is some initial stable high CC state. Quantum effects cause fluctuations in these String Theory properties, and if they lead to a lower energy state than the locally stable one, this fluxuation acts as a crystal seed for the spreading transition of the high CC region to the lower one. BUT, since the high CC region is inflating faster than the new lower one, the transition to the new lower one is slower than the growth of the old higher CC space, and the high CC universe never goes away, it just has infinite bubbles of lower CC inside it. Each of these likewise can spontaneously create new lower CC regions within them, each of which will continue creating infinite space a well. This view of the world - a inflating field of extremely high energy and high CC, with an infinite number of mini universes inside it that have bubbled out, is what Susskind calls his Cosmic Landscape. He proposes that our universe is one of these bubbles. To match the history of our universe, our bubble would have had to initially form near a trough leading to our valley, because inflation was initially high for a while (moving down a fairly level trough), then quickly dropped to our current rate. String Theory, and this Infinite Multiverse have been criticized as non-scientific. A recently published critical book on string theory is titled Not Even Wrong which is the ultimate dismissal in science. A claim which is untestable in principle is worse than wrong, it is not science, and useless. Susskind is defensive about this, and challenges what the definition of science is. He asserts that science is whatever scientists are doing - and in his world scientists engage in extensive speculative mathematics, with virtually no possibility of experimental tests. When people try to redefine science because what they are doing does not fit the definition is generally considered a fairly definitive failing, and was cited in the Intelligent Design court case as definitive proof that Intelligent Design is not science. It is not good news for Susskind that he is sharing the tactics of the ID movement. Scientific ideas to go through three steps: speculation, hypothesis, and theory. I don't think String Theory has quite mastered the hypothesis category yet, and the Landscape and Multiverse are still only speculations. A very legitimate critique is that the concepts just bring in too many free variables. Each one is another assumption, and anyone who has ever tried to fit a curve to data knows that once your free variables equal or exceed your data, then you have ZERO confidence in the predictive ability of the curve-fit. [Unfortunately only physical scientists and engineers ever fit anything other than straight lines to data. If anyone is interested, try putting three points not in a line on a piece of paper. A straight line will at best approximate them. But one can hit all the points with a wavy curve of almost any shape. But since a curve which comes in and goes off the top of the paper, and hits all the points fits the data as well as one that comes in off the bottom or either edge, there is no confidence in the predictive power of these curves. With the straight line, you have some confidence, and it is related to the number of data points minus the constants used to create the curve (2 for a line), divided by the number of data points. So the near infinite variables of string theory vs. only 100 or so fundamental constants and properties of our universe that the theory deals with gives zero confidence in the predictive power of that theory.] For my own interest, I have tried to spell out the major assumptions of Susskind in his Landscape fusion of String Theory and Inflation. 1-8 There are 8 additional dimensions to space. 9 The properties of everything are dependent on features of these 11 dimensions, 10 The features include whether a dimension unrolls 11 Also the shape of the dimension (number of holes) 12 Also number of twists 13 Also the flux value (integer) in each hole 14 Also number of 1-D branes (termination surfaces for strings) 15 Also number of 2-D branes 16 Also number of 3-D branes 17 Also number of 4-D branes 18 Also number of 5-D branes (I don't think any go higher than 5 now, not sure) 19 Whether any branes are negative (mentioned but not explained by Susskind) 20 Shape of the branes 21 Twist properties of the branes 22 Number of singularities (different from black holes) 23 TBD other mathematical structures 24 Specific string properties which create the elementary particles and fundamental forces (not sure if these are set by all of the above or not) 25 All of the above define the vacuum energy, and thus the cosmological constant (CC) 26 A high CC creates an inflating universe 27 Inflating universes can create mass and energy out of nothing, but it is all in balance, since gravitational energy is negative and exactly balances all the positive energy. 28 Fluxuations in the vacuum energy create transitions to lower CC regions within the inflating space 29 The "friction" transitioning from a higher to lower CC is released in the form of an elementary particle plasma (read hot Big Bang) 30 There is a texture to the Landscape of vacuum energy states, and new bubbles of a CC will transition down the slope of this landscape until they reach a local minima, or valley. 31 Only lower CC states can appear, not higher (not sure why) 32 There is a continuing cascade to a zero CC level (string theory models can easily create negative CC, so not sure why things stop at zero, negative CC would be lower energy than zero, so I think the model should not stop. This is a problem for the Landscape, because if high negative CCs are the innate end point of the Landscape, all the universes will eventually just puff out) 33 Lot and lots of local minima exist (close to infinite, I think it depend on when you give up speculation on new arbitrary structures in the String Theory model) 34 All these local minima are actually reachable from the particular high CC local minima of the Eternal Inflation field. (this assumption is one where the non-science accusation may be valid. Most of the minima will be vary far in properties from the starting condition, and the probability of a quantum fluxuation or tunneling effect reaching a distant state rather than the closest alternate state is vanishingly small. But by postulating an infinite multiverse of Eternal Inflation, it would not matter if one state had 200 orders of magnitude greater probability of being reached - all possible states will be populated with infinite numbers of bubble universes.) 35 Anthropic Principle - life is rare and will only arise in an exotic very, very, few local minima which can support complex chemistry, and have long term stability. That is why our universe is exotic and unusually stable. 36 Our universe had a CC that started in a nearly flat-bottomed trough that lead to our steep-sided valley As you can see, at just the major assumption level, this speculation/hypothesis is quite a doozy. It is science however, and there are a number of predictions made by these theories. The confirmed ones include: * Flatness of the universe * Homogeneity of the universe * Size of galactic and galactic cluster mass concentrations The unconfirmed ones include: * At the very largest mass structure level, we will see the effect of a higher CC as the universe settled into the bottom of the trough * A string theory model corresponds to our universe * A series of string theory models correspond to the trough leading to our current valley * Our universe has an edge with different properties, since it is continually transitioning high CC space around us into our low CC space (and we may be able to see a property variation, depending on how close we are to that edge. Note this is my own conclusion, not Susskind's) * Portions of our universe may or have already spontaneously dropped to a lower CC level. These regions would grow within our universe, and be observable. * Gravitons have zero mass, and behave like closed loop strings rather than strings with ends. There are also two predictions which currently are falsified: * Our CC is calculable and small based on string theory (the math sums up to infinity - in order to get a finite CC they throw out all numbers larger than a certain arbitrary value) * All the particles for which no rotational inertia has been observed to date (electrons, neutrinos, photons), actually have rotational inertia Since the confirmations to date all are just part of the Big Bang with Inflation model, and really have nothing to do with either Eternal Inflation, String Theory, or the Landscape, all of these ideas are currently unsupported by any observations. Having two contradicting observations is also a problem - but a common one for hypotheses as they work out their bugs. I consider this hypothesis, however, to be the most coherent and complete materialist hypothesis I have ever seen for the formation of the universe. But please note what it includes: * by my count 36 major assumptions - most of which are not confirmable in any way * Another substrate to the universe other than the material, which is more fundamental, and from which the material emerged. * Assumptions with infinite properties * No explanation for where the original high CC Eternal Inflating space came from Compare these features with the critiques of religious theories of the origin of the universe. The ill-defined infinite properties of God are criticized, as is the inability to explain God's origin, the complexity of assuming another substrate to the universe, and lots and lots of unconfirmable assumptions. I really liked Susskind's book. He is a clear writer, and both a clear thinker and a very big thinker. I suspect Susskind has gone wrong early in String Theory, and strings are not really applicable to electrons, neutrinos, and photons, based on their not having rotational inertia. The reason he thinks they must be strings is that otherwise the interactions between these particles and the string-based particles run into a summing-to-infinity problem. Since he is just ignoring a similar problem in calculating the CC, I didn't see why one was a convincing argument to him that that everything was strings, and the other summing to infinity problem is dismissible. Once this summing problem is readdressed, and an answer to it found, I suspect a simpler partial string and partial particle theory will replace String Theory, and I don't know if this Landscape concept would survive. Lee Smolin's The Trouble With Physics The Rise of String Theory, the Fall of a Science, and What Comes Next, provides a useful set of objections to counter Susskind's optimism over his Landscape theory. Smolin points out three important facts that Susskind left out. The first is that before String Theory, there were about a dozen attempts to unify quantum gravity and general relativity -- all of them were mathematically consistent, but every one made predictions that were tested and falsified. Susskind is advocating that Physics be judged by mathematical consistency rather than experiment, but if we had not tested previosly, we would now be using one of those falsified theories rather than String Theory. The second point is that the hidden dimensions of String Theory are unstable. Quantum fluxuations cause them to spontaneously collapse, or inflate to infinity like our three conventional dimensions. The ONLY way String Theory can lock them down so they are stable AND hidden is if they have a more complex shape than just being rolled into a tube. String Theory has a prediction -- hidden dimensions will unroll -- that is disproven by observation. What Susskind did not describe was the special case for these extra dimensions, which is the only way they could be stable, is that each must have at least two holes in it, and that each hole must have one or several charged Branes wrapped around the surface (basically a pretzel shape is the least complex stable shape). Only then will they stay stable and hidden. This is a bizarre kluge to the theory that makes it effectively absurd. The third point is that String Theory for most of its history predicted a negative or zero cosmological constant. Theorists worked with the zero CC versions until a small positive CC was discovered. Then they found a way to further kluge the theory. That is what the negative branes were invented for. Branes are an imagined surface or shape (can be from 1 to 5 D) that the ends of strings must stay connected to. They were first imagined in 2-D as membranes, then expanded into more Ds, and called D-branes, or just Branes. A negative brane was never explained by Susskind, and I suspect it is just a mathematical artifact to somehow bring the vacuum energy to a positive value. The addition of them to String theory is another patch to deal with a contrary observation. Smolin points out that good theories are usually quickly confirmed by observations, and they suggest all sorts of new and surprising things which then advance physics in other areas. The theories that have been discarded in physics are the ones which try to be kluged up with special cases to deal with one embarrassing observation after another. This looks to me to be the case with String Theory. Smolin started his book with 5 big questions that faced physics 30 years ago, when String Theory first became the dominant idea in theoretical physics, and that NONE of these have been solved in the last 30 years. He thinks it is due to physics departing from testability, and embracing a theory which is infinitely klugable and non-falsifiable -- and as a result the experimentalists have been starved of viable theories to test to advance our understanding of these issues. Smolin is as good and clear a writer as Susskind, and he has a better case, since he does not try to hide embarrassing facts, nor attack the principle of experimental confirmability at the core of science. Reading the two together, Smolin blows Susskind out of the water -- String Theory is a dead end. Despite this judgement, I still reccommend the book as very enjoyable and thought provoking. Review: Accessible String Theory treatment of the Anthropic Principle - Suskind's accessible, lucid, and lively science writing rivals Hawking. When he is recounting stories of meeting colleagues at universities or conferences, his writing is as engaging as a novelist's writing. This book on a String Theory take on the Anthropic principle is not only useful and needed, but is very enjoying to read due to Suskind's prose. Suskind offers in the beginning a very clear explanation of the Feynman diagram to be used as a tool for explaining particle physics. He also provides a brilliant account of the significance of the cosmological constant to the fine tuning of the universe. If the constant were negative, galaxies and stars would collapse leading to a collapse of the universe. If it is an order of magnitude greater than the 123 decimal places of the value for this universe, the repulsive force would prevent the forming of galaxies and star systems. Suskind uses the notion of "landscape" to set up his treatment of the fine tuning problem. Landscape is the idea of the variation of the environments of the universe. Each environment has its own constants, laws of physics, and particles based on the fields it has. For instance, if the Higgs field is different, the mass of the elementary particles and the laws of physics would be different. Variation of fields would offer a diversity of multidimensional landscape in the universe or the "megaverse". The universe features a variation of environments of different vacuum energies. Some of them can be like ours while many aren't. This richness of the landscape variation is how Suskind sets up the problem. To introduce String Theory, Suskind recounted the interesting story of how he got started on String Theory. He was looking at Veneziano's S Matrix equation on Hadrons collision that Hector Rubenstein introduced to him. He was not at all interested in the particle physics surrounding S matrix but found the equation oddly looked like about harmonic oscillator. Later he saw that the equation depicts two open end strings colliding with the ends featuring a quark and anti-quark. He called the string "rubber band" because of elasticity. So String Theory started out as a theory about hadrons. Initially there are the baryons string configurations with three strings joined at one end while a quark is on the other end. There is also the simpler meson configuration with a quark and anti quark on each end of the string. When a string replaces a particle in a Feynman diagram and traces out a time elapsed history, a sheet resembling a cylinder results which is called a "world sheet". That is the origin of how the interesting Calabi Yau manifold geometry evolves into many shapes and configurations. String Theory connects with and utilizes General Relatvity's compactification of space to account for how extra dimensions can be compactified. For instance, the cylindrical world sheet seen in a very small scale would appear like a line thereby compactifying 2 dimensions to 1 dimension. Further, using Kaluza-Klein theory of extra dimensions of space being rolled up, String Theory adds 6 more rolled up dimensions to make up 9 dimensions plus time to be the 10th dimension. The distance around a compactified surface is called the compactification scale, which fixes the charge and mass of the particles. In other words, the scale of the surface would vary the laws of physics. Recall that the quantised vibration features of the strings determine the kinds of particles there are. In 1995, Witten introduced a M theory that modified the String Theory into a version that utilizes membranes instead of string. Membranes are the sheets version of strings. A string in a one dimensional space which is just a 1-brane. The 10 space directions of M theory feature 9-branes. As indicated above, there are 6 dimensions rolled up in the initial 3 spatial dimensions in String theory. The variations of the Calabi Yau manifolds that can result from the branes offer 10 to the 500 environments ot vacuums for String Theory. The landscape offering these environments are the possibilities that megaverse can take shape literally. How do these possibilities get actualised into pockets of multiverses to constitute the megaverse? It is by mestability of the vacuums and space cloning which use eternal inflation as the driving mechanism. Metastability refers to the idea that properties of vacuums that can spontaneously changed into pockets of actual miniverse populating the landscape each of which with a unique own cosmological constant. Space cloning is the replicating of empty space by a bubbling process filling the gap. This cloning process grows exponentially through an inflation process that eventually actualises pockets of miniverse. With pockets of miniverses each with different cosmological constant which produces its own laws of physics and particles, the finetuning of the anthropic principle is easily explained. In a cosmic landscape of possibilities populated by a megaverse of actualities, one of the actualities or miniverses would have the proper cosmological constant and associating law of physics like our observable universe that has the galaxies, stars, and planets to sustain life. It is in effect disarming the notion of fine tuning. Among all the pocket universes, at least one of them would work. Suskind thinks String Theory is powerful to address the anthropic principle because it has the wealth of numerous Calabi Yau manifolds to offer the millions of vacuum possibilities to be populated into pocket miniverses, thereby showing fine tuning is no more than an actual pocket miniverse among many that has the right working condition. Suskind did an excellent and lucid job in elaborating this approach.
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D**E
Bold speculation, but refuted as science
This is an excellent book, by a clear writer, who has big ideas, and expresses them well. I recommend reading this book, then reading a critic of String theory, Lee Smolin's The Trouble With Physics. Leonard Susskind is the original inventor of String Theory over 25 years ago, and has now merged its latest permutations with Inflationary cosmology to produce a theory of everything. Susskind throughout the book talks about how he spends much of his time trying to figure out how to explain esoteric ideas in physics to laymen. I have an undergraduate degree in physics, and have read perhaps a dozen books on cosmology, and was able to follow this book fairly well. I am a "layman" compared to Susskind, but have a much stronger astrophysics background than most "laymen", so take warning. Understanding this book is not as easy as falling off a log. His starting point is that Fine Tuning is a legitimate argument - that our universe is fine tuned to create life to a bizarre degree. I will not present his rationale for Fine Tuning. He for many years rejected the Fine Tuning claims, but became convinced himself when the Cosmological Constant was shown to be very small but positive. Since the possible range of the CC is huge, and anything but zero or very close to zero values will lead to very short-lived universes, or ones with no matter concentrations, many physicists assumed that the CC was somehow forced to be zero, by unknown physics laws. That it is not was startling to astrophysicists, and for Susskind this was the last straw to support a Fine Tuning argument. There are two ways we know of to get Fine Tuning, design or evolutionary selection. Selection requires multiple random options to select between, and because he rejects Design, this is where Susskind goes. He proposes the Anthropic Principle, in which virtually infinite universes are created, and only the very, very, very few which are habitable are ever observed by sentient life. To take you through his reasoning requires a peculiar journey through speculative physics. Inflation is what happens when the vacuum fluctuations of virtual particles in empty space sum up to a positive value. This positive term ends up producing a repulsion force against anything which has mass, meanwhile the virtual particles themselves DO have a mass, and the repulsion exceeds their gravitational attraction - which causes space to grow. The Cosmological Constant is the bulk term which describes the speed at which growth occurs. Since this new space is also filled with the same virtual particle field, mass is basically being created from nothing. The current Big Bang model is based on an initial high value of the CC, and then a drop down to our current very, very, very small but positive CC. String theory has an explanation for the CC, as well as for everything else. String theory started with an attempt to describe the behavior of quarks and other similar elementary particles. Some behave like elastic strings with masses at each end, and others like three strings linked like a Y, each with a mass at the end. This part of the theory is very solid. It was then extended to all the rest of physics. When one tries to explain the behavior of all the other elementary particles and forces using a similar model, a model CAN describe approximately our suite of particles and forces, but it requires 11 dimensions plus time (8 of these dimensions are rolled up rather than extended, which is why our universe looks 3-dimentionsla rather than 11-dimensional). Currently none of the models produced quite work out, so String Theorists have kept coming up with variations on the equations which can add features which might let them actually match our universe. As a minimum, they add things like shape, twist, flux, branes (string localizers) of various dimensions, shape for the branes, and singularities to the equations for each dimension. This produces a near infinite number of possible "String Theories", and a near infinite number of variables to dial to fit our world. Within the theory, the CC, fundamental forces, and elementary particles all could be different with a different set of dimensions, shapes, fluxes, branes, etc. One way to bring order to this is that not all possible combinations are stable. Basically, if there is an adjacent state which has a lower energy level (translates to a lower CC), frictional effects will lead a possible universe to drop to the lower state. What this means is that only local energy minima (valleys in a rough surface) are stable, and any universe that exists for any length of time must be in one of these en43ergy minima valleys. Susskind adopts the Eternal Inflation hypothesis of Alan Guth and Andrei Linde, and assumes that there is some initial stable high CC state. Quantum effects cause fluctuations in these String Theory properties, and if they lead to a lower energy state than the locally stable one, this fluxuation acts as a crystal seed for the spreading transition of the high CC region to the lower one. BUT, since the high CC region is inflating faster than the new lower one, the transition to the new lower one is slower than the growth of the old higher CC space, and the high CC universe never goes away, it just has infinite bubbles of lower CC inside it. Each of these likewise can spontaneously create new lower CC regions within them, each of which will continue creating infinite space a well. This view of the world - a inflating field of extremely high energy and high CC, with an infinite number of mini universes inside it that have bubbled out, is what Susskind calls his Cosmic Landscape. He proposes that our universe is one of these bubbles. To match the history of our universe, our bubble would have had to initially form near a trough leading to our valley, because inflation was initially high for a while (moving down a fairly level trough), then quickly dropped to our current rate. String Theory, and this Infinite Multiverse have been criticized as non-scientific. A recently published critical book on string theory is titled Not Even Wrong which is the ultimate dismissal in science. A claim which is untestable in principle is worse than wrong, it is not science, and useless. Susskind is defensive about this, and challenges what the definition of science is. He asserts that science is whatever scientists are doing - and in his world scientists engage in extensive speculative mathematics, with virtually no possibility of experimental tests. When people try to redefine science because what they are doing does not fit the definition is generally considered a fairly definitive failing, and was cited in the Intelligent Design court case as definitive proof that Intelligent Design is not science. It is not good news for Susskind that he is sharing the tactics of the ID movement. Scientific ideas to go through three steps: speculation, hypothesis, and theory. I don't think String Theory has quite mastered the hypothesis category yet, and the Landscape and Multiverse are still only speculations. A very legitimate critique is that the concepts just bring in too many free variables. Each one is another assumption, and anyone who has ever tried to fit a curve to data knows that once your free variables equal or exceed your data, then you have ZERO confidence in the predictive ability of the curve-fit. [Unfortunately only physical scientists and engineers ever fit anything other than straight lines to data. If anyone is interested, try putting three points not in a line on a piece of paper. A straight line will at best approximate them. But one can hit all the points with a wavy curve of almost any shape. But since a curve which comes in and goes off the top of the paper, and hits all the points fits the data as well as one that comes in off the bottom or either edge, there is no confidence in the predictive power of these curves. With the straight line, you have some confidence, and it is related to the number of data points minus the constants used to create the curve (2 for a line), divided by the number of data points. So the near infinite variables of string theory vs. only 100 or so fundamental constants and properties of our universe that the theory deals with gives zero confidence in the predictive power of that theory.] For my own interest, I have tried to spell out the major assumptions of Susskind in his Landscape fusion of String Theory and Inflation. 1-8 There are 8 additional dimensions to space. 9 The properties of everything are dependent on features of these 11 dimensions, 10 The features include whether a dimension unrolls 11 Also the shape of the dimension (number of holes) 12 Also number of twists 13 Also the flux value (integer) in each hole 14 Also number of 1-D branes (termination surfaces for strings) 15 Also number of 2-D branes 16 Also number of 3-D branes 17 Also number of 4-D branes 18 Also number of 5-D branes (I don't think any go higher than 5 now, not sure) 19 Whether any branes are negative (mentioned but not explained by Susskind) 20 Shape of the branes 21 Twist properties of the branes 22 Number of singularities (different from black holes) 23 TBD other mathematical structures 24 Specific string properties which create the elementary particles and fundamental forces (not sure if these are set by all of the above or not) 25 All of the above define the vacuum energy, and thus the cosmological constant (CC) 26 A high CC creates an inflating universe 27 Inflating universes can create mass and energy out of nothing, but it is all in balance, since gravitational energy is negative and exactly balances all the positive energy. 28 Fluxuations in the vacuum energy create transitions to lower CC regions within the inflating space 29 The "friction" transitioning from a higher to lower CC is released in the form of an elementary particle plasma (read hot Big Bang) 30 There is a texture to the Landscape of vacuum energy states, and new bubbles of a CC will transition down the slope of this landscape until they reach a local minima, or valley. 31 Only lower CC states can appear, not higher (not sure why) 32 There is a continuing cascade to a zero CC level (string theory models can easily create negative CC, so not sure why things stop at zero, negative CC would be lower energy than zero, so I think the model should not stop. This is a problem for the Landscape, because if high negative CCs are the innate end point of the Landscape, all the universes will eventually just puff out) 33 Lot and lots of local minima exist (close to infinite, I think it depend on when you give up speculation on new arbitrary structures in the String Theory model) 34 All these local minima are actually reachable from the particular high CC local minima of the Eternal Inflation field. (this assumption is one where the non-science accusation may be valid. Most of the minima will be vary far in properties from the starting condition, and the probability of a quantum fluxuation or tunneling effect reaching a distant state rather than the closest alternate state is vanishingly small. But by postulating an infinite multiverse of Eternal Inflation, it would not matter if one state had 200 orders of magnitude greater probability of being reached - all possible states will be populated with infinite numbers of bubble universes.) 35 Anthropic Principle - life is rare and will only arise in an exotic very, very, few local minima which can support complex chemistry, and have long term stability. That is why our universe is exotic and unusually stable. 36 Our universe had a CC that started in a nearly flat-bottomed trough that lead to our steep-sided valley As you can see, at just the major assumption level, this speculation/hypothesis is quite a doozy. It is science however, and there are a number of predictions made by these theories. The confirmed ones include: * Flatness of the universe * Homogeneity of the universe * Size of galactic and galactic cluster mass concentrations The unconfirmed ones include: * At the very largest mass structure level, we will see the effect of a higher CC as the universe settled into the bottom of the trough * A string theory model corresponds to our universe * A series of string theory models correspond to the trough leading to our current valley * Our universe has an edge with different properties, since it is continually transitioning high CC space around us into our low CC space (and we may be able to see a property variation, depending on how close we are to that edge. Note this is my own conclusion, not Susskind's) * Portions of our universe may or have already spontaneously dropped to a lower CC level. These regions would grow within our universe, and be observable. * Gravitons have zero mass, and behave like closed loop strings rather than strings with ends. There are also two predictions which currently are falsified: * Our CC is calculable and small based on string theory (the math sums up to infinity - in order to get a finite CC they throw out all numbers larger than a certain arbitrary value) * All the particles for which no rotational inertia has been observed to date (electrons, neutrinos, photons), actually have rotational inertia Since the confirmations to date all are just part of the Big Bang with Inflation model, and really have nothing to do with either Eternal Inflation, String Theory, or the Landscape, all of these ideas are currently unsupported by any observations. Having two contradicting observations is also a problem - but a common one for hypotheses as they work out their bugs. I consider this hypothesis, however, to be the most coherent and complete materialist hypothesis I have ever seen for the formation of the universe. But please note what it includes: * by my count 36 major assumptions - most of which are not confirmable in any way * Another substrate to the universe other than the material, which is more fundamental, and from which the material emerged. * Assumptions with infinite properties * No explanation for where the original high CC Eternal Inflating space came from Compare these features with the critiques of religious theories of the origin of the universe. The ill-defined infinite properties of God are criticized, as is the inability to explain God's origin, the complexity of assuming another substrate to the universe, and lots and lots of unconfirmable assumptions. I really liked Susskind's book. He is a clear writer, and both a clear thinker and a very big thinker. I suspect Susskind has gone wrong early in String Theory, and strings are not really applicable to electrons, neutrinos, and photons, based on their not having rotational inertia. The reason he thinks they must be strings is that otherwise the interactions between these particles and the string-based particles run into a summing-to-infinity problem. Since he is just ignoring a similar problem in calculating the CC, I didn't see why one was a convincing argument to him that that everything was strings, and the other summing to infinity problem is dismissible. Once this summing problem is readdressed, and an answer to it found, I suspect a simpler partial string and partial particle theory will replace String Theory, and I don't know if this Landscape concept would survive. Lee Smolin's The Trouble With Physics The Rise of String Theory, the Fall of a Science, and What Comes Next, provides a useful set of objections to counter Susskind's optimism over his Landscape theory. Smolin points out three important facts that Susskind left out. The first is that before String Theory, there were about a dozen attempts to unify quantum gravity and general relativity -- all of them were mathematically consistent, but every one made predictions that were tested and falsified. Susskind is advocating that Physics be judged by mathematical consistency rather than experiment, but if we had not tested previosly, we would now be using one of those falsified theories rather than String Theory. The second point is that the hidden dimensions of String Theory are unstable. Quantum fluxuations cause them to spontaneously collapse, or inflate to infinity like our three conventional dimensions. The ONLY way String Theory can lock them down so they are stable AND hidden is if they have a more complex shape than just being rolled into a tube. String Theory has a prediction -- hidden dimensions will unroll -- that is disproven by observation. What Susskind did not describe was the special case for these extra dimensions, which is the only way they could be stable, is that each must have at least two holes in it, and that each hole must have one or several charged Branes wrapped around the surface (basically a pretzel shape is the least complex stable shape). Only then will they stay stable and hidden. This is a bizarre kluge to the theory that makes it effectively absurd. The third point is that String Theory for most of its history predicted a negative or zero cosmological constant. Theorists worked with the zero CC versions until a small positive CC was discovered. Then they found a way to further kluge the theory. That is what the negative branes were invented for. Branes are an imagined surface or shape (can be from 1 to 5 D) that the ends of strings must stay connected to. They were first imagined in 2-D as membranes, then expanded into more Ds, and called D-branes, or just Branes. A negative brane was never explained by Susskind, and I suspect it is just a mathematical artifact to somehow bring the vacuum energy to a positive value. The addition of them to String theory is another patch to deal with a contrary observation. Smolin points out that good theories are usually quickly confirmed by observations, and they suggest all sorts of new and surprising things which then advance physics in other areas. The theories that have been discarded in physics are the ones which try to be kluged up with special cases to deal with one embarrassing observation after another. This looks to me to be the case with String Theory. Smolin started his book with 5 big questions that faced physics 30 years ago, when String Theory first became the dominant idea in theoretical physics, and that NONE of these have been solved in the last 30 years. He thinks it is due to physics departing from testability, and embracing a theory which is infinitely klugable and non-falsifiable -- and as a result the experimentalists have been starved of viable theories to test to advance our understanding of these issues. Smolin is as good and clear a writer as Susskind, and he has a better case, since he does not try to hide embarrassing facts, nor attack the principle of experimental confirmability at the core of science. Reading the two together, Smolin blows Susskind out of the water -- String Theory is a dead end. Despite this judgement, I still reccommend the book as very enjoyable and thought provoking.
P**E
Accessible String Theory treatment of the Anthropic Principle
Suskind's accessible, lucid, and lively science writing rivals Hawking. When he is recounting stories of meeting colleagues at universities or conferences, his writing is as engaging as a novelist's writing. This book on a String Theory take on the Anthropic principle is not only useful and needed, but is very enjoying to read due to Suskind's prose. Suskind offers in the beginning a very clear explanation of the Feynman diagram to be used as a tool for explaining particle physics. He also provides a brilliant account of the significance of the cosmological constant to the fine tuning of the universe. If the constant were negative, galaxies and stars would collapse leading to a collapse of the universe. If it is an order of magnitude greater than the 123 decimal places of the value for this universe, the repulsive force would prevent the forming of galaxies and star systems. Suskind uses the notion of "landscape" to set up his treatment of the fine tuning problem. Landscape is the idea of the variation of the environments of the universe. Each environment has its own constants, laws of physics, and particles based on the fields it has. For instance, if the Higgs field is different, the mass of the elementary particles and the laws of physics would be different. Variation of fields would offer a diversity of multidimensional landscape in the universe or the "megaverse". The universe features a variation of environments of different vacuum energies. Some of them can be like ours while many aren't. This richness of the landscape variation is how Suskind sets up the problem. To introduce String Theory, Suskind recounted the interesting story of how he got started on String Theory. He was looking at Veneziano's S Matrix equation on Hadrons collision that Hector Rubenstein introduced to him. He was not at all interested in the particle physics surrounding S matrix but found the equation oddly looked like about harmonic oscillator. Later he saw that the equation depicts two open end strings colliding with the ends featuring a quark and anti-quark. He called the string "rubber band" because of elasticity. So String Theory started out as a theory about hadrons. Initially there are the baryons string configurations with three strings joined at one end while a quark is on the other end. There is also the simpler meson configuration with a quark and anti quark on each end of the string. When a string replaces a particle in a Feynman diagram and traces out a time elapsed history, a sheet resembling a cylinder results which is called a "world sheet". That is the origin of how the interesting Calabi Yau manifold geometry evolves into many shapes and configurations. String Theory connects with and utilizes General Relatvity's compactification of space to account for how extra dimensions can be compactified. For instance, the cylindrical world sheet seen in a very small scale would appear like a line thereby compactifying 2 dimensions to 1 dimension. Further, using Kaluza-Klein theory of extra dimensions of space being rolled up, String Theory adds 6 more rolled up dimensions to make up 9 dimensions plus time to be the 10th dimension. The distance around a compactified surface is called the compactification scale, which fixes the charge and mass of the particles. In other words, the scale of the surface would vary the laws of physics. Recall that the quantised vibration features of the strings determine the kinds of particles there are. In 1995, Witten introduced a M theory that modified the String Theory into a version that utilizes membranes instead of string. Membranes are the sheets version of strings. A string in a one dimensional space which is just a 1-brane. The 10 space directions of M theory feature 9-branes. As indicated above, there are 6 dimensions rolled up in the initial 3 spatial dimensions in String theory. The variations of the Calabi Yau manifolds that can result from the branes offer 10 to the 500 environments ot vacuums for String Theory. The landscape offering these environments are the possibilities that megaverse can take shape literally. How do these possibilities get actualised into pockets of multiverses to constitute the megaverse? It is by mestability of the vacuums and space cloning which use eternal inflation as the driving mechanism. Metastability refers to the idea that properties of vacuums that can spontaneously changed into pockets of actual miniverse populating the landscape each of which with a unique own cosmological constant. Space cloning is the replicating of empty space by a bubbling process filling the gap. This cloning process grows exponentially through an inflation process that eventually actualises pockets of miniverse. With pockets of miniverses each with different cosmological constant which produces its own laws of physics and particles, the finetuning of the anthropic principle is easily explained. In a cosmic landscape of possibilities populated by a megaverse of actualities, one of the actualities or miniverses would have the proper cosmological constant and associating law of physics like our observable universe that has the galaxies, stars, and planets to sustain life. It is in effect disarming the notion of fine tuning. Among all the pocket universes, at least one of them would work. Suskind thinks String Theory is powerful to address the anthropic principle because it has the wealth of numerous Calabi Yau manifolds to offer the millions of vacuum possibilities to be populated into pocket miniverses, thereby showing fine tuning is no more than an actual pocket miniverse among many that has the right working condition. Suskind did an excellent and lucid job in elaborating this approach.
P**R
An excellent survey on the evolution of particle physics and cosmological ...
An excellent survey on the evolution of particle physics and cosmological thought over the last 100 years. A challenging read for those outside the field, it is well written for the lay person with an interest in both the substance and history of theories about the nature of matter, sub-atomic particles and their behavior, and their implications for the origins of our universe. Susskind takes the reader through relativity, quantum mechanics, atomic structure, and string theory, as well as their inherent problems and the search for related evidence. Although not a light read, this book is engaging and well worth having to double back to clarify issues and concepts discussed earlier in the work.
D**Y
Excellent-A MUST Read for non-physicists and physicists
Leonard Susskind. one of the leading physicists and cosmologists of our time, has written an easy to read, non-technical, very informative guide to the latest discoveries of cosmology and the theoretical unification of string theory with cosmology. It provides remarkable insights into why our portion of the universe is the way it is and how it's an infitesmal part of a multiverse of possible universes with different physical laws and dimensions, and untold replicas of our own small portion of the universe. This is a wonderful addition to Susskind's other excellent books and his iTunes U online physics lectures. This has to be one of the best four books I have read in my life. Dale Gray, Sr Risk Expert. International Monetary Fund
M**R
String Theory at its finest!
If you Dont know who Leonard Susskind is you should. If you have never heard of him, is time you go to his YT to learn about physics because he will blow your mind. His books are perhaps the most concise and remarkable there are, and I can't have enough at any rate. The only sad thing about this is him not having more audiobooks available than The Black Hole War because he contextualizes everything in such a clear way for non-specialists in Black Holes or Strong Theory and even those who understand the science behind it. After all, he is one of the fathers of String Theory. This book is a work of art and explains the cosmic landscape in all its glory.
D**N
Life arises from bound states of atoms
In order to show how life, at least as it is currently understood, arose in the universe requires that one have an understanding of how carbon atoms evolved from their elementary constituents, i.e. from protons, neutrons, and electrons. Having done that, one needs to explicitly show how DNA molecules can assemble from the amino acids that they are constructed from. Then one faces the formidable problem of how the proteins arising from RNA transcription fold into the observed configurations. These processes are extremely difficult to analyze given the current knowledge and tools from physics. To show even the first process requires an understanding of how electrons and protons can coalesce to form bound states. Unfortunately, and contrary to the beliefs of many physicists, it is not possible at the present time to show how carbon atoms can form using the language of quantum field theory, which is the theory governing the interactions of elementary particles. Quantum field theory was invented to describe scattering events that occur in particle accelerator experiments. This it has done with incredible accuracy, an accuracy which has been unmatched by any other physical theory. The calculation and prediction of bound states has not been possible however from quantum field theory, although several proposals and attempts have been made over the last five decades. This inability has caused some physicists to view the theory with a large amount of skepticism. This skepticism is justified, since a successful theory of elementary particle interactions should be able to describe in detail how matter emerges from its elementary constituents. Quantum field theory is regularly used in cosmology to study the evolution of the universe and is used to calculate various quantities of interest in the `Standard Model' of elementary particles. And again, it has been able to do these calculations with an incredible accuracy, as long as the interactions, or "couplings" between the particles are weak. A weak coupling between the particles enables one to calculate `cross-sections' for the interactions, which are essentially a measure of the probabilities of finding the particles in a certain final configuration after they have interacted and scattered. This involves the calculation of a series in successively higher powers of the coupling constant (being itself much less than one), with the higher-order terms becoming smaller and smaller. This is called `perturbative quantum field theory', and has generated an enormous amount of literature. Given the inability to perform bound state calculations in quantum field theory, and given it is assumed to be the fundamental theory of particle interactions (excluding gravity), one cannot use it to meaningfully discuss the probability of life arising in the universe. Beginning with the Big Bang one cannot, using quantum field theory, follow the evolution of the universe to show how carbon atoms were formed or even the probabilities that such atoms, or any others for that matter, were formed. For this reason, any discussion of the fine-tuning of the universe, i.e. of life being very sensitive to the values of the elementary parameters of the Standard Model, is not meaningful. Before one can say that life would not be "possible" one needs to know the probabilities that are involved in forming a carbon atom from electrons, neutrons, and protons. If one believes that quantum field theory is indeed the theory that governs the interactions between electrons, neutrons, and protons, one is forced to calculate the `transition amplitude' between a free state of these particles and their bound state in the carbon atom. This has not been done in the physics literature to this date, at least from the standpoint of purists who insist upon detailed calculations with a minimal number of assumptions. String theory, the generalization of quantum field theory that was invented to incorporate gravity into its theoretical language, is of no help either in the bound state problem. If the content of this book is viewed in this context then it becomes rather uninteresting. That is not to say that it could not be read by someone interested in the current heated debate on the Anthropic Principle and what has been named `intelligent design.' In addition, a reader interested in string theory will find many interesting insights from a person who has been actively involved in its development. It is difficult to find these insights if the usual literature on string theory is consulted. From the standpoint of calculations in quantum field theory that go beyond the perturbative regime, the Anthropic Principle and fine-tuning are very much open questions. Life (arising from bound states of electrons, protons, and neutrons) may depend very sensitively on certain parameters or it may in fact be very flexible with respect to these parameters. If one is sincerely interested in these questions one will have to delve into the morass of non-perturbative quantum field theory, an area that many physicists have shied away from, due to its extreme difficulty. Computing power will no doubt play a role, as it has, in attempting to understand the full spectrum of quantum field theory. There are many groups around the world who have been involved in this research, and progress has been slow but steady. Hopefully the "world according to Feynman", i.e. the world as described by perturbative quantum field theory, will eventually be replaced by the "world according to Wilczek", the latter being one where considerations of bound states of protons and neutrons are of main interest.
B**K
Informative and Provocative Book on an On-Going Debate
The Cosmic Landscape: String Theory and the Illusion of Intelligent Design by Leonard Susskind "The Cosmic Landscape" is an informative, provocative theoretical physics book about how the world came to be the way it is. Dr. Leonard Susskind takes the layperson behind the scenes of an on-going debate among physicists and cosmologists; it's a battle between those who believe that the laws of nature are determined by mathematical relations, and those who believe that the Laws of Physics have been determined by the requirement that intelligent life be possible. This book is educational and sometimes challenging but ultimately satisfying. This stimulating 416-page book includes the following thirteen chapters: 1. The World According to Feynman, 2. The Mother of All Physics Problems, 3. The Lay of the Land, 4. The Myth of Uniqueness and Elegance, 5. Thunderbolt from Heaven, 6. On Frozen Fish and Boiled Fish, 7. A Rubber Band-Powered World, 8. Reincarnation, 9. On Our Own?, 10. The Branes behind Rube Goldberg's Greatest Machine, 11. A Bubble Bath Universe, 12. The Black Hole War, and 13. Summing Up. Positives: 1. A well-written, accessible book for the masses. 2. The fascinating topic of cosmology in the hands of subject-matter expert. 3. Even though the Dr. Susskind is obviously a string theorist he does a commendable job of being fair and even-handed. 4. Does a wonderful job of introducing the Laws of Physics to the readers at an enjoyable and accessible level. Dr. Susskind takes pride in educating the public on very difficult and esoteric topics. Very few equations, those of you math-adversed do not fret. 5. Explaining the theories that best explain the universe. "Inflationary cosmology, which is our best theory of the universe, is leading us, sometimes unwillingly, to a concept of a megaverse, filled with a prodigious number of what Alan Guth calls "pocket universes." 6. Despite the intellectual battles on contentious cosmological debates among scientists there seems to be a great deal of respect, honor and most importantly drive to find the answers to our biggest cosmological questions. Dr. Susskind is very complimentary to his brethren. An all-star cast of physicists. "I have always admired the clarity and depth of Steven Weinberg's physics. In my opinion he, more than anyone, can lay claim to being the father, of the Standard Model." 7. Making elementary particles accessible to the masses via Feynman's pictures. 8. The cosmological constant in perspective. Was it truly Einstein's "biggest blunder"? 9. Cosmic Landscape in proper context. "It denotes a mathematical space representing all of the possible environments that theory allows". 10. Elegance in science. "The best theory would be not only a theory of everything, but it would be the only possible theory of everything." 11. Is the universe finite and bounded as Einstein thought, or is it unbounded filled with an endless infinity of stars and galaxies? What is the geometry of space? Find out. 12. The great achievements of cosmology. "The connection between the quantum theory of the microscopic world and the large-scale structure of the astronomical and cosmological world is one of the greatest achievements of cosmology." 13. Dismantling intelligent design...always a personal favorite. 14. Stirring up the hornet's nest with "The Anthropic Landscape of String Theory". Dr. Susskind explains his baby, String Theory. Three chapters of everything String Theory. 15. In defense of the populated Landscape. "Mechanisms that rely on well-tested physical principles gave rise to a huge, or even an infinite, number of pocket universes, with each and every valley in the Landscape being represented." 16. The chapter on the black hole war covers beautifully the behind the scenes battle among scientists. Stephen Hawking eat your heart out..."If Gerard is conservative I would have to say that Stephen Hawking is the Evel Knievel of physics." 17. Really closes out the book with a bang. The Summing Up chapter summarizes beautifully the essence of this book. 18. Love how Dr. Susskind goes over the most prominent physicists of the day and their contributions, including the younger generation. His admiration for Gerard `t Hooft is palpable. 19. An excellent epilogue. 20. A helpful glossary. Negatives: 1. How scientific is modern cosmology? String theories? A lot of it has that sci-fi feel to it, no matter how hard Dr. Susskind tries to sell it as scientific. 2. Let's face it, there are some topics in physics and cosmology that are truly "far out" and are bound to be over your head. Branes will challenge your brain. 3. Very few endnotes. 4. It requires an investment of your time. 5. No formal bibliography. In summary, despite some of the challenging topics I really enjoyed this book. Dr. Susskind did a very good job of introducing basic principles and concepts while not shortchanging the public on many of the perplexing challenges that physicists/cosmologists face to describe how the world came to be. The book captures the on-going debates in the physics community and describes quite well where the scientists stand. My biggest concern has to do with how well the theory really captures reality. How sound is the science? That aside, and while some topics are bound to go over your head with curiosity and perseverance it will ultimately educate and satisfy. I recommend it! Further recommendations: " Hidden In Plain Sight: The simple link between relativity and quantum mechanics " by Andrew Thomas, " Farewell to Reality: How Modern Physics Has Betrayed the Search for Scientific Truth " by Jim Baggott, " Spectrums " by David Blatner, " The Elegant Universe: Superstrings, Hidden Dimensions, and the Quest for the Ultimate Theory " and " The Hidden Reality: Parallel Universes and the Deep Laws of the Cosmos " by Brian Greene, " A Universe from Nothing: Why There Is Something Rather than Nothing " by Lawrence M. Krauss, " About Time: Cosmology and Culture at the Twilight of the Big Bang " by Adam Frank, "Higgs Discovery" and " Warped Passages: Unraveling the Mysteries of the Universe's Hidden Dimensions " by Lisa Randall, " The Grand Design " by Stephen Hawking, " The Quantum Universe: (And Why Anything That Can Happen, Does) " by Brian Cox, "The Blind Spot" by William Byers, and "The Fallacy of Fine-Tuning: Why the Universe Is Not Designed for Us" and "God and the Atom" by Victor Stenger.
N**D
Implications of String Theory
This book is the good non-technical introduction to the implications of String Theory. The theme of the book is that String Theory implys there are a very large number of possible vacuum states ( sets of physical laws ). Our world is just one of these vacuum states. Each different vacuum state would have different sets of elementary ( sub-atomic ) particles and forces. However, String Theory is still a long way from being strongly supported by experimental evidence. This evidence may or may not be discovered over the next century. However, I do not think it really has much to say about the existance or non-existance of an intelligent, purposeful god. In my my opinion, human knowledge is, and always will be, too limited to make final statements about the nature of god and the universe. Large unprovable statements about the nature of the world are more likely to be a reflection of the character of the the individual making them. You see what you choose to see. This is only human nature and everyone does this to some extent. Never the less, as a non-technical physics book I recommend this highly.
R**O
Hope he continues writing these...
For the non-professional like me, this is a fascinating book about contemporary issues in particle physics, string theory and cosmology. It is a personal view about the issues and the people from one of the top guns in theoretical physics. It is well written and non-technical, in parts even humorous, the main requirement for the reader being a curious mind. Even though I consider this an outstanding book, it still has its ups and downs. I especially enjoyed the part about the properties of elementary paticles, which I have not seen explained in this manner elsewhere. More of this, please, now that CERN is up and running! The most important insight was why many physicists have been forced to swallow the anthropic principle and the many worlds view. I had some trouble reading through the part about string theory: there seems to be too many possibilities. If there are no limits to what the strings can look like, maybe some of them even look like me! After reading the book, I came out feeling that there is a stong case for string theory and the anthropic principle but it is also easy to symphatize with the critics like Smolin. I hope physicists do not get lost exploring the properties of the endless landscape.
C**S
Guter Text mit Fachwissen kombiniert
Für Physiker eine Freude zu lesen!
R**T
Good follow up from Black Hole War
Professor Susskind is a great writer.
O**R
Buena visión general
Libro perfecto para hacerse una idea de como se llegó a la teoría de cuerdas. Sin entrar en profundidad adquieres una formaciòn general cualitativa del tema (no hay matemàticas en él). Lo recomiendo como lectura de entretenimiento. Lo mejor es q el autor formó parte del desarrollo dea teoría.
D**E
A Beautiful Book
This is one of the most beautiful books on Anthropic Principles, cosmological constant and String theory. Easily understandable. Professor. Susskind had made a great job in understanding the difficult concept to the readers in an user friendly manner.
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