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[Z152.Ebook] Free Ebook Calculus Single Variable, Sixth Edition International Student Version, by GLeason, McCallum, et al. Hughes-Hallett

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No notes, few scratches, overall condition is very good!

  • Sales Rank: #591997 in Health and Beauty
  • Published on: 2013
  • Ingredients: Example Ingredients
  • Number of items: 1
  • Dimensions: 10.43" h x 1.02" w x 8.50" l, 3.40 pounds

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[J638.Ebook] Ebook Download Essentials of Swedish Grammar: A Practical Guide to the Mastery of Swedish, by Ake Viberg, Kerstin Ballardini, Sune Stjarnlof

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Essentials of Swedish Grammar: A Practical Guide to the Mastery of Swedish, by Ake Viberg, Kerstin Ballardini, Sune Stjarnlof

This compact volume offers an integrated guide to the major grammatical concepts needed for writing and speaking Swedish.

  • Sales Rank: #144670 in Books
  • Brand: Brand: Passport Books
  • Published on: 1993-01-01
  • Original language: English
  • Number of items: 1
  • Dimensions: 9.00" h x .37" w x 6.00" l, .48 pounds
  • Binding: Paperback
  • 159 pages
Features
  • Used Book in Good Condition

From the Back Cover
In one compact volume, 'Essentials Of Swedish Grammar' offers an integrated presentation of the major grammatical concepts needed for correct speech and writing in Swedish.

About the Author
McGraw-Hill authors represent the leading experts in their fields and are dedicated to improving the lives, careers, and interests of readers worldwide

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23 of 23 people found the following review helpful.
Extremely Helpful and Easy to Understand
By P. Highland
(written by my thirteen-year-old daughter)
When I was 12 years old I decided that I wanted to learn Swedish. Since Swedish was going to be my first foreign language and I was learning it by myself, I figured that I should spend my money wisely and only buy a few items. Along with a Swedish-English/engelsk-svensk Dictionary and a book on conjugating Swedish verbs, I bought this. I'd say that if I had to choose only one of those three items to buy, it would be this one because it explained the grammar of all sorts in a manner that even a 12-year-old could understand.. When first I decided that I wanted to learn Swedish I read up on it and learned a bit about its rules. I was especially daunted by the prospect of learning the definite and plural forms of the word, which confused me to no end. However when I read this book I understood it perfectly, along with other things that confused me, like "rolig", "roligt", and "roliga", for example.
I have had this book for a little over one year, and I have read it through, and still go back sometimes to refresh myself. I must say that I do not regret buying this book!
(By the way, its size made it perfect for carrying around---many a morning before school I spent reading this book throughout last year.)
My only woe is that they do not have the same book for Finnish..!

0 of 0 people found the following review helpful.
It would be better after learning some basic grammar
By Eric Reichert
It isn't as elementary as I'd hoped. It would be better after learning some basic grammar.

2 of 2 people found the following review helpful.
Best Svenska Grammatik out there!
By Samara Leist
This is the best Swedish grammar book out there. It is very concise, and skips all the nonsense and difficult to understand wording. It has everything you need to know, and is not a heavy, hard to handle book.

I had the older version that my Uncle who married a Swedish woman gave me, and I loved it so much, but it was falling apart from his usage (which was many years ago), so I had to buy myself a new one and was so glad I did.

Great great book.

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[H465.Ebook] Get Free Ebook Making, Breaking Codes: Introduction to Cryptology, by Paul Garrett

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Making, Breaking Codes: Introduction to Cryptology, by Paul Garrett

This unique book explains the basic issues of classical and modern cryptography, and provides a self contained essential mathematical background in number theory, abstract algebra, and probability—with surveys of relevant parts of complexity theory and other things. A user-friendly, down-to-earth tone presents concretely motivated introductions to these topics. More detailed chapter topics include simple ciphers; applying ideas from probability; substitutions, transpositions, permutations; modern symmetric ciphers; the integers; prime numbers; powers and roots modulo primes; powers and roots for composite moduli; weakly multiplicative functions; quadratic symbols, quadratic reciprocity; pseudoprimes; groups; sketches of protocols; rings, fields, polynomials; cyclotomic polynomials, primitive roots; pseudo-random number generators; proofs concerning pseudoprimality; factorization attacks finite fields; and elliptic curves. For personnel in computer security, system administration, and information systems.

  • Sales Rank: #569913 in Books
  • Published on: 2001-08-09
  • Original language: English
  • Number of items: 1
  • Dimensions: 8.98" h x .95" w x 7.01" l, 1.93 pounds
  • Binding: Paperback
  • 483 pages

From the Inside Flap
Preface

This book is an introduction to modern ideas in cryptology and how to employ these ideas. It includes the relevant material on number theory, probability, and abstract algebra, in addition to descriptions of ideas about algorithms and complexity theory. Three somewhat different terms appear in the discussion of secure communications and related matters: cryptography, cryptanalysis, and cryptology. The first, cryptography, refers to writing using various methods to keep the message secret, as well as more modern applications of these methods. By contrast, cryptanalysis is the science of attacking ciphers, finding weaknesses, or possibly proving that there are none. Cryptology covers both, and is the most inclusive term.

In an introduction to cryptography, cryptanalysis, and cryptology that is more than just recreational, several things should be accomplished:

Provide some historical perspective. Specifically, we should see why the classical cipher systems fail by contemporary standards. Survey uses of cryptography. (It is not just for keeping secrets.) Introduce mathematics relevant to classical and modern cryptosystems. Give examples of types of hostile cryptanalytic attacks. Explain that key management and implementation details are fundamental.

Prerequisites here are minimal: the reader need only have the mathematical sophistication associated with having taken calculus and a bit of linear algebra.

We will first selectively review classical cryptology. This refers to the time prior to the 1940s. Some mechanical and primitive electronic devices were automated decryption/encryption and hostile cryptanalytic attacks, especially during 19351945, but these devices were slow, limited in their programmability, and not very portable. Part of the limitation was that they were fundamentally mechanical or electromechanical, rather than being 'software.'

By contemporary standards, the classical ciphers (prior to Enigma) definitively fail. This doesn't mean what one might think, though. It is much more than just the fact that contemporary computers are much better than the tube-based machines of the 1940s. Rather, it is now demanded that 'strong' ciphers be resistant to types of attacks which might have seemed irrelevant in the past.

One interesting idea that pervades both the classical and modern cryptanalysis and underlying mathematics is that of stochastic algorithm or probabilistic algorithm, by contrast to the more traditional and usual deterministic algorithms used in elementary mathematics. The point is that for many purposes there are algorithms that run much faster but with less than 100% chance of success, or, on the other hand, usually run fast, but not always. And this appears to be a fact of life, rather than just an artifact of our ignorance.

It must be noted that the advent of widely available high-speed computing machinery has drastically altered the landscape of cryptology. Simultaneously:

Encryption and (authorized) decryption can be automated, massive computation to perform encryption/decryption is enormously easier, and more elaborate systems become feasible. Storage, transfer, and manipulation of data on computer networks has sharply increased the need for effective encryption and related techniques. Cryptanalytic attacks have become commensurately easier. So issues which might have previously been viewed as of interest mostly to little kids (?) or spies (?) are now of quite general interest.

This is a subject in applied mathematics, since most of the mathematics we do will be motivated by application. The necessary mathematics will include some number theory, linear algebra, abstract algebra, probability theory, complexity theory, and other things. We can't pretend to be doing justice to these subjects, but will only provide an introduction with some concrete motivation. At the same time, we do not assume prior experience with any of these subjects.

There is also not enough space in a single book to pretend to give any sort of complete coverage of either historical developments or current developments in cryptology itself. What is possible is giving some representative and important examples and indicating other directions.

We will not be able to simulate full-scale real-life examples of contemporary issues, especially of cryptanalysis, because we do not have access to the right kind of computing machinery, and the actual simulations would take many hours or days in any case, with enormous memory usage. Ordinary computers can do encryptions and (authorized) decryptions very fast, but real-life attacks on today's cipher systems take days or months of computer time.

So at first we'll discuss some representative 'classical' cryptosystems, and the mathematics on which they are based, or which can be used to understand or break them. This is a good warm-up. Then, a little later, we'll describe a real symmetric encryption system in current use: DES ('Data Encryption Standard'). DES is considerably more complicated than the classical ciphers, and for good reason: much more is required of it. And, partly because of its success, it is not possible to say how to attack it successfully. A little more specifically: the fact that DES reveals very little mathematical structure is all in its favor, since this is what makes it less vulnerable to attack. DES has been the U.S. standard (for symmetric ciphers) since the mid-1970s, and has been used extensively outside the U.S. as well. Extensive analysis over 20 years has not found any fatal weakness in DES, but by now computers are so much faster than in 1976 that a brute-force attack is feasible. In fact, in mid-1998 the Electronic Frontier Foundation (EEF) spent $100,000 to construct a DES-cracker from off-the-shelf parts, which is able to obtain a DES key in about 2 days. Still, triple encryption by DES, reasonably enough called triple DES, seems to be secure for the foreseeable future. Nevertheless, the National Institute of Standards has called for submission of candidates for a new symmetric cipher with 128-bit block size. This contest is still going on now (mod-2000), and the winner will be known as the Advanced Encryption Standard (AES).

There is much more mathematical content in the discussion of the asymmetric ciphers (also called public-key ciphers). We will mostly discuss two sorts: the RSA system (Rivest, Shamir, Adleman), and the E1Gama1 system and its generalizations. RSA is simpler and more popular, but E1Gama1 lends itself better to generalizations such as elliptic carve ciphers. The security of RSA hinges on the apparent difficulty of factoring very large integers into primes. The security of the E1Gama1 system depends upon the difficulty of computing 'logarithms in finite fields.' (What this means exactly will be explained later.) And practical operation of either system depends upon generating a good supply of very large primes, which is an interesting problem in itself. As a further sample of asymmetric cipher, we briefly mention the NTRU cipher, which is newer and mathematically more sophisticated. In contrast to the symmetric systems, the more mathematical nature of the asymmetric systems does seem to make them naturally more vulnerable. There are important and subtle auxiliary mathematical issues in this part.

More specifically, after reviewing classical issues, we'll give an introduction to the application of number theory to contemporary cryptology, especially public-key ciphers such as RSA and ElGamal. This will introduce

public-key (asymmetric) ciphers pseudo-random-number generators (pRNGs) protocols

The necessary mathematics will include

results from number theory and abstract algebra primality testing, factorization, and related algorithms informal ideas from complexity theory

We won't do much with complexity theory except to keep rough track of the difficulty with which various computations can be performed, separating 'hard' from 'easy.'

The primality testing and factoring issues are fundamental for almost everything here. Many of the actual algorithms can be described in elementary terms, although the explanations for why they work at all usually require more preparation. But even without the explanation it is possible to experiment with these algorithms to get a feeling for their performance and accuracy.

A central underlying issue is the structure of integers-modulo-n, denoted Z/n (explained later), and generalizations of this. Especially we want to understand the differences in the nature of Z/n between for n composite and for n prime.

Randomization plays a very important role in some of the most efficient algorithms. For those of us accustomed to certainty in mathematics, this may be disconcerting, but it seems to be a necessary price to pay in many situations. The immediate goal is to motivate consideration of probabilistic primality tests such as Solovay-Strassen and Miller-Rabin, and prove that they work.

There is much more material here than could fit into a one-semester course, but in good conscience I couldn't have left anything out. A year-long course probably could go straight through and cover nearly everything.

I have used this material several times in a course that does not presume that students know any number theory, abstract algebra, probability, or cryptography. The mathematical topics are interwoven with cryptological applications in a style that is intended to provide adequate motivation for applications-minded people and interesting sidelights for theoretically-minded people. I've tried to make the different chapters maximally independent of each other to allow readers to skip topics that don't appear interesting to them without impairing the intelligibility of subsequent writing. In some cases this required that I repeat some small discussions of technical points because I could not be sure that the reader would have seen the earlier discussion. From a pedagogical viewpoint a modest amount of repetition is probably a good thing anyway.

A one-semester course in number theory could use this text, with the cryptographic and computational parts skipped but left as optional reading. There is more abstract algebra included than here in some traditional number theory courses. When I've taught traditional undergraduate number theory courses I always faced the choice between pretending to do number theory without abstract algebra, requiring abstract algebra as prerequisite, or developing some abstract algebra as motivated by number theory. The latter (somewhat non-traditional) choice has been my choice, but there are few texts that hit that mark. Some parts of the present text are an outgrowth of notes I've written for undergraduate courses in which I coordinated number theory and abstract algebra, using number theory as a tangible entry point to algebra and as a beneficiary of basic results from it. Thus, a one-semester course in number theory could skip over the first six chapters on classical ciphers and probability, and also skip the chapter on the Hill ciphers. The chapter on public-key ciphers could be skipped, but this is one of the chief applications of mathematics to communication.

A short introductory course in cryptography could use this text, with much of the more serious mathematical sections omitted. To make this feasible, I've tried to write about the mathematical aspects in a manner that is intelligible from both relatively elementary and relatively high-level viewpoints. In some cases this means that I've given both an elementary proof of a special case and a more elegant higher-level proof of a more general case. Since this is probably good educational strategy anyway, I don't feel bad about spending the time and space. At the same time, a common limitation of more serious cryptography texts is that the relevant mathematics is given short shrift. A related common limitation is that the reader is assumed to have already reached a high level of mathematical sophistication. By contrast, here I've attempted to require as little as possibly, while still providing appropriate resources for the cryptography student who wants to see how the underlying mathematics works. Thus, a short introductory course in cryptography could simply proceed straight through the text and stop when time ran out. In some sense this is the most natural use of this material.

A course in computational number theory could focus on the algorithms, and soft-pedal the cryptography and the more theoretical mathematical parts. In the classes I've taught from this material I have not assumed that students are able to or want to do computer work of any sort, but of course the material begs for CPU time! My descriptions of the algorithms are intended to be fairly clear, but I've not written out pseudo-code or specific language implementations of the algorithms. One reason for this is that I want students to think about what the algorithms are doing, at least a little, rather than just to execute them. Another reason for not writing out algorithms in a proprietary language is that I am disinclined to implicitly endorse a language and all it entails. And, while I strongly favor students' learning how to write programs, I don't encourage them to study software packages. Still, friendly-interface software packages do provide an easy entry to computing.

In courses for students who have already seen some probability or number theory the corresponding chapters and sections can be skipped. In structuring the text I have incorporated necessary material into the text itself rather than relegating it to appendices. This allows a knowledgeable reader to skip over material while not requiring that everyone else flip back and forth to appendices. Such integration of the material better shows the logical dependencies, too.

I thank the reviewers of the manuscript for their constructive criticism and for their positive responses to some of my non-standard stylistic choices: Professors Irvin Roy Hentzel, Iowa State University; Yangbo Ye, University of Iowa, Iowa City; Joachim Rosenthal, U. of Notre Dame; Daniel Lieman, U. of Missouri, Columbia; Jonathan Hall, Michigan State University. My students in the last few years deserve thanks for tolerating half-baked versions of this text, making helpful suggestions, and finding many errors, hopefully making the reviewers' job less gruesome than it might have been otherwise.

Paul Garrett
University of Minnesota, Minneapolis
garrett@math.umn
paul.garrett@acm
math.umn/~garrett/

From the Back Cover
This unique book explains the basic issues of classical and modern cryptography, and provides a self contained essential mathematical background in number theory, abstract algebra, and probability—with surveys of relevant parts of complexity theory and other things. A user-friendly, down-to-earth tone presents concretely motivated introductions to these topics. More detailed chapter topics include simple ciphers; applying ideas from probability; substitutions, transpositions, permutations; modern symmetric ciphers; the integers; prime numbers; powers and roots modulo primes; powers and roots for composite moduli; weakly multiplicative functions; quadratic symbols, quadratic reciprocity; pseudoprimes; groups; sketches of protocols; rings, fields, polynomials; cyclotomic polynomials, primitive roots; pseudo-random number generators; proofs concerning pseudoprimality; factorization attacks finite fields; and elliptic curves. For personnel in computer security, system administration, and information systems.

Excerpt. � Reprinted by permission. All rights reserved.
Preface

This book is an introduction to modern ideas in cryptology and how to employ these ideas. It includes the relevant material on number theory, probability, and abstract algebra, in addition to descriptions of ideas about algorithms and complexity theory. Three somewhat different terms appear in the discussion of secure communications and related matters: cryptography, cryptanalysis, and cryptology. The first, cryptography, refers to writing using various methods to keep the message secret, as well as more modern applications of these methods. By contrast, cryptanalysis is the science of attacking ciphers, finding weaknesses, or possibly proving that there are none. Cryptology covers both, and is the most inclusive term.

In an introduction to cryptography, cryptanalysis, and cryptology that is more than just recreational, several things should be accomplished:

  • Provide some historical perspective. Specifically, we should see why the classical cipher systems fail by contemporary standards.
  • Survey uses of cryptography. (It is not just for keeping secrets.)
  • Introduce mathematics relevant to classical and modern cryptosystems.
  • Give examples of types of hostile cryptanalytic attacks.
  • Explain that key management and implementation details are fundamental.

Prerequisites here are minimal: the reader need only have the mathematical sophistication associated with having taken calculus and a bit of linear algebra.

We will first selectively review classical cryptology. This refers to the time prior to the 1940s. Some mechanical and primitive electronic devices were automated decryption/encryption and hostile cryptanalytic attacks, especially during 19351945, but these devices were slow, limited in their programmability, and not very portable. Part of the limitation was that they were fundamentally mechanical or electromechanical, rather than being 'software.'

By contemporary standards, the classical ciphers (prior to Enigma) definitively fail. This doesn't mean what one might think, though. It is much more than just the fact that contemporary computers are much better than the tube-based machines of the 1940s. Rather, it is now demanded that 'strong' ciphers be resistant to types of attacks which might have seemed irrelevant in the past.

One interesting idea that pervades both the classical and modern cryptanalysis and underlying mathematics is that of stochastic algorithm or probabilistic algorithm, by contrast to the more traditional and usual deterministic algorithms used in elementary mathematics. The point is that for many purposes there are algorithms that run much faster but with less than 100% chance of success, or, on the other hand, usually run fast, but not always. And this appears to be a fact of life, rather than just an artifact of our ignorance.

It must be noted that the advent of widely available high-speed computing machinery has drastically altered the landscape of cryptology. Simultaneously:

  • Encryption and (authorized) decryption can be automated, massive computation to perform encryption/decryption is enormously easier, and more elaborate systems become feasible.
  • Storage, transfer, and manipulation of data on computer networks has sharply increased the need for effective encryption and related techniques.
  • Cryptanalytic attacks have become commensurately easier. So issues which might have previously been viewed as of interest mostly to little kids (?) or spies (?) are now of quite general interest.

This is a subject in applied mathematics, since most of the mathematics we do will be motivated by application. The necessary mathematics will include some number theory, linear algebra, abstract algebra, probability theory, complexity theory, and other things. We can't pretend to be doing justice to these subjects, but will only provide an introduction with some concrete motivation. At the same time, we do not assume prior experience with any of these subjects.

There is also not enough space in a single book to pretend to give any sort of complete coverage of either historical developments or current developments in cryptology itself. What is possible is giving some representative and important examples and indicating other directions.

We will not be able to simulate full-scale real-life examples of contemporary issues, especially of cryptanalysis, because we do not have access to the right kind of computing machinery, and the actual simulations would take many hours or days in any case, with enormous memory usage. Ordinary computers can do encryptions and (authorized) decryptions very fast, but real-life attacks on today's cipher systems take days or months of computer time.

So at first we'll discuss some representative 'classical' cryptosystems, and the mathematics on which they are based, or which can be used to understand or break them. This is a good warm-up. Then, a little later, we'll describe a real symmetric encryption system in current use: DES ('Data Encryption Standard'). DES is considerably more complicated than the classical ciphers, and for good reason: much more is required of it. And, partly because of its success, it is not possible to say how to attack it successfully. A little more specifically: the fact that DES reveals very little mathematical structure is all in its favor, since this is what makes it less vulnerable to attack. DES has been the U.S. standard (for symmetric ciphers) since the mid-1970s, and has been used extensively outside the U.S. as well. Extensive analysis over 20 years has not found any fatal weakness in DES, but by now computers are so much faster than in 1976 that a brute-force attack is feasible. In fact, in mid-1998 the Electronic Frontier Foundation (EEF) spent $100,000 to construct a DES-cracker from off-the-shelf parts, which is able to obtain a DES key in about 2 days. Still, triple encryption by DES, reasonably enough called triple DES, seems to be secure for the foreseeable future. Nevertheless, the National Institute of Standards has called for submission of candidates for a new symmetric cipher with 128-bit block size. This contest is still going on now (mod-2000), and the winner will be known as the Advanced Encryption Standard (AES).

There is much more mathematical content in the discussion of the asymmetric ciphers (also called public-key ciphers). We will mostly discuss two sorts: the RSA system (Rivest, Shamir, Adleman), and the E1Gama1 system and its generalizations. RSA is simpler and more popular, but E1Gama1 lends itself better to generalizations such as elliptic carve ciphers. The security of RSA hinges on the apparent difficulty of factoring very large integers into primes. The security of the E1Gama1 system depends upon the difficulty of computing 'logarithms in finite fields.' (What this means exactly will be explained later.) And practical operation of either system depends upon generating a good supply of very large primes, which is an interesting problem in itself. As a further sample of asymmetric cipher, we briefly mention the NTRU cipher, which is newer and mathematically more sophisticated. In contrast to the symmetric systems, the more mathematical nature of the asymmetric systems does seem to make them naturally more vulnerable. There are important and subtle auxiliary mathematical issues in this part.

More specifically, after reviewing classical issues, we'll give an introduction to the application of number theory to contemporary cryptology, especially public-key ciphers such as RSA and ElGamal. This will introduce

  • public-key (asymmetric) ciphers
  • pseudo-random-number generators (pRNGs)
  • protocols

The necessary mathematics will include

  • results from number theory and abstract algebra
  • primality testing, factorization, and related algorithms
  • informal ideas from complexity theory

We won't do much with complexity theory except to keep rough track of the difficulty with which various computations can be performed, separating 'hard' from 'easy.'

The primality testing and factoring issues are fundamental for almost everything here. Many of the actual algorithms can be described in elementary terms, although the explanations for why they work at all usually require more preparation. But even without the explanation it is possible to experiment with these algorithms to get a feeling for their performance and accuracy.

A central underlying issue is the structure of integers-modulo-n, denoted Z/n (explained later), and generalizations of this. Especially we want to understand the differences in the nature of Z/n between for n composite and for n prime.

Randomization plays a very important role in some of the most efficient algorithms. For those of us accustomed to certainty in mathematics, this may be disconcerting, but it seems to be a necessary price to pay in many situations. The immediate goal is to motivate consideration of probabilistic primality tests such as Solovay-Strassen and Miller-Rabin, and prove that they work.

There is much more material here than could fit into a one-semester course, but in good conscience I couldn't have left anything out. A year-long course probably could go straight through and cover nearly everything.

I have used this material several times in a course that does not presume that students know any number theory, abstract algebra, probability, or cryptography. The mathematical topics are interwoven with cryptological applications in a style that is intended to provide adequate motivation for applications-minded people and interesting sidelights for theoretically-minded people. I've tried to make the different chapters maximally independent of each other to allow readers to skip topics that don't appear interesting to them without impairing the intelligibility of subsequent writing. In some cases this required that I repeat some small discussions of technical points because I could not be sure that the reader would have seen the earlier discussion. From a pedagogical viewpoint a modest amount of repetition is probably a good thing anyway.

A one-semester course in number theory could use this text, with the cryptographic and computational parts skipped but left as optional reading. There is more abstract algebra included than here in some traditional number theory courses. When I've taught traditional undergraduate number theory courses I always faced the choice between pretending to do number theory without abstract algebra, requiring abstract algebra as prerequisite, or developing some abstract algebra as motivated by number theory. The latter (somewhat non-traditional) choice has been my choice, but there are few texts that hit that mark. Some parts of the present text are an outgrowth of notes I've written for undergraduate courses in which I coordinated number theory and abstract algebra, using number theory as a tangible entry point to algebra and as a beneficiary of basic results from it. Thus, a one-semester course in number theory could skip over the first six chapters on classical ciphers and probability, and also skip the chapter on the Hill ciphers. The chapter on public-key ciphers could be skipped, but this is one of the chief applications of mathematics to communication.

A short introductory course in cryptography could use this text, with much of the more serious mathematical sections omitted. To make this feasible, I've tried to write about the mathematical aspects in a manner that is intelligible from both relatively elementary and relatively high-level viewpoints. In some cases this means that I've given both an elementary proof of a special case and a more elegant higher-level proof of a more general case. Since this is probably good educational strategy anyway, I don't feel bad about spending the time and space. At the same time, a common limitation of more serious cryptography texts is that the relevant mathematics is given short shrift. A related common limitation is that the reader is assumed to have already reached a high level of mathematical sophistication. By contrast, here I've attempted to require as little as possibly, while still providing appropriate resources for the cryptography student who wants to see how the underlying mathematics works. Thus, a short introductory course in cryptography could simply proceed straight through the text and stop when time ran out. In some sense this is the most natural use of this material.

A course in computational number theory could focus on the algorithms, and soft-pedal the cryptography and the more theoretical mathematical parts. In the classes I've taught from this material I have not assumed that students are able to or want to do computer work of any sort, but of course the material begs for CPU time! My descriptions of the algorithms are intended to be fairly clear, but I've not written out pseudo-code or specific language implementations of the algorithms. One reason for this is that I want students to think about what the algorithms are doing, at least a little, rather than just to execute them. Another reason for not writing out algorithms in a proprietary language is that I am disinclined to implicitly endorse a language and all it entails. And, while I strongly favor students' learning how to write programs, I don't encourage them to study software packages. Still, friendly-interface software packages do provide an easy entry to computing.

In courses for students who have already seen some probability or number theory the corresponding chapters and sections can be skipped. In structuring the text I have incorporated necessary material into the text itself rather than relegating it to appendices. This allows a knowledgeable reader to skip over material while not requiring that everyone else flip back and forth to appendices. Such integration of the material better shows the logical dependencies, too.

I thank the reviewers of the manuscript for their constructive criticism and for their positive responses to some of my non-standard stylistic choices: Professors Irvin Roy Hentzel, Iowa State University; Yangbo Ye, University of Iowa, Iowa City; Joachim Rosenthal, U. of Notre Dame; Daniel Lieman, U. of Missouri, Columbia; Jonathan Hall, Michigan State University. My students in the last few years deserve thanks for tolerating half-baked versions of this text, making helpful suggestions, and finding many errors, hopefully making the reviewers' job less gruesome than it might have been otherwise.

Paul Garrett
University of Minnesota, Minneapolis
garrett@math.umn.edu
paul.garrett@acm.org
http://www.math.umn.edu/~garrett/

Most helpful customer reviews

0 of 4 people found the following review helpful.
Delivery of Making Breaking codes
By Richard Hong
The Book was in excellent condition.

However, I wish it arrived sooner.

11 of 11 people found the following review helpful.
A good approach
By L.W.H
This is a math book. It tells you cryptography-related abstract algebra, number theory, etc. The good thing is it doesn't assume you have much math background.
On the other hand, it has a lot of errors. Some are just typos, some not. Personally, I think if a math book has a single math error (wrong lemma, incorrect logic, ...), it is not a qualified math book. Unfortunately, this book has more than one.
The reason I still give it four stars is that I like its approach. Without math, cryptography is not cryptography. If you don't have enough math background, this book really helps you get started. There are simply not many choices on the market of this kind. After reading this, you can go to more rigorous, advanced ones, such as Koblitz's series. An alternative (more rigorous, less abstract algebra) is Bauer's. All Koblitz's and Bauer's are excellent.

4 of 4 people found the following review helpful.
Actually 4.6
By rob
I like the book quite a bit because of the actual down-to-earth language Garrett uses. It is very nice since I'm using it on my own time. There some errors in the book, however. He also selects only about 25% of the questions to anwer in the key. He could show about 50% and give an explanation on how to find the answer. Other than that, there is nothing wrong with the book and those problems shouldn't keep you from buying it.

See all 13 customer reviews...

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Kamis, 17 Juli 2014

[R267.Ebook] Free Ebook Growing Pains: Building Sustainably Successful Organizations, by Eric G. Flamholtz, Yvonne Randle

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Growing Pains: Building Sustainably Successful Organizations, by Eric G. Flamholtz, Yvonne Randle

An insightful and practical toolkit for managing organizational growth

Growing Pains is the definitive guide to the life cycle of an organization, and the optimization strategies that make the organization stronger. Whether growth is rapid, slow, or not occurring at all, this book provides a host of solid tools and recommendations for putting everything in order. Now in its fifth edition, this invaluable guide has been fully updated to reflect the current economic climate, and includes new case studies and chapters discussing nonprofit life cycle tools, leadership challenges and the "leadership molecule", and real-world applications of the frameworks presented. The latest empirical research is presented in the context of these ideas, including new data on strategic organizational development. Mini-cases that illustrate growth management issues have been added throughout, with additional coverage of international entrepreneurship and companies that provide a frame of reference for the perspective being developed.

Growing pains are normal, and a valuable indicator of organizational health, but they indicate the need for new systems, processes, and structure to support the organization's size. This book provides a practical framework for managing the process, applicable to organizations of all sizes.

  • Understand the key stages of growth and the challenges of each
  • Measure your organization's growing pains and development
  • Deploy new tools that facilitate positive organizational development
  • Make the necessary transitions required to ensure sustainable success

Some companies, even after brilliant beginnings, lose their way as growth throws them for a loop. Growing Pains identifies the underlying factors that promote long term success, and gives you a framework for successfully managing the transitions of growth.

  • Sales Rank: #177295 in Books
  • Brand: WILEY ACADEMIC
  • Published on: 2015-11-23
  • Original language: English
  • Number of items: 1
  • Dimensions: 9.60" h x 1.25" w x 7.50" l, .0 pounds
  • Binding: Hardcover
  • 400 pages
Features
  • WILEY ACADEMIC

From the Inside Flap

Since the first edition of this book appeared more than thirty years ago, it has become the classic reference for understanding the theory and process of organizational success and failure at different stages of growth.

Fully revised and updated, the fifth edition of Growing Pains offers business leaders, potential entrepreneurs, and investors a definitive guide to the lifecycle of an organization, and the optimization strategies that can make a company stronger and ultimately, sustainable. Whether a company's growth is rapid, slow, or not occurring at all, Eric G. Flamholtz and Yvonne Randle provide a wealth of effective tools and suggestions for an organization to get things right.

This new edition puts the spotlight on all stages of growth, not just the transition stage, from start-up to a well-established company. It includes new ideas, concepts, and comprehensive case studies of the applications of the frameworks and tools presented including the results of those applications in various international organizations. It also contains new empirical research and recent data on strategic organizational development.

Growing Pains outlines three proven frameworks for understanding organizational efficiency and transitions: an organizational effectiveness model, an organizational life-cycle model, and a model to explain the origin and underlying causes of "growing pains." The authors include a detailed explanation of the seven stages of organizational growth, the challenges common to each stage, and a method for determining when a company is in a particular stage. They also reveal the most significant managerial tools for building sustainable successful business enterprises and offer a tool to measure and understand the severity of an organization's growing pains. Designed to be practical, the text includes a "leadership molecule" with advice for CEOs on the vital transitions to be employed throughout the business lifecycle as well as a set of organizational development tools that leaders can put in motion.

Based on feedback from the previous editions, if the ideas and methods described in this book are conscientiously applied, organizations will have a significantly improved likelihood of attaining sustainable success.

From the Back Cover

THE CLASSIC RESOURCE AND PRACTICAL TOOLKIT FOR MANAGING ORGANIZATIONAL GROWTH!

"The overall purpose of this book is to help readers understand what it takes to continue to grow an organization successfully after a new venture or entrepreneurship has been established. Specifically, it provides a lens or framework and related tools to help people understand how to manage organizational growth successfully at different stages from a start-up to a dominant world-class company like a Starbucks." —From the Preface

"It was over twenty years ago that I first read Growing Pains and began using the tools and frameworks in my work as an organizational development professional. In Growing Pains, Drs. Flamholtz and Randle provide a step-by-step roadmap for developing any organization's effectiveness. This book provides practical suggestions to address the evolving leadership challenges of organizational growth and every manager will benefit from having this as their go-to resource to help create a high performance company." —Bryan Lawton, PhD, Chief, Corporate Development, The Doctors Company

"In 50+ years of business experience, we found the most important ingredient to growing shareholder value is the employment of a well-defined management and strategic planning process. After trial and error, the process incorporated in Growing Pains proved our most efficient and effective management system—sending performance in our family business to new heights, year in and year out. Try it, your stakeholders will love it, and it's suitable for any business, regardless of size or shape." —Tim Carter, Retired CEO of Bell-Carter Foods, Inc.

"I have personally applied the concepts in this book to every nonprofit that I have worked with and managed the transition of each to their next level of growth. Hence, I am especially excited about this edition that includes a new chapter entitled 'Building Sustainably Successful Nonprofits'. I am a true believer that when you marry mission to the principles outlined in Growing Pains, it increases the capacity of nonprofits and their people to do better while doing good. As with all organizations, it is critical for nonprofits to perform at their peak and drive toward sustainable success that ultimately benefits society at large—and Flamholtz and Randle's Growing Pains provides the blueprint for doing exactly that." —Helen Han, Past President and CEO, National Association of Women Business Owners, Senior Strategist, LeadersUp

"Eric Flamholtz and Yvonne Randle have been instrumental in assisting us in our transition from an entrepreneurial to a professionally managed financial services firm. The framework which Eric has perfected over many years has allowed us to identify systemic challenges in the organization, develop a structure to address them and measure our progress. When I'm asked who I see to ensure my firm's continued healthy development, I tell them that they have provided a practical guide in Growing Pains and I'm just following it!" —Scott Minerd, Chairman of Investments/Chief Investment Officer, Guggenheim Partners

About the Author

ERIC G. FLAMHOLTZ is president and cofounder of Management Systems Consulting Corporation. He teaches in various Executive Education programs at UCLA's Anderson School of Management, where he is Professor Emeritus. He also teaches Executive Education programs for various universities in China.

YVONNE RANDLE is executive vice president and co-owner of Management Systems Consulting Corporation, where she has been a consultant since 1983. She also lectures at UCLA's Anderson School of Management in various Executive Education programs.

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0 of 0 people found the following review helpful.
Five Stars
By jazzy1
It was a good book.

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Minggu, 06 Juli 2014

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Structuring Venture Capital, Private Equity and Entrepreneurial Transactions, by Jack S. Levin, Donald E. Rocap

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Structuring Venture Capital, Private Equity and Entrepreneurial Transactions, by Jack S. Levin, Donald E. Rocap

Now, you can minimize your clients' tax liability and avoid legal pitfalls, as well as maximize returns on successful transactions and be prepared for all of the potential benefits, with Structuring Venture Capital, Private Equity and Entrepreneurial Transactions, 2015 Edition.

Here at last is one-step-at-a-time, start-to-finish structural guidance for the following common business transactions:

  • Venture capital financing
  • New business start-ups
  • Brains-and-money deals
  • Growth-equity investments
  • Leveraged and management buyouts
  • Industry consolidations
  • Troubled company workouts and reorganizations
  • Going public
  • Selling a business
  • Forming a private equity fund

Jack S. Levin and Donald E. Rocap's dynamic, transaction-by-transaction approach, you'll make the tax, legal, and economic structuring consequences of every deal benefit your client every time. In this extraordinary hands-on resource by the most sought-after authorities in the field, you'll see exactly how to:

  • Distribute the tax burden in your client's favor
  • Maximize returns on successful transactions
  • Control future rights to exit a profitable investment
  • And turn every transaction into a winning venture!

  • Sales Rank: #1010127 in Books
  • Published on: 2015-07-07
  • Original language: English
  • Dimensions: 10.00" h x 7.00" w x 2.50" l, 4.25 pounds
  • Binding: Paperback
  • 1380 pages

From the Publisher
Annual editions

Most helpful customer reviews

25 of 26 people found the following review helpful.
Law Students in VC classes
By A Customer
This book is an excellent primer for law students in VC/entrepreneurial finance classes, and I think is currently the most popular text for those kinds of classes. Even if it's not your required text, I'd recommend it; while the price is high, it's presented very well, and is probably the most concise text I've found on the subject. And attorneys who work in the field have told me that it's an invaluable desk reference. It is geared towards the attorney, so non-lawyers might find it cumbersome. But all in all, if you want to know the law in this area, this book's for you.

26 of 28 people found the following review helpful.
Great work!
By Steve Bagnaschi
I read this book twice (not the appendix though, which is the support for the text), it incorporates tax law and practice, GAAP, and SEC issues with Venture Capital and similar transactions. It explains how to start a fund, how to structure deals, and how to exit the investment as well as familiarize the reader with the VC industry. Very detailed book and easy reading.

15 of 20 people found the following review helpful.
Practical, comprehensive guide for VC
By J.C. Clarke
The beauty of this book is that it is equally suitable for practicing professionals and students of the subject alike. I am impressed by the breadth and quality of presentation of just about every topic you should know if you are even half-serious about the VC space. For this reason alone, I recommend this book.

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Kamis, 03 Juli 2014

[Z790.Ebook] Free Ebook Star Heroes Collector 2006 Star Wars Action Figure Price Guide, by Fantasia Verlag

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This annual guide has come to be regarded as the bible for Star Wars figure collectors when it comes to prices and variants. This huge new addition runs to 480 pages and covers all Star Wars releases from 1978 - 2005 inclusive. it also has a section on the earliest of the Episode 3 figures. There are more than 500 additional products / pictures from last years release, and for the first time pictures of all card-variants. Almost every figure and variant is pictured in full colour and there is more detailed information about special exclusives than ever before. The guide gives prices for both packed and unpacked figures, and these prices are in Euros and US-Dollars. Multi language product descriptions and explanations in German and English. It also includes a complete price guide and refernece section for all Star Trek figures - a MUST HAVE for all figure fans! Volume: 480 Pages.

  • Sales Rank: #15927806 in Books
  • Published on: 2006
  • Binding: Paperback

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[U629.Ebook] Free PDF Gujarati Kitchen: Family Recipes For The Global Palate, by Bhanu Hajratwala

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Gujarati Kitchen: Family Recipes For The Global Palate, by Bhanu Hajratwala

Gujarati food, known for its exquisite taste, is a secret among Indian foods waiting to be discovered. In Gujarati Kitchen: Family Recipes for the Global Palate, Bhanu Hajratwala brings that secret to life by revealing treasured family recipes. After presenting several easy to make spice blends that can be used in multiple recipes, Gujarati Kitchen gives you step by step instructions for exotic starters like Paturi and Kheema Fataka and savoury vegetarian and non-vegetarian entrees like Oondhiyu, Vaddhoo and Tarande Saucende. Also included are all-time favourites such as Thepla and Khichadi, sweets such as Mohan Thaal, and chutneys, pickles, snacks and drinks. Finally, no meal would be complete without the tantalizing Mukhwaas presented at the end.

  • Sales Rank: #1800574 in Books
  • Published on: 2011-12-31
  • Original language: English
  • Dimensions: .0" h x .0" w x .0" l, .65 pounds
  • Binding: Paperback
  • 205 pages

About the Author
Bhanu Hajratwala, a cook par-excellence, is fondly called the Martha Stewart of Gujarati cooking by her friends and family. Bhanu was raised in a traditional Gujarati family in the Fiji Islands where she developed her initial taste for authentic homemade Gujarati dishes. When she moved to the United States after mar- riage, she learned to improvise and maintain authentic flavours despite the limited availability of ingredients. Since then, she has compiled several cookbooks for community organizations, recipes for worship during ceremonies and has also conducted cooking demon- strations and classes throughout the US, New Zealand, Fiji, India and Australia.

Most helpful customer reviews

2 of 2 people found the following review helpful.
Good
By Alpesh
Being a Fiji Born indian, i can relate a number of recipes to my early childhood and even now. They are bring back memories of food I used to have and its helping my shape my own recipes. These recipes are unique to Fiji Gujratis and I applaud the author in writing such a book. And I dont mind advertising your book within our Khatri community in Sydney.

2 of 2 people found the following review helpful.
Love this book!
By MOOOOO
this is a great book to learn how to cook Gujarati food, which isn't always easy. This book helps me understand the basics so I make a number of different things!

2 of 2 people found the following review helpful.
Guirati Kitchen is great
By R F Grocott
Gujarati Kitchen is easy to read, has interesting associated comments and paragraphs. Many of the recipes have components available here.

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