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I am really curious about the Vedanta behind the arithmetic operations on irrational numbers. It still got aggrevated after the productive discussions with my friend. So I decided to ask it here. Basically there is some confusion with some 4 operators.

  1. Let me start with $+$ operator. There is no confusion. Suppose the "$+$" in $\sqrt{3} +\sqrt{2}$ just add the decimal part of the both numbers. Its like adding $ 1+0.73205... + 1 +0.41421... $ . So it makes sense when we add them linearly .
  2. The problem arises with the multiplication. Can some one explain how is $\sqrt{3}*\sqrt{3} = 3$ ?. How can a product of two irrational numbers turns out to be a rational number ? . Its like $1.73205.....*1.73205.....$ , so the multiplication operator just multiplies the decimal part too. It must give rise to the infinite decimal part in the output too. But in converse we are getting a rational number ( specifically an integer ) $3$. How can one make sense out of this contradiction ? .
  3. Similarly coming to Division the same problem arises . But once we have well defined multiplication, division may make some sense because we can always rationalize numerator and denominator. So the problem is just finding the explanation behind the multiplication.
  4. Similarly how about the exponents ? . Raising an irrational number to the power of another irrational number ? . For example take $\sqrt{3}^{\sqrt{2}}$ . How can one raise the irrational number which has infinite precision to another number which has infinite precision ? .

Thank you. Awaiting for your responses.

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    @Mahmud : Yes, but not from Vedic mathematics..but from Vedas, that contain the VIBGYOR, Gravitation, many mathematical topics written many centuries ago.... Anyway thank you for asking..2012-06-03

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$1.732 \times 1.732 = 2.999824$

$1.73205 \times 1.73205 = 2.9999972025$

$1.7320508 \times 1.7320508 = 2.99999997378064$

$...$

The truncation of the decimal expansion of $\sqrt{3}$ to $n$ decimal digits is, in fact, the largest number $x$ with $n$ decimal digits such that $x^2 \le 3$. As you take more and more digits, the square gets closer and closer to $3$. And so the limit of these decimal approximations, which is $\sqrt{3}$, satisfies $\sqrt{3} \times \sqrt{3} = 3$.

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    @DaveL.Renfro *The email field is only visible to yourself and moderators.* See meta: [Spam safe email address](http://meta.math.stackexchange.com/questions/2386/) and [Privacy of user email addresses and other data (who can see them?)](http://meta.math.stackexchange.com/questions/883/). So your email is only visible if you put in the "about me box" (I am not sure to which extend this is advisable). Personally, I've put my website in my profile, so if someone really needs to contact me, he can find my email on my website.2012-06-08
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If it doesn't bother you that ${3\over7}\times{7\over3}=.428571...\times2.333...=1$ the product of two non-terminating decimals giving a whole number, then it shouldn't bother you if the non-terminating decimals happen to be irrational.

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    It's a good exercise to see if you can adapt Robert Israel's discussion to my example.2012-06-04
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I am little baffled that you seem to be totally happy with addition of two irrationals, but not with multiplication.

If you take $a = \sqrt{2} = 1.4142135...$ and $b = 2-\sqrt{2} = 0.5857864...$, then adding them digit by digit is always going to give you something like $0.999...$, and I would have thought that would be as objectionable as the similar sort of infinite decimal when multiplying?

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    But when you add them linearly there is no confusion. The terms may be linearly added. But coming to multiplication the sequence still gets doubled...2012-06-03
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Lets say that you multiply two numbers $a * b$. This product will have the digit representation $c.c_1c_2c_3....$. There are infinitely many digits in this product.

Now, wen you start multiplying lots of numbers at random, $c_1$ could be any of the digits, and so can be $c_2$ and $c_3$ and so on....

It means that sometime, $c_1=0$, and that sometimes you also get $c_2=0$, and that sometimes you also get $c_3=0$, and so on....

Basically, extremely rarely it will happen that all the $c_i$ digits will be zero, and then your product is an integer.

Basically

$1.7320508..... \times 1.7320508.... = 3.0000.....$ so we still get infinitely many digits, we just don't write them since they are 0.

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    Claps , very well said. @N.S2012-06-03
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To get an answer to your question, you first need to understand what a real number is, and what does multiplying two real numbers mean exactly. Every real number can be thought of as an equivalence class of cauchy sequence of ratonal numbers. For example, $\sqrt 3$ can be thought of as the following cauchy sequence of rational numbers

$1, \frac{17}{10}, \frac{173}{100}, \frac{1732}{1000}, \frac{173205}{100000} \ldots$

Similarly, the rational number $3$ can though of the cauchy sequence $3,3,3, \ldots$.Same can be done with any other rational number. Now, two different cauchy sequence can represent the same real number, that's why every real number should be thought as an equivalence class of cauchy sequence of ratonal number, and element cauchy sequence belonging to that equivalence class can be used to represent that real number. For example, the rational number $3$ can also be though as the as the cauchy sequence $\{3+ \frac{1}{n}\}_{n=1}^{\infty}$. In fact any sequence of rational numbers converging to $3$ can be used to represent $3$.Now, it's time for some formal definitions.

A cauchy sequences is a sequence $x_1,x_2,x_3,...$ of rational numbers such that for every rational $\epsilon > 0$, there exists an integer $N$ such that for all natural numbers $m,n > N, |x_m-x_n|<\epsilon$.

Two cauchy sequences $(a_n)$ and $(b_n)$ are equivalent if the cauchy sequence $(a_n-b_n)$ has the limit zero. Check that this relation is indeed an euivalence relation. The set $\mathbb R$ is then the set of equivalance classes of $R$ under this relation.

Now, we can define the binary operation multiplication on $\mathbb R$.Let $(a_n)$ and $(b_n)$ be two cauchy sequences , $(a_n) \times (b_n)$ is the cauchy sequence $(a_n \times b_n)$. Let $a=[(a_n)],b=[(b_n)] \in \mathbb R$, $a \times b = [(a_n \times b_n)]$.Here $[(a_n)]$ denotes the equivalence class containing $(a_n)$. You should check that the operation multiplication nf the equivalence classes is independent of the respresentative we use to denote the equivalence class.

Now we are ready to answer your first question.Let $x=[(1, \frac{17}{10}, \frac{173}{100}, \frac{1732}{1000}, \frac{173205}{100000} \ldots)]$. So $x^2=[(1,\frac{289}{100},\frac{173}{100},\frac{29929}{10000}, \ldots)]$. But $(1,\frac{289}{100},\frac{173}{100},\frac{29929}{10000}, \ldots)$ converges to $3$. So, $3=[(3,3,3,3, \ldots)]=[(1,\frac{289}{100},\frac{173}{100},\frac{29929}{10000}, \ldots)]=x^2$. So, $x=\sqrt 3$.