Talk:Congruence relation/Archive 1

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Archive 1

Modular arithmetic

Latest comment: 18 years ago2 comments2 people in discussion

The prototypical example is modular arithmetic: for n a positive integer, two integers a and b are called congruent modulo n if a − b is divisible by n."

I think that there is no need to a and b to be a integers. Definition works well if a and b are real numbers with feature "a-b is integer" --Čikić Dragan 13:43, 23 February 2006 (UTC)

Things are most interesting when the numbers are integers, see modular arithmetic. If you are a computer guy, see modulo operation for the real number case. Oleg Alexandrov (talk) 23:20, 23 February 2006 (UTC)

LinearAlgebra

Latest comment: 18 years ago3 comments3 people in discussion

I'm not familiar enough with the concept of congruence in complex matricies to go ahead and edit this myself, but could "${\displaystyle {\scriptstyle *}}$ " congruence be called "${\displaystyle {\scriptstyle \dagger }}$ " congrunece for greater clarity. That is, I'm under the impression that ${\displaystyle {\scriptstyle P^{*}=P^{\dagger }}}$ .

Kevmitch 01:52, 1 March 2006 (UTC)

i am not good with wiki's math symbols so can someone plz add the following information

a = b(mod n) implies n|(a − b)

and if n X (a - b) then <<a is not congruent to b (mod n)>>

if a = b(mod n) and m|n then it can be proved that (for integer m)

a = b (mod m)

--164.58.59.64 03:11, 26 March 2006 (UTC)

That's in the article titled modular arithmetic, and applies to one, but not all, of the congruence relations considered here. Michael Hardy 03:45, 26 March 2006 (UTC)

Untitled

Latest comment: 16 years ago1 comment1 person in discussion

I'm not sure if this is correct, so please help me out. Say I have to integers, e, x and n, and e and x are congruent modulo n. Then iss this equation correct for calculating x:

((n(e-1))+1) / e = x

--90.224.122.164 (talk) 16:25, 19 June 2008 (UTC)

Clear this up?

Latest comment: 15 years ago1 comment1 person in discussion

The article states that numbers are congruent mod m if:

(a-b) mod m = 0

or

(a/m) = (b/m)

Are these equivalent? Is it possible for: ((a-b) mod m) to be non-zero while (a mod m) = (b mod m)? —Preceding unsigned comment added by 157.228.91.78 (talk) 20:40, 3 March 2009 (UTC)