Let $\mathbb Z$ be the ring of integers. The question asks to show that every ideal of $\mathbb Z$ is principal. I beg someone to help me because it is a new concept to me.
Show that every ideal of the ring $\mathbb Z$ is principal
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0There was a question on showing that every subgroup of a cyclic group is cyclic which might help (although largely focused on the finite case): http://math.stackexchange.com/q/6998 β 2012-01-22
7 Answers
Goal: show that $\mathbb{Z}$ is a principal ideal domain (or PID).
Let $I$ be an ideal of $\mathbb Z$. If $I={0}$ then $0$ generates $I$. And we are done.
Suppose $I\neq {0}$, and let $a$ be the smallest positive element in $I$.
Claim: $a$ generates $I$ i.e $(a)=I$.
To prove my claim, clearly $a\subset I$ Since $(a)$= {$ar :r \in \mathbb Z$}, $ar\in I$
Let $b \in I$ if $b=0$ then $b=a0 \in (a)$.
If $b\neq 0$, we may assume $b>0$, and by the euclidean algorithm we have
$$b=aq+r.$$ Moreover, $0\le r, and of course $q,r \in \mathbb Z$.
Now, $r=b-aq \in I$ since $b,a \in I$. this implies $r=0$ since $r and $a$ is the smallest element in $I$.
So, $b=aq \in I$. Thus, $(a)=I$, meaning that $a$ generates $I$.
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0@HassanMuhammad "let $a$ be the smallest element in $I$" without$a$further explanation it is not clear that in $I$,$a$subset of $\mathbb Z$, a smallest element exists. β 2015-12-24
Suppose that $I$ is an ideal in $\mathbb{Z}$. If $I=(0)$, itβs certainly principal, so assume that it contains a non-zero element. Since $I$ is a subgroup of $\mathbb{Z}$, if it contains a non-zero element, it must contain a positive element. Let $m$ be the smallest positive member of $I$. Show that $I=(m)$, the set of multiples of $m$.
HINT: Use the division algorithm and a proof by contradiction.
HINT $\ $ In $\rm\:\mathbb Z\:,\:$ descent via the Division (Euclidean) algorithm has especially simple form, viz.
LEMMA $\ \ $ If a nonempty set of positive integers $\rm\: M\:$ satisfies $\rm\ n > m\ \in\ M \ \Rightarrow\ \: n-m\ \in\ M$
then every element of $\rm\:M\:$ is a multiple of the least element $\rm\:m_{\:1} \in M\:.$
Proof $\ \: $ If not there is a least nonmultiple $\rm\:n\in M\:,$ contra $\rm\:n-m_{\:1} \in M\:$ is a nonmultiple of $\rm\:m_{\:1}.$
REMARK $\ $ Note that the lemma depends only on the fact that $\rm M$ is discrete and closed under subtraction, so it applies much more generally, e.g. to $\:\mathbb Z$-modules $\subset \mathbb Q\:.\ $ The study of these "fractional ideals" essentially go back to Euclid, who studied the application of the Euclidean algorithm to "line segments" to determine their "greatest common measure". This leads quite naturally to the study of the continued fraction expansion of a real number.
$\textbf{Hint-}$Every ideal is an additive subgroup and every subgroup of cyclic group is cyclic. I hope this will help.
Let $I \subset \mathbb{Z}$ be an ideal; we want to show that $I$ is generated by only one element of $I$, that is, it is a principal. If $I=0$, then $I= \langle 0 \rangle$. Let us assume then that $I \ne 0$, so there is a smallest positive number on $I$. We call this number $n$ and claim that $I = \langle n \rangle $. Let us pick $m \in I$ and divide it by $n$ with remainder. The division theorem (a proof of Euclid's the division theorem is found in the link below: http://www.math.fsu.edu/~pkirby/mad2104/SlideShow/s5_1.pdf states that there should be a quotient $q$ and a remainder $r$ such that $m = q n + r$, with $0 \le r < n$. We proof that $r=0$. We have that $r=m - q n \in I$, and since we assumed that $n$ is the smallest positive in $I$, then $r=0$. This means that every number on $I$ is of the form $q n$, and the set $\mathbb{Z}$ is PID.
We need to be careful here. Assume that we have the following ideal: \begin{equation} I_{23} = \langle \{2, 3 \} \rangle = \{ 2 n + 3m : n, m \in \mathbb{Z} \}. \end{equation} That is the ideal consists of all the multiples of $2$ together with the multiples of $3$, and their linear combinations. Then by choosing $n=0$ we get all multiples of $3$, and by choosing $m=0$ we get all multiples of $2$. We could say that $2$ is the smallest positive integer in the ideal $I_{23}$, but then that $3$ being in $I_{23}$ can not be obtained from $2$ with an integer multiplication, so the proof above is wrong. In fact that is not the case. We let you to prove that $I_{23}=\mathbb{Z}$, and that in general $\langle \{ p, q \} \rangle$ is equal to $\langle \{ o \} \rangle$, where $o=\text{gcd}(p,q)$. More generally, for ideals in $\mathbb{Z}$, $\langle \{ p_1, \cdots, p_k \} \rangle = \langle \{ o \} \rangle$ with $o=\text{gcd}(p_1, \cdots, p_k)$.
The same argument used here can be applied to polynomials in one variable $\mathbb{K}[x]$, over the field $\mathbb{K}$. For polynomials in two or more variables the property breaks.
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0Explanation with an example is really helpful. β 2016-03-18
If $I$ is an ideal of $\mathbb{Z}$, then, considering only the addition operator, $(I,+)$ is a subgroup of $(\mathbb{Z},+)$ (ie $I$ is an additive subgroup of $\mathbb{Z}$, when viewed as a group under addition). Since $(\mathbb{Z},+)$ is cyclic, it follows that $(I,+)$ is cyclic (if you aren't convinced that every subgroup of a cyclic group is cyclic, you should sit down and prove it).
Therefore, $(I,+)$ as a group is generated by some $n\in \mathbb{Z}$. So, for every $x\in I$, there exists $m\in \mathbb{Z}$ such that $x=\underbrace{n+n+\cdots+n}_{m\textrm{ times}}$ if $m>0$ or $x=\underbrace{-n-n-\cdots-n}_{\vert m \vert \textrm{ times}}$ if $m<0$ (and of course $x=0$ if $m=0$). Thus, $I=\{nm\,\vert\,m\in \mathbb{Z}\}$, and now you only need show that, as an ideal, $I$ is generated by $n$.