Li-ideals of implicative almost distributive lattices

Definition 2.1

⁶ An algebra $(L,\vee ,\wedge ,0)$ of type $(2,2,0)$ is called an almost distributive lattice (ADL) with $0$ if it satisfies the following axioms:

If (L, ∨, ∧, 0) is an ADL, for any $x,y\in L$ , define $x\le y$ if and only if $x=x\wedge y$ or equivalently $x\vee y=y$ , then $\le$ is a partial ordering on L.

Definition 2.2

⁶ Let L be an ADL. An element $m\in L$ is called maximal if for any $x\in L$ , $m\le x$ implies $m=x.$

Definition 2.3

⁶ A non-empty subset I of an ADL L is called an ideal of L, if it satisfies the following:

The following important property of the ideals is very useful to develop the algebra of ideals. If I is an ideal of ADL L and $a,b\in L$ , then $a\wedge b\in I$ if and only if $b\wedge a\in I.$

Definition 2.4

⁶ Let L be an ADL. For any $a\in L$ , principal filter of L generated by a is $\left[a\right)=\{x\vee a:x\in L\}$

Definition 2.5

[6] A non-empty subset F of an ADL L is called a filter of L if it satisfies the following:

Definition 2.6

⁶ A non-empty subset S of an ADL L is called a sub ADL of L if

Theorem 2.7

⁶ Let F is filter of an ADL L and $x,y\in L$ . Then $x\vee y\in F$ if and only if $y\vee x\in F.$

Lemma 2.8

⁶ Every ideal (filter) of L is a sub ADL of ADL L.

Definition 2.9

⁵ An algebra $(L,\to ,\prime ,0,1)$ of type $(2,1,0,0)$ is called implicative algebra if it satisfies the following conditions:

Theorem 2.10

⁵ Let $(L,\to ,\prime ,0,1)$ be an implicative algebra. Then $(L,\vee ,\wedge ,\to ,\prime ,0,1)$ is a lattice implication algebra.

Definition 2.11

¹ Let $(L,\vee ,\wedge ,0,m)$ be an ADL with $0$ and maximal element m. Then an algebra $(L,\vee ,\wedge ,\to ,\prime ,0,m)$ of type $(2,2,2,1,0,0)$ is called implicative almost distributive lattice (IADL) if it satisfies the following conditions:

Now we define the relation $\le$ on an IADL L as follows: $x\le y\iff x\to y=m$ , for all $x,y\in L$ . The relation $\le$ on L is a partial ordering.Thus $(L,\le )$ is a poset.

Theorem 2.12

¹ In an IADL L, for all $x,y,z\in L$ the following conditions hold:

Definition 2.13

² Let L be an IADL.

Lemma 2.14

² Let F be a non-empty subset of an IADL L. Then F is a filter of L if and only if it satisfies for all $x,y\in F$ and $z\in L$ :

$x\le y\to z$ implies $z\in F$

Lemma 2.15

² Every filter F of an IADL L has the following property: $x\le y$ and $x\in F$ implies $y\in F$ .

Definition 2.16

⁷ A lattice implication algebra L is called a lattice H-implication algebra, if for any $x,y,z\in L$ , $x\vee y\vee ((x\wedge y)\to z)=1$ .

Theorem 2.17

⁷ Let L be a lattice H-implication algebra. Then for any $x,y,z\in L$ , $x\to (y\to z)=(x\to y)\to (x\to z).$

Theorem 2.18

¹ Let L be an IADL, then for any $x,y,z\in L$ , $(x\to (y\to z))\to ((x\to y)\to (x\to z))=x\vee y\vee ((x\wedge y)\to z)$ .

Definition 2.19

⁴ Let L be a lattice implication algebra. An LI-ideal A of L is a non-empty subset of L such that

Theorem 2.20

^4,9 Let L be a lattice implication algebra. Every LI-ideal of L is a lattice ideal.

Theorem 2.21

⁴ In lattice H-implication algebra, every lattice ideal is an LI-ideal.

Definition 2.22

⁶ An ADL $(L,\vee ,\wedge )$ is said to be associative if the operation $\vee$ in L is associative.

Definition 2.23

⁶ An equivalence relation θ on an ADL L is called a congruence relation on L if for all $a,b,c,d\in L$ , $(a,b),(c,d)\in \theta$ implies $(a\wedge c,b\wedge d);(a\vee c,b\vee d)\in \theta$ .

Definition 3.1

An implicative almost distributive lattice (IADL) L is called H-implicative almost distributive lattice (H-IADL) if it satisfies:

Example 3.2

Let $L=\{0,x,y,m\}$ be a set. Define the partially ordered relation on L as $\le =\left\{\right(0,x),(0,m),(0,y),(x,m),(y,m),(0,0),(x,x),(y,y),(m,m\left)\right\}$ and also define $x\wedge y=\mathit{min}\{x,y\},x\vee y=\mathit{max}\{x,y\}$ for all $x,y,z\in L$ . Define the unary operation ^′ and binary operation $\to$ as shown in the tables below respectively.

Then clearly $(L,\vee ,\wedge ,\to ,\prime ,0,m)$ is an IADL and hence it can be easily verified that L is an H-IADL.

In the following some properties of H-IADLs are discussed.

Theorem 3.3

Let L be an H-IADL. Then $x\to (y\to z)=(x\to y)\to (x\to z)$ for any $x,y,z\in L$ .

Proof.

Let L be an H-IADL and $x,y,z\in L$ . Now $(x\to (y\to z))\to ((x\to y)\to (x\to z))=((x\to (y\to z))\to ((y^{\prime }\to x^{\prime })\to (z^{\prime }\to x^{\prime }))=(y^{\prime }\to x^{\prime })\to ((y\to (x\to z))\to (x\to z))=(x\to y)\to (y\vee (x\to z))=(x\to (y\to y))\vee ((x\to y)\to (x\to z))=x\vee y\vee \left((x\wedge y)z\right)=m$ (by Definition 3.1 and Theorem 2.12). Therefore $(x\to (y\to z))\le ((x\to y)\to (x\to z)).$ (1).

On the other hand, $((x\to y)\to (x\to z))\to (x\to (y\to z))=y\to ((x\to y)\to (x\to z))\to (x\to z))=y\to ((x\to y)\vee (x\to z))=(y\to (x\to y))\vee (y\to (x\to z))=m\vee (y\to (x\to z))=m$ .

Therefore, $((x\to y)\to (x\to z))\le (x\to (y\to z))\dots .\left(2\right).$ Hence by (1) and (2), we get $x\to (y\to z)=(x\to y)\to (x\to z)$ . □

Corollary 3.4

Let L be an IADL. Then the following are equivalent:

Proof.

Let L be an IADL and $x,y,z\in L.$

$\left(1\right)\Rightarrow \left(2\right).$ Suppose L is an H-IADL. Then using Theorem 3.3, we have $x\to (x\to y)=(x\to x)\to (x\to y)=m\to (x\to y)=x\to y$ .

Definition 3.5

An IADL $(L,\vee ,\wedge ,\to ,\prime ,0,m)$ is said to be associative IADL if $\vee$ in L is assocative

Theorem 3.6

Let L be an associative IADL. Then the following statements are equivalent.

Proof.

Let L be an IADL and $x,y,z\in L$ .

$\left(1\right)\Rightarrow (2$ ). Suppose L is an H-IADL. Let z ∈ [x, m]. Then we have $x\le z$ . From Theorem 2.12, we have $z\to (x\to y)\le x\to (x\to y).$ This implies again $x\to y\le z\to (x\to y)\le x\to (x\to y)=x\to y$ (by Theorem 2.12 and Corollary 3.4), i.e., $z\to (x\to y)=x\to y$ . Therefore (2) holds.

$\left(2\right)\Rightarrow \left(1\right).$ Putting z = x, we have x → (x → y) = x → y. Then it follows from Corollary 3.4 that L is an H-IADL.

$\left(3\right)\to \left(1\right).$ Suppose $(x\to y)\to x=x.\mathit{Now}(x\to (x\to y))\to (x\to y)=(((x\to y)\to x)\to x)=x\to x=m$ . It follows that $x\to (x\to y)\le x\to y$ but we know from Theorem 2.12 that $x\to y\le x\to (x\to y)$ . Therefore $x\to y=x\to (x\to y),$ it follows from Corollary 3.4 that L is an H-IADL.

$\left(1\right)\Rightarrow \left(3\right).$ Suppose L is an H-IADL. Using Corollary 3.4 and Theorem 2.12, we have ((x → y) → x) → x = (x → (x → y)) → (x → y) = (x → y) → (x → y) = m. Therefore $(x\to y)\to x\le x$ and clearly $x\to ((x\to y)\to x)=m$ . This implies $x\to (x\to y)\le x.$ Hence $(x\to y)\to x=x$ .

$\left(3\right)\Rightarrow \left(4\right).$ Suppose $(x\to y)\to x=x$ . Now $x^{\prime }=(x^{\prime }\to 0)\to x^{\prime }=x\to x^{\prime }$ (by supposition), it follows $x\vee x^{\prime }=(x\to x^{\prime })\to x^{\prime }=x^{\prime }\to x^{\prime }=m$ . That is (4) holds.

$\left(4\right)\Rightarrow \left(3\right).$ Suppose $x\vee x^{\prime }=m$ . Then ${(x\vee x^{\prime })}^{\prime }=x^{\prime }\wedge x=m^{\prime }=0$ . Therefore L is complemented IADL. Hence $\vee$ is associative. Now using Theorem 2.12 and our assumption we get $(x\to y)\to (x^{\prime }\vee y)=((x\to y)\to x^{\prime })\vee ((x\to y)\to y)=y^{\prime }\vee x^{\prime }\vee x\vee y=m\text{and}(x^{\prime }\vee y)\to (x\to y)=(((x\to 0)\to y)\to y)\to (x\to y)=x\to ((((x\to 0)\to y)\to y)\to y)=x\to ((x\to 0)\to y)=x\to ((y\to 0)\to x)=y^{\prime }\to (x\to x)=y^{\prime }\to m=m$ (by Theorem 3.3). Hence $x\to y=x^{\prime }\vee y.$ It follows that $(x\to y)\to x=(x^{\prime }\vee y)\to x={(x^{\prime }\vee y)}^{\prime }\vee x=(x\wedge y^{\prime })\vee x=((x\wedge y^{\prime })\to x)\to x=[(x\to x)\vee (y^{\prime }\to x)]\to x=m\to x=x$ , that is (3) holds. □

Corollary 3.7

Let L be an H-IADL. Then for any $x,y\in L,y\vee {(x\to y)}^{\prime }=x\vee y.$

Proof.

Let L be an H-IADL and $x,y\in L$ . Now $(y\vee {(x\to y)}^{\prime })\to (x\vee y)=(y\vee {(x\to y)}^{\prime })\to [(x\to y)\to y]=(x\to y)\to [(y\vee {(x\to y)}^{\prime })\to y)]=(x\to y)\to [(y\to y)\wedge ({(x\to y)}^{\prime }\to y)]=(x\to y)\to [{(x\to y)}^{\prime }\to y]=y^{\prime }\to [(x\to y)\to (x\to y)]=m$ . This implies $y\vee {(x\to y)}^{\prime }\to (x\vee y)=m$ . Therefore, $y\vee {(x\to y)}^{\prime }\le x\vee y$ …(1). Conversely $(x\vee y)\to [y\vee {(x\to y)}^{\prime }]=((x\vee y)\to y)\vee [(x\vee y)\to {(x\to y)}^{\prime }]=(x\to y)\vee [(x\to y)\to (x^{\prime }\wedge y^{\prime })]=(x\to y)\vee [((x\to y)\to x^{\prime })\wedge ((x\to y)\to y^{\prime })]=[(x\to y)\vee ((x\to y)\to x^{\prime }]\wedge [(x\to y)\vee ((x\to y)\to y^{\prime })]=[(x\to y)\to ((x\to y)\to x^{\prime })\to ((x\to y)\to x^{\prime })]\wedge [(x\to y)\to ((x\to y)\to y^{\prime })\to ((x\to y)\to y^{\prime })]=[(x\to y)\to x^{\prime })\to ((x\to y)\to x^{\prime })]\wedge [((x\to y)\to y^{\prime })\to ((x\to y)\to y^{\prime })]=m\wedge m=m$ . This implies $x\vee y\le y\vee {(x\to y)}^{\prime }$ .... (2). Hence by (1) and (2), we have $y\vee {(x\to y)}^{\prime }=x\vee y$ . □

Definition 3.8

Let L be an IADL. An LI-ideal A of L is a subset of L such that

(I₁) $0\in A$ and

(I₂) $y\in A$ $\mathit{\text{and}}{(x\to y)}^{\prime }\in A$ implies that $x\in A$ .

In this case if $A\ne L$ ,then A is proper LI-ideal of L. A proper LI-ideal A of L is said to be maximal if it is not properly contained in any other proper LI-ideal of L. That is, if I is any other LI-ideal of L such that $A\subseteq I\subseteq L$ implies either $A=I$ or $I=L$ , then A is maximal LI-ideal of L.

Remark 3.9

From the above definition we observe that {0} and L are trivial examples of LI-ideals.

Example 3.10

Let $L=\{0,x,y,z,w,m\}$ be the underlining set with partial ordering $\le =\left\{\right(0,w),(0,x),(0,m),(0,z),(0,y),(w,x),(w,m),(w,y),(z,y),(z,m),(y,m),(0,0),(w,w),(x,x),(z,z)(y,y),(m,m\left)\right\}$ . Define the unary operation ′ and binary operation $\to$ as shown in the tables below respectively.

Define the binary operation $\vee$ and $\wedge$ by $x\vee y=(x\to y)\to y$ $\wedge y={[(x\to y)\to x^{\prime }]}^{\prime }$ for all $x,y\in L$ . Then clearly $(L,\vee ,\wedge ,\to ,\prime ,0,m)$ is an IADL. We can easily verify that $A=\{0,z\}$ is an LI-ideal of L.

Theorem 3.11

Let A be an LI-ideal of IADL L. If $x\in A$ and $y\le x$ for some $\in L$ , then $y\in A$ .

Proof.

Let A be an LI-ideal of IADL L. Suppose $x\in A$ and $y\le x$ for some $y\in L.$

Claim: $y\in A$ for some $y\in L$ . Since $y\le x$ implies ${(y\to x)}^{\prime }=m^{\prime }=0\in A$ then by definition of LI-ideal (I₂) we have $y\in A$ . □

Theorem 3.12

Let A be a non-empty subset of IADL L. Then A is an LI-ideal of L if and only if it satisfies for all $x,y\in A$ and $z\in L,{(z\to x)}^{\prime }\le y$ implies $z\in A$ .

Proof.

Suppose that A is an LI-ideal and $x,y\in A,z\in L$ . If ${(z\to x)}^{\prime }\le y$ , then ${(z\to x)}^{\prime }\in A$ by Theorem 3.11. Using definition 3.8 (I₂) we obtain $z\in A$ . Conversely, suppose that for all $x,y\in A$ and $z\in L,{(z\to x)}^{\prime }\le y$ implies $z\in A$ . Since A is a non empty subset of L, we assume $x\in A$ . Because ${(0\to x)}^{\prime }\le x$ , we have $0\in A$ , and so I₁ holds for A. Let ${(x\to y)}^{\prime }\in A$ and $y\in A$ . Since ${(x\to y)}^{\prime }\le (x\to y)$ ′, we have $x\in A,$ and so (I₂) holds for A. Hence, A is an LI-ideal of L. □

Theorem 3.13

Let L be an IADL. Every LI-ideal of L is an ADL ideal of L.

Proof.

Let A be an LI-ideal of IADL L.

Remark 3.14

The converse of Theorem 3.13 is not true. Consider Example 3.10. The set A = {0, w} is an ADL ideal. But it is not an LI-ideal since ${(x\to w)}^{\prime }=w\in A$ and $\notin A$ . □

Theorem 3.15

In H-IADL L, every ADL ideal is an LI-ideal.

Proof.

Let $x,y\in L$ and A be an ADL ideal of H-IADL L. Assume that $y\in A$ and ${(x\to y)}^{\prime }\in A$ . We want to show that $x\in A$ . Clearly $0\in A$ . From Corollary 3.7, we have $x\vee y=y\vee (x\to y)$ ^′. Then it follows from Definition 2.3 (ii) that $x\vee y=y\vee {(x\to y)}^{\prime }\in A$ . Since $x=(x\vee y)\wedge x\in A$ , then we have $x\in A$ . Hence A is an LI-ideal of L. □

Lemma 3.16

Let A be a non empty subset of H-IADL L. Then A is an LI-ideal of L if and only if for every $x,y\in L,x,y\in A$ if and only if $x\vee y\in A$ .

Proof.

Suppose A is an LI-ideal of H-IADL L. Let $x,y\in A$ . Since $((x\vee y)\to y)\prime ={((x\to y)\wedge (y\to y))}^{\prime }=0\in A$ and A is an LI-ideal, then we have $x\vee y\in A$ . Also ${(x\to (x\vee y))}^{\prime }=m^{\prime }=0\in A$ implies $x\in A$ as A is an LI-ideal. Conversely suppose $x,y\in A$ if and only if $x\vee y\in A$ and ${(x\to y)}^{\prime }\in A$ trivially $x\in A$ . Hence, A is an LI-ideal.

For any A and B of IADL L we set A ∧ B = {a ∧ b|a ∈ A and b ∈ B}.

Theorem 3.17

If A and B are LI-ideals of an H-IADL of L, then so is $A\wedge B$ .

Proof.

Let A and B be two LI-ideals of H-IADL L. Let $x,y\in A\wedge B$ . Then x = a₁ ∧ b₁ for a₁ ∈ A and b₁ ∈ B and y = a₂ ∧ b₂ for a₂ ∈ A and b₂ ∈ B. Now x ∨ y = (a₁ ∧ b₁) ∨ (a₂ ∧ b₂) = ((a₁ ∧ b₁) ∨ a₂) ∧ ((a₁ ∧ b₁) ∨ b₂) ∈ A ∧ B as ((a₁ ∧ b₁) ∨ a₂ ∈ A $\text{and}((a1\wedge b1)\vee b2)\in B.\text{Thus},x\vee y\in A\wedge B.\text{Conversely assume}x\vee y\in A\wedge B\text{for}\mathrm{all}x,y\in L$ . Then $x\vee y=a\wedge b$ for some $a\in A$ and $b\in B$ . We observe that $x=x\wedge (x\vee y)=x\wedge (a\wedge b)\le a\in A$ implies $x\in A$ . Similarly one can show that $x\in B$ and that $y\in A$ and $y\in B$ . Thus $x,y\in A\wedge B.$ Hence, $A\wedge B$ is an LI-ideal of L. □

Theorem 3.18

If A and B are LI-ideals of an H-IADL L, then $A\wedge B=A\cap B$ .

Proof.

Let $x\in A\wedge B$ . Then $x=a\wedge b$ for some $a\in A$ and $b\in B$ . Since $x=b\wedge a\le a\in A$ implies $a\wedge b\in A$ (as A is an ADL ideal by Theorem 3.15 and properties of ideal in ADL) and $x=a\wedge b\le b\in B$ , then from Theorem 3.11, $x\in A$ and also $x\in B$ and hence $x\in A\cap B$ . Therefore, $A\wedge B\subseteq A\cap B$ . Conversely suppose $x\in A\cap B$ then $x=x\wedge x\in A\wedge B$ . Therefore, $A\cap B\subseteq A\wedge B$ . Hence, $A\wedge B=A\cap B$ . □

Theorem 3.19

If A is an LI-ideal of an H-IADL L and $a\in L$ , then the set $K=\{x\in L|x^{\prime }\to a\in A\}$ is an LI-idel of L.

Proof

Let $x,y\in K$ . Then $x^{\prime }\to a\in A$ and $y^{\prime }\to a\in A$ . Using Theorem 2.13 that ${(x\vee y)}^{\prime }\to a=(x^{\prime }\wedge y^{\prime })\to a=(x^{\prime }\to a)\vee (y^{\prime }\to a)\in A$ (by Theorem 3.24) so that $x\vee y\in K$ . Conversely let $x,y\in L$ be such that $x\vee y\in K$ . Then ${(x\vee y)}^{\prime }\to a\in A$ . Using Theorem 2.12 and Theorem 3.3, we $\text{have}{(x\vee y)}^{\prime }\to a=a^{\prime }\to (x\vee y))=a^{\prime }\to ((x\to y)\to y)=(a^{\prime }\to (x\to y))\to (a^{\prime }\to y)=$ $(a^{\prime }\to x)\to (a^{\prime }\to y)\to (a^{\prime }\to y)=(a^{\prime }\to x)\vee (a^{\prime }\to y)=(x^{\prime }\to a)\vee (y^{\prime }\to a).$ Thus $(x^{\prime }\to a)\vee (y^{\prime }\to a)\in A$ which implies that $x^{\prime }\to a\in A$ and $y^{\prime }\to a\in A$ because A is an LI-ideal of H-IADL and Lemma 3.16. This implies that $x\in K$ and $y\in K$ . Hence by Theorem 2.13, K is an LI-ideal of L.

Proposition 3.20

Let L be an H-IADL and $a\in L$ .Then there is no proper LI-ideal of L containing $a$ and $a^{\prime }$ simultaneously.

Proof.

Let A be a proper LI-ideal of H-IADL L containing a and a′ simultaneously. Then $m=a\vee a^{\prime }\in A$ , and hence $A=L$ a contradiction. Therefore, A is not a proper LI-ideal of H-IADL L containing a and a′ simultaneously. □

Theorem 3.21

Let A be a non empty subset of IADL L. Then A is a filter of L if and only if A′ is an LI-ideal of L.

Proof.

Assume that A is a filter of IADL L. Then $m\in A$ , and so $m^{\prime }=0\in A^{\prime }.$ Let ${(x\to y)}^{\prime }\in A$ ′ and $y\in A$ ′ for all $x,y\in L$ . Then ${(x\to y)}^{\prime }=u^{\prime }$ and $y=v$ ′ for some $u,v\in A$ . Thus $v\to x^{\prime }=x\to v^{\prime }=x\to y={\left({(x\to y)}^{\prime }\right)}^{\prime }={\left(u^{\prime }\right)}^{\prime }=u\in A$ . Since A is a filter, we have $x^{\prime }\in A$ and so $x={\left(x^{\prime }\right)}^{\prime }\in A^{\prime }$ . This proves that A′ is an LI-ideal of L. Conversely let $x,y\in L$ be such that $x\in A$ and $x\to y\in A$ . We want to show $y\in A$ . Suppose that A′ is an LI-ideal of L. Then $x^{\prime }\in A^{\prime }$ and ${(y^{\prime }\to x^{\prime })}^{\prime }={(x\to y)}^{\prime }\in A$ ′. As A′ is an LI-ideal, it follows from Definition 3.8 (I₂) that $y^{\prime }\in A^{\prime }$ or $y\in A$ . Also $0^{\prime }=m\in A$ . Hence, A is a filter of L. □

Theorem 3.22

Suppose { $B$ _i $:i\in J\}$ for index set J is a non-empty family of LI-ideal of IADL L. Then $\mathit{A}=\cap i$ _∈J $B$ _i is also an LI-ideal of L, for any $i\in J$ of index set J.

Proof.

Let $A=\{B$ _i $:B$ _i $\text{is an}\mathit{LI}-\text{ideal of}L\}.$

We need to show A = ∩_i∈J B_i is also an LI-ideal of L.