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Article

Some Cardinal and Geometric Properties of the Space of Permutation Degree

by
Ljubiša D. R. Kočinac
1,*,
Farkhod G. Mukhamadiev
2 and
Anvar K. Sadullaev
3
1
Faculty of Sciences and Mathematics, University of Niš, 18000 Niš, Serbia
2
Department of Mathematics, National University of Uzbekistan named after Mirzo Ulugbek, Str. University 4, Tashkent 100174, Uzbekistan
3
Yeoju Technical Institute in Tashkent, Str. Usman Nasyr 156, Tashkent 100121, Uzbekistan
*
Author to whom correspondence should be addressed.
Axioms 2022, 11(6), 290; https://doi.org/10.3390/axioms11060290
Submission received: 13 May 2022 / Revised: 9 June 2022 / Accepted: 13 June 2022 / Published: 14 June 2022
(This article belongs to the Special Issue Advances in General Topology and Its Application)

Abstract

:
This paper is devoted to the investigation of cardinal invariants such as the hereditary density, hereditary weak density, and hereditary Lindelöf number. The relation between the spread and the extent of the space SP 2 ( R , τ ( A ) ) of permutation degree of the Hattori space is discussed. In particular, it is shown that the space SP 2 ( R , τ S ) contains a closed discrete subset of cardinality c . Moreover, it is shown that the functor SP G n preserves the homotopy and the retraction of topological spaces. In addition, we prove that if the spaces X and Y are homotopically equivalent, then the spaces SP G n X and SP G n Y are also homotopically equivalent. As a result, it has been proved that the functor SP G n is a covariant homotopy functor.

1. Introduction

The cardinal invariants are considered as topological invariants with values in the class of all cardinal numbers, and are used to describe various topological properties of spaces. For example, the weight, π -weight, network weight, density, character, Lindelöf number, tightness, and cellularity of a topological space X are some classical cardinal invariants. Many researches have been devoted to the investigation of cardinal invariants and hereditary cardinal invariants (see, for example, [1,2,3,4,5,6]) and their important role in topology. Recall that a function φ : Top Card from the class Top of topological spaces to the set Card of infinite cardinals such that φ ( X ) = φ ( Y ) whenever X and Y are homeomorphic, is called a cardinal function (or cardinal invariant). The hereditary version of a cardinal function φ , denoted h φ , is defined as h φ ( X ) = sup { φ ( Y ) : Y X } [1,4,5,6].
In recent research, the interest in the theory of cardinal invariants and their behavior under the influence of various covariant functors is increasing (see, for example, [7,8,9]). In [10], the authors investigated several cardinal invariants under the influence of some seminormal and normal functors. In the investigations in [11,12], the concept of symmetric product of a topological space is introduced. In particular, in [13] the functor SP G n is studied, and some cardinal and topological properties of this functor were investigated. In [14], some propositions about homotopy properties of the topological spaces were proved. For instance, it was proved that, contractibility, connectedness, and pathwise connectedness are homotopy properties of the spaces. In our work, we prove that if the mappings f , g : X Y are homotopic, then the mappings SP G n f , SP G n g : SP G n X SP G n Y are also homotopic.
The current paper is devoted to the investigation of hereditary cardinal invariants (such as the hereditary density, the hereditary weak density, and the hereditary Lindelöf number) in the space of permutation degree. Additionally, the relation between the spread and the extent of the space SP 2 ( R , τ ( A ) ) of the permutation degree of Hattori space ( R , τ ( A ) ) is studied. Moreover, it is shown that the functor SP G n preserves the homotopy and the retraction of topological spaces. As a consequence, it has been proved that the functor SP G n is a covariant homotopy functor. Our research complements and extends existing results in the fields of cardinal invariants and the theory of covariant functors.
The paper is organized as follows. In Section 2, we recall basic notions and notation that will be used in the rest of the study. In Section 3, we study hereditary cardinal invariants and obtain some results for the space SP 2 ( R , τ ( A ) ) of permutation degree of the Hattori space ( R , τ ( A ) ) . Finally, in Section 4, we study some geometric properties of the space SP G n X of permutation degree of a space X.
Throughout the paper, all spaces are assumed to be completely regular; τ denotes an infinite cardinal number; and by ω and c we denote the countable cardinal number and the cardinality of continuum, respectively. The real line with the Sorgenfrey topology [4] is denoted by ( R , τ S ) ; and for A R by ( R , τ ( A ) ) we denote the Hattori space over A. Recall that in [15], the following generalization of the Sorgengfey line was defined: if A R , then τ ( A ) denotes the topology on R , in which each point a A has the usual Euclidean neighborhoods, and basic neighborhoods of a point x R \ A are of the form [ x , ε ) , ε > 0 . Notice that for A R , the topology τ ( A ) is finer than the usual Euclidean topology on R and weaker than the Sorgenfrey topology τ S [16].

2. Preliminaries

For convenience of the reader, we give some notation, concepts, and statements that are widely used in this article. For a space X, the group of all permutations of X is denoted by S ( X ) and called the permutation group of X. If X = { 1 , 2 , n } , then we write S n instead of S ( X ) .
Let X be a space. The permutation group S n acts on the n-th power X n of X as the permutation of coordinates: the points ( x 1 , x 2 , , x n ) , ( y 1 , y 2 , , y n ) X n are equivalent if there exists a permutation σ S n for which y i = x σ ( i ) . This equivalence relation is called the symmetric equivalence relation [17], and the set of all orbits of the action of S n on X n with the quotient topology is denoted by SP n X and called the space of n-permutation degree of X [17].
The following generalization of the permutation degree will be also used in what follows. If G be a subgroup of the group S n , then G also acts on X n as the group of permutations of coordinates, and generates an equivalence relation called the G-symmetric equivalence relation [17]. The quotient space of X n under this relation is called G-permutation degree of X and is denoted by SP G n X , and the quotient mapping from X n to SP G n X is denoted by β n , G s . Observe that SP G n is a covariant functor in the category of compact spaces and is called the functor of G-permutation degree [17]. Clearly, if G = S n , then SP G n = SP n , and if G contains only the identity element, SP G n X = X n [17].
In [12], it is proved that the quotient mapping β n , G s : X n SP G n X is continuous, open, and closed surjection.
For every mapping f : X Y , the mapping SP G n f : SP G n X SP G n Y is defined [17] by the formula
SP G n f [ ( x 1 , x 2 , , x n ) ] G = [ ( f ( x 1 ) , f ( x 2 ) , , f ( x n ) ) ] G .
A set A X is dense in X if A ¯ = X . The density of X, denoted by d ( X ) , is defined as d ( X ) = min { | A | : A   i s   d e n s e   i n   X } [4]. A collection B of nonempty open sets in X is said to be a π-base of X if for every nonempty open set G X there is a B B with B G . The π-weight of a space X is defined as π w ( X ) = min { | B | : B is a π -base of X } [1,4,6]. The weak density of a space X, denoted by w d ( X ) , is the smallest cardinal number τ ω such that there is a π -base B = { B α : α < τ } in X, and for each α < τ , B α is a centered system of open sets in X [7,9,10].
For definitions of the following cardinal functions, see [1,4,5,6].
The extent of a space X, denoted by e ( X ) , is defined as e ( X ) = sup { | Y | : Y is a closed discrete subspace in X } . The Souslin number or cellularity of the space X, denoted by c ( X ) , is the smallest cardinal number τ ω such that every family or pairwise, disjoint, non-empty open subset of X has cardinality τ . The Lindelöf number  l ( X ) of X is the smallest cardinal number τ such that each open cover of X has a subcover of cardinality τ .
A continuous mapping f : [ 0 , 1 ] X is called a path in X. f ( 0 ) is called the initial point, and f ( 1 ) the final point of this path. If x X , then the constant path e x : I X is defined by e x ( t ) = x for all t I . A space X is path connected if for any two points x 0 , x 1 X there is a path from x 0 to x 1 [18].
Continuous mappings f , g : X Y are homotopic, denoted by f g , if there is a continuous mapping F : X × I Y such that F ( x , 0 ) = f ( x ) and F ( x , 1 ) = g ( x ) . F is called a homotopy between f and g [18].
Example 1.
Consider the mappings f ( x ) = ( cos ( π x ) , sin ( π x ) ) and g ( x ) = ( cos ( π x ) , sin ( π x ) ) . These mappings are homotopic. We can define the homotopy F : I × I R 2 between f and g as follows: F ( x , t ) = ( cos ( π x ) , ( 1 2 t ) sin ( π x ) ) . Indeed, F is continuous and F ( x , 0 ) = ( cos ( π x ) , sin ( π x ) ) = f ( x ) , F ( x , 1 ) = ( cos ( π x ) , sin ( π x ) ) = g ( x ) (see [18]).
A continuous mapping f : X Y is said to be a homotopy equivalence [18] if there exists a continuous mapping g : Y X such that the compositions g f and f g are homotopic to the identity mappings on X and Y, respectively. Two topological spaces X and Y are said to be homotopically equivalent (notation X Y ) if there exists a homotopy equivalence f : X Y [18].
By a covariant homotopy functor [17], we mean an operator ϕ which assigns to each topological space X a space ϕ ( X ) , and to each continuous mapping f : X Y , a mapping ϕ ( f ) : ϕ ( X ) ϕ ( Y ) satisfying the following three conditions:
(i) ϕ preserves the identity mapping; that is, if f is the identity mapping of X, then ϕ ( f ) is the identity mapping of ϕ ( X ) .
(ii) ϕ preserves compositions; that is, if f : X Y and g : Y Z are continuous mappings, then
ϕ ( g f ) = ϕ ( g ) ϕ ( f ) .
(iii) ϕ preserves homotopy; that is, if a mapping F ( x , t ) is a homotopy between the continuous mappings f , g : X Y , then ϕ ( F ( x , t ) ) is a homotopy between the mappings ϕ ( f ) , ϕ ( g ) : ϕ ( X ) ϕ ( Y ) .
A space X which is homotopy equivalent to a point is called contractible. A subset A of a space X is a retract of X if there exists a continuous mapping r : X A , called a retraction, such that r | A = 1 A [18].
A property P of topological spaces is called a homotopy property if it is preserved by all homotopy equivalences. More precisely, P is a homotopy property if and only if for an arbitrary homotopy equivalence f : X Y , if X has P, then Y also has P [18].

3. Some Cardinal Properties of the Space of Permutation Degree

In this section, we study some (hereditary) cardinal invariants (the spread, extent, density, weak density, π -weight) of the space SP 2 ( R , τ ( A ) ) of permutation degree of the Hattori space ( R , τ ( A ) ) . Let us observe that the space SP 2 ( R , τ ( A ) ) has a Sorgenfrey-type topology.
We begin with the following two lemmas.
Lemma 1.
The space SP 2 ( R , τ S ) contains a closed discrete subset of cardinality c .
Proof. 
Note that the subset Y = { ( x , y ) ( R , τ S ) 2 : x y } of ( R , τ S ) 2 is homeomorphic to the space SP 2 ( R , τ S ) , and the set Z = { ( x , y ) Y : y = x , x > 0 } is closed and discrete in Y and has cardinality c . □
Lemma 2.
Let Y be a subset of a Hausdorff topological space X and Z = { F SP 2 X : F Y } SP 2 X . Then:
(i) The space SP 2 Y is homeomorphic to the subspace Z of the space SP 2 X ;
(ii) The set Z is open in SP 2 X whenever Y is open in X;
(iii) The set Z is closed in SP 2 X whenever Y is closed in X;
(iv) The set Z is clopen in SP 2 X whenever Y is clopen in X.
Proof. 
(i) It is known [17] and easy to check that the space exp 2 Y is homeomorphic to the subspace Z of the space exp 2 X . In [17], it is shown that the space SP 2 Y is homeomorphic to the space exp 2 Y . Hence, we have that the space SP 2 Y is homeomorphic to Z SP 2 X .
(ii), (iii), and (iv) follow from the fact that the set Z is open (closed, clopen) in exp 2 X whenever Y is open (closed, clopen) in X [17] and the mentioned result that SP 2 X is homeomorphic to exp 2 X . □
From Lemmas 1 and 2 we have:
Proposition 1.
Let A be a subset of R and B R \ A . If B is a (closed) subset of ( R , τ ( A ) ) which is homeomorphic to the space ( R , τ S ) , then the space SP 2 ( R , τ ( A ) ) contains a (closed) discrete subset of cardinality c .
Proof. 
In [16], it was shown that if A R and B R \ A , then τ ( A ) | B = τ S | B . Recall that the set ( R , τ ( A ) ) is a closed subset of SP 2 ( R , τ ( A ) ) . Hence, each (closed) discrete subset M of ( R , τ ( A ) ) with cardinality c (which exists by Lemma 1) is a (closed) discrete subset of SP 2 ( R , τ ( A ) ) with cardinality c . □
Proposition 2.
Let A be a subset of R , and Y be a subspace of ( R , τ ( A ) ) . Then, | τ ( A ) Y | c . In addition, | SP 2 Y | c .
Proof. 
It is enough to show that | τ ( A ) | c . Let B be a base for ( R , τ ( A ) ) of cardinality c . Since the space ( R , τ ( A ) ) is hereditary Lindelöf, each open subset of ( R , τ ( A ) ) is an union of countably many elements of B . Hence, | τ ( A ) | c ω = ( 2 ω ) ω = 2 ω = c . □
Corollary 1.
Let A be a subset of R and B R \ A . If B is a closed subset of ( R , τ ( A ) ) which is homeomorphic to the space ( R , τ S ) , then s ( SP 2 ( R , τ ( A ) ) ) = e ( SP 2 ( R , τ ( A ) ) ) = c .
Proof. 
By Proposition 1 we have e ( SP 2 ( R , τ ( A ) ) ) c . Note that
e ( SP 2 ( R , τ ( A ) ) ) s ( SP 2 ( R , τ ( A ) ) ) | ( SP 2 ( R , τ ( A ) ) ) | .
It follows from Proposition 2 that
| ( SP 2 ( R , τ ( A ) ) ) | | e x p ( R , τ ( A ) ) | c .
Thus, we get
s ( SP 2 ( R , τ ( A ) ) ) = e ( SP 2 ( R , τ ( A ) ) ) = c .
Corollary 2.
Let A be a subset of R and B R \ A . If B is a subset of ( R , τ ( A ) ) which is homeomorphic to the space ( R , τ S ) , then s ( SP 2 ( R , τ ( A ) ) ) = c .
Proof. 
By Proposition 1 we have s ( SP 2 ( R , τ ( A ) ) ) c . Note that s ( SP 2 ( R , τ ( A ) ) ) | ( SP 2 ( R , τ ( A ) ) ) | . It follows from Proposition 2 that | ( SP 2 ( R , τ ( A ) ) ) | c . Thus, we get s ( SP 2 ( R , τ ( A ) ) ) = c . □
Corollary 3.
Let A be a subset of R and φ { d , e , c } (resp. φ { w d , l , π w } ). If B is a subset of ( R , τ ( A ) ) which is homeomorphic to the space ( R , τ S ) , then h φ ( SP 2 ( R , τ ( A ) ) ) = c (viz., h φ ( SP 2 ( R , τ ( A ) ) ) c ).
Proof. 
In fact, note that h e = s and h c = s . Since h c ( SP 2 ( R , τ ( A ) ) ) c (by Proposition 1), we have the equalities. The inequalities also trivially follow from Proposition 1. □
Remark 1.
Let A R . Note that the family B = { ( r 1 , r 2 ) : r 1 , r 2 Q , r 1 < r 2 } is a π-base for the space ( R , τ ( A ) ) and B n = { i = 1 n B i : B i B } is also a π-base for the space ( R , τ ( A ) ) n . Hence, π w ( R , τ ( A ) ) n = c ( R , τ ( A ) ) n = ω . Similarly, the family SP n B n = { SP n B i = β n s ( B i ) : B i B n } is a π-base for the space SP n ( R , τ ( A ) ) . This shows that π w ( SP n ( R , τ ( A ) ) ) = c ( SP n ( R , τ ( A ) ) ) = ω .

4. Some Geometric Properties of the Space of Permutation Degree

Now we study some geometric properties of the space SP G n X of permutation degree. In particular, we show the functor SP G n preserves the homotopy and the retraction of topological spaces. In fact, we prove that if spaces X and Y are homotopically equivalent, then the spaces SP G n X and SP G n Y are also homotopically equivalent, and conclude that the functor SP G n is a covariant homotopy functor.
Theorem 1.
If the mappings f , g : X Y are homotopic, then the mappings SP G n f , SP G n g : SP G n X SP G n Y are also homotopic.
Proof. 
Assume that the mappings f , g : X Y are homotopic. Then there exists a continuous mapping F : X × I Y such that F ( x , 0 ) = f ( x ) and F ( x , 1 ) = g ( x ) . On the other hand, we have
SP G n f [ ( x 1 , x 2 , , x n ) ] G = [ ( f ( x 1 ) , f ( x 2 ) , , f ( x n ) ) ] G , SP G n g [ ( x 1 , x 2 , , x n ) ] G = [ ( g ( x 1 ) , g ( x 2 ) , , g ( x n ) ) ] G .
Now we define the mapping
SP G n F ( [ ( x 1 , x 2 , , x n ) ] G , t ) = [ ( F ( x 1 , t ) , F ( x 2 , t ) , , F ( x n , t ) ) ] G .
It is clear that since the mapping F is continuous, the mapping SP G n F is also continuous. Now we will show that the mapping SP G n F is a homotopy between the mappings SP G n f and SP G n g . Indeed,
SP G n F ( [ ( x 1 , x 2 , , x n ) ] G , 0 ) = [ ( F ( x 1 , 0 ) , F ( x 2 , 0 ) , , F ( x n , 0 ) ) ] G = [ ( f ( x 1 ) , f ( x 2 ) , , f ( x n ) ) ] G = SP G n f [ ( x 1 , x 2 , , x n ) ] G ;
and
SP G n F ( [ ( x 1 , x 2 , , x n ) ] G , 1 ) = [ ( F ( x 1 , 1 ) , F ( x 2 , 1 ) , , F ( x n , 1 ) ) ] G = [ ( g ( x 1 ) , g ( x 2 ) , , g ( x n ) ) ] G = SP G n g [ ( x 1 , x 2 , , x n ) ] G .
This means that SP G n f SP G n g . □
Corollary 4.
If the spaces X and Y are homotopically equivalent, then the spaces SP G n X and SP G n Y are also homotopically equivalent.
Proof. 
Suppose that the spaces X and Y are homotopically equivalent. Then there exist two continuous mappings f : X Y and g : Y X such that f g i d Y and g f i d X . This means that there are two homotopy F ( y , t ) and H ( x , t ) such that
F ( y , 0 ) = ( f g ) ( y ) , F ( y , 1 ) = y   a n d   ( x , 0 ) = ( g f ) ( x ) , H ( x , 1 ) = x .
Consider the compositions SP G n f SP G n g : SP G n Y SP G n Y and SP G n g SP G n f : SP G n X SP G n X of the mappings SP G n f : SP G n X SP G n Y and SP G n g : SP G n Y SP G n X defined by
S P G n f S P G n g ( y 1 , y 2 , , y n ) G = ( f g ) ( y 1 ) , ( f g ) ( y 2 ) , , ( f g ) ( y n ) G
and
S P G n g S P G n f ( x 1 , x 2 , , x n ) G = ( f g ) ( x 1 ) , ( f g ) ( x 2 ) , , ( f g ) ( x n ) G .
One can easily check that the mapping
S P G n F [ ( y 1 , y 2 , , y n ) ] G , t = ( F ( y 1 , t ) , F ( y 2 , t ) , , F ( y n , t ) ) G
is a homotopy between S P G n f S P G n g and i d S P G n Y .
Similarly,
S P G n H [ ( x 1 , x 2 , , x n ) ] G , t = ( H ( x 1 , t ) , H ( x 2 , t ) , , H ( x n , t ) ) G
is a homotopy between S P G n g S P G n f and i d S P G n X .
By Theorem 1, S P G n X and S P G n Y are homotopically equivalent. □
Proposition 3.
If a set A is a retract of the topological space X, then the set SP G n A is a retract of the topological space SP G n X .
Proof. 
Suppose that a set A is a retract of X. Then there exists a continuous mapping r : X A such that r ( a ) = a for all a A . Now we consider the mapping SP G n r : SP G n X SP G n A . For every [ ( a 1 , a 2 , , a n ) ] G SP G n A we have
SP G n r ( [ ( a 1 , a 2 , , a n ) ] G ) = [ ( r ( a 1 ) , r ( a 2 ) , , r ( a n ) ) ] G = [ ( a 1 , a 2 , , a n ) ] G .
This means that the mapping SP G n r : SP G n X SP G n A is a retraction. Hence, the set SP G n A is a retract of the space SP G n X . □
Theorem 2.
The functor S P G n is a covariant homotopy functor.
Proof. 
Now we will show that the functor SP G n satisfies the above three conditions.
(i) Let i d X be identity mapping in the topological space X. Then we have that SP G n i d X [ ( x 1 , x 2 , , x n ) ] G = [ ( i d X ( x 1 ) , i d X ( x 2 ) , , i d X ( x n ) ) ] G = [ ( x 1 , x 2 , , x n ) ] . This means that the mapping SP G n i d X is the identity mapping in the topological space SP G n X .
(ii) Let f : X Y , g : Y Z be continuous mappings. Then it follows that SP G n ( g f ) [ ( x 1 , x 2 , , x n ) ] G = [ ( ( g f ) ( x 1 ) , ( g f ) ( x 2 ) , , ( g f ) ( x n ) ) ] G = SP G n g [ ( f ( x 1 ) , f ( x 2 ) , , f ( x n ) ) ] G = SP G n g SP G n f .
(iii) It follows easily from Theorem 1. □
In [14], some propositions about homotopy properties of the topological spaces were given. For instance, it was proved that contractibility, connectedness, and pathwise connectedness are homotopy property of the spaces.
Corollary 5.
If a topological space X is contractible, then the space SP G n X is also contractible.
Corollary 6.
If a topological space X is connected (viz., pathwise connected), then the space SP G n X is also connected (viz., pathwise connected).
If f and g are two paths in X with f ( 1 ) = g ( 0 ) , then by the product of f and g we mean the path f g , which is defined by
( f g ) ( t ) = f ( 2 t ) , if 0 t 1 / 2 , g ( 2 t 1 ) , if 1 / 2 t 1 .
Let f g and g h , where F is a homotopy from f to g and G is a homotopy from g to h. Then, f h . Define a homotopy H : X × I Y between f and h as follows:
H ( x , t ) = F ( x , 2 t ) , if 0 t 1 / 2 , G ( x , 2 t 1 ) , if 1 / 2 t 1 .
Corollary 7.
If the mappings f i : I X are paths in X from the points x 0 i to the points x 1 i , i = 1 , 2 , , n , respectively, then the mapping SP G n f n : I SP G n X defined by SP G n f n ( t ) = [ ( f 1 ( t ) , f 2 ( t ) , , f n ( t ) ) ] G is also a path from the point [ ( x 0 1 , x 0 2 , , x 0 n ) ] G to the point [ ( x 1 1 , x 1 2 , , x 1 n ) ] G in SP G n X .
Corollary 8.
Let SP G n f n and SP G n g n be paths from [ ( x 0 1 , x 0 2 , , x 0 n ) ] G to [ ( x 1 1 , x 1 2 , , x 1 n ) ] G and from [ ( x 2 1 , x 2 2 , , x 2 n ) ] G to [ ( x 3 1 , x 3 2 , , x 3 n ) ] G , respectively, with SP G n f n ( 1 ) = SP G n g n ( 0 ) . Then we define the multiplication of the paths in SP G n X as follows:
( SP G n f n SP G n g n ) ( t ) = [ ( ( f 1 g 1 ) ( t ) , ( f 2 g 2 ) ( t ) , , ( f n g n ) ( t ) ) ] G .
This path sharing the points [ ( x 0 1 , x 0 2 , , x 0 n ) ] G and [ ( x 3 1 , x 3 2 , , x 3 n ) ] G .
In [18], it is shown that the multiplication of equivalence classes of paths is associative; in other words, ( [ f ] [ g ] ) [ h ] = [ f ] ( [ g ] [ h ] ) .
Let f and g be paths from the initial point x 0 to the final point x 1 . If there is a homotopy F from f to g such that for each t I , F ( 0 , t ) = x 0 and F ( 1 , t ) = x 1 , then f and g are said to be path-homotopic [18]. For a path f, [ f ] denotes the equivalence class of all paths path-homotopic to f.
The operation ∗ defined above can be applied to homotopy classes as well. Let f : I X be a path from x 0 to x 1 and g : I X a path from x 1 to x 2 . Then, one defines [ f ] [ g ] = [ f g ] .
Let X be a space and x 0 i n X . A path in X beginning and ending at x 0 is called a loop [18] based at x 0 . Denote by π 1 ( X , x 0 ) the set of all equivalence classes [ f ] of loops in X based at x 0 . π 1 ( X , x 0 ) with the operation ∗ is a group, where the identity element of the group is [ e x ] and the inverse element of [ f ] is [ f ¯ ( t ) ] = [ f ( 1 t ) ] . We call π 1 ( X , x 0 ) the fundamental group [18].
Suppose ( G , ) and ( G 1 , 1 ) are groups. A homomorphism is a mapping such that f ( x y ) = f ( x ) 1 f ( y ) for all x , y G . A homomorphism f is called an isomorphism if it is bijective.
The fundamental groups of a space and its quotient space are not always isomorphic.
Example 2.
Let X = [ 0 , 1 ] and let S 1 be the unit circle. Clearly, S 1 is the quotient space of the space X, where the quotient mapping is defined as q ( x ) = ( c o s ( 2 π x ) ; s i n ( 2 π x ) ) . We know that X = [ 0 , 1 ] has the trivial fundamental group (the group consisting of the identity), and the fundamental group of S 1 is isomorphic to the group ( Z , + ) .
Corollary 9.
The fundamental groups π 1 ( X , x 0 ) and π 1 ( S P G n X , [ x 0 ] G ) of the topological spaces X and S P G n X are not always isomorphic for every x 0 X , where [ x 0 ] G = [ ( x 0 , x 0 , , x 0 ) ] G = ( x 0 , x 0 , , x 0 ) .
Let h : X Y be a continuous mapping sending the point x 0 X to the point y 0 Y ; We denote this fact by h : ( X , x 0 ) ( Y , y 0 ) . If f is a loop in X based at x 0 , then the composition h f : I Y is a loop in Y based at y 0 . In this way the correspondence f h f gives rise to a mapping from π 1 ( X , x 0 ) to π 1 ( Y , y 0 ) . Define h : π 1 ( X , x 0 ) π 1 ( Y , y 0 ) by h ( [ f ] ) = [ h f ] . In [19] it is proved that h is a homomorphism.
Corollary 10.
The fundamental groups π 1 ( X , x 0 ) and π 1 ( SP G n X , [ x 0 ] ) of the topological spaces X and SP G n X are homomorphic for every x 0 X , and the homomorphism is defined by ( π n , G s ) [ f ] = [ π n , G s f ] .
Proof. 
We know that π n , G s : X n S P G n X is a continuous mapping that carries the point ( x 0 , x 0 , , x 0 ) of X n to the point [ ( x 0 , x 0 , , x 0 ) ] of S P G n X . If f is a loop in X based at x 0 , then f n is a loop in X n based at ( x 0 , x 0 , , x 0 ) and the composition π n , G s f n : I S P G n X is a loop in S P G n X based at [ ( x 0 , x 0 , , x 0 ) ] . The correspondence f π n , G s f n thus gives rise to a mapping carrying π 1 ( X , x 0 ) into π 1 ( S P G n X , [ ( x 0 , x 0 , , x 0 ) ] ) . Define π n , G s : π 1 ( X , x 0 ) π 1 ( S P G n X , [ ( x 0 , x 0 , , x 0 ) ] ) by the equation π n , G s ( [ f ] ) = [ π n , G s f n ] . The mapping π n , G s is a homomorphism (as we said before). □

5. Conclusions

In this article we continue the study of the functor of permutation degree—one of important functors in topology. Our results extend and complement the existing results in this field. We obtained several relations among cardinal invariants in the space SP 2 ( R , τ ( A ) ) of the permutation degree of the Hattori space ( R , τ ( A ) ) . These cardinal invariants include the hereditary density, hereditary weak density, spread, extent, π -weight, and (hereditary) Lindelöf number. Additionally, we proved that if the spaces X and Y are homotopically equivalent, then the spaces SP G n X and SP G n Y are homotopically equivalent too. As a consequence, one obtains that the functor SP G n is a covariant homotopy functor. It preserves a few topological properties, including retracts.
We believe that our results can be applied to similar investigation of other topological properties and other functors.

Author Contributions

L.D.R.K., F.G.M. and A.K.S. equally contributed to this manuscript and approved the final version. All authors have read and agreed to the published version of the manuscript.

Funding

This research received no external funding.

Data Availability Statement

Not applicable.

Acknowledgments

We are grateful to three anonymous referees for a number of valuable remarks and comments which led to the improvement of the exposition of our results.

Conflicts of Interest

The authors declare no conflict of interest.

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Kočinac, L.D.R.; Mukhamadiev, F.G.; Sadullaev, A.K. Some Cardinal and Geometric Properties of the Space of Permutation Degree. Axioms 2022, 11, 290. https://doi.org/10.3390/axioms11060290

AMA Style

Kočinac LDR, Mukhamadiev FG, Sadullaev AK. Some Cardinal and Geometric Properties of the Space of Permutation Degree. Axioms. 2022; 11(6):290. https://doi.org/10.3390/axioms11060290

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Kočinac, Ljubiša D. R., Farkhod G. Mukhamadiev, and Anvar K. Sadullaev. 2022. "Some Cardinal and Geometric Properties of the Space of Permutation Degree" Axioms 11, no. 6: 290. https://doi.org/10.3390/axioms11060290

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