AUSTRALASIAN JOURNAL OF COMBINATORICSVolume 46 (2010), Pages 147156
Equitable L(2, 1)-labelings of Sierpinski graphs
Hong-Yong Fu Dezheng Xie
College of Mathematics and PhysicsChongqing UniversityChongqing 400044
P.R. [email protected] [email protected]
Abstract
An L(2, 1)-labeling of a graph G is equitable if the number of elements inany two color classes dier by at most one. The equitable L(2, 1)-labelingnumber e(G) of G is the smallest integer k such that G has an equitableL(2, 1)-labeling. Sierpinski graphs S(n, k) generalize the Tower of Hanoigraphsthe graph S(n, 3) is isomorphic to the graph of the Tower ofHanoi with n disks. In this paper, we show that for any n 2 and anyk 2, e(S(n, k)) = 2k.
1 Introduction
An L(2, 1)-labeling of a graph G is a function f from the vertex set V (G) to the set ofall nonnegative integers such that |f(x)f(y)| 2 if d(x, y) = 1 and |f(x)f(y)| 1if d(x, y) = 2, where d(x, y) denotes the distance between x and y in G. The L(2, 1)-labeling number (G) of G is the smallest number k such that G has an L(2, 1)-labeling with max{f(v) : v V (G)} = k.
The L(2, 1)-labeling concept grew from the problem of assigning frequencies toradio transmitters at various nodes in a territory. To avoid interferences, transmittersthat are close must receive frequencies that are suciently apart. Since frequenciesare quantized in practice, there is no loss of generality in assuming that they admitinteger values. Motivated by this problem, Hale [11] rst proposed the problemwith the objective of minimizing the span of frequencies. Later Griggs and Yeh [10]proposed the above dened L(2, 1)-labeling. Currently, many papers [6, 8, 9, 17, 22]focusing on the L(2, 1)-labeling and its generalizations are compiled in two recentsurveys [2, 24].
In 1973, Meyer [19] introduced the notion of equitable (vertex) coloring of graphsand conjectured that the equitable chromatic number of a connected graph G, whichis neither a complete graph nor an odd cycle, is at most (G). It is well-known [4]that if a graph G has an edge k-coloring, then G has an equitable edge k-coloring. Fu
Corresponding author.
148 HONG-YONG FU AND DEZHENG XIE
[7] rst investigated the equitable total coloring of graphs. Later Wang [23] provedthe equitable total coloring conjecture of graphs with maximum degree 3. An L(2, 1)-labeling of a graph G is equitable if the number of elements in any color classes dierby at most one. The equitable L(2, 1)-labeling number e(G) of G is the smallestinteger k such that G has an equitable L(2, 1)-labeling.
In 1997, the graphs S(n, 3) were generalized by Klavzar and Milutinovic [15] tothe Sierpinski graphs S(n, k) for k 3. The motivation for this generalization camefrom topological studies of Lipscombs space [18, 20], where it is shown that thisspace is a generalization of the Sierpinski triangular curve (Sierpinski gasket). As itturned out, the graphs S(n, k) possess many appealing properties and were studiedfrom dierent points of view, as for instance several coding [3, 8, 16] and severalmetric properties [21]. Klavzar et al. [16] proved that the Sierpinski graphs S(n, k)have perfect domination sets [1], i.e., are 100% ecient. For some recent results onthe Sierpinski graphs see [6, 1214].
In Section 2 we introduce the Sierpinski graphs of interest and describe prelim-inary lemmas. In the last section, we give the equitable L(2, 1)-labeling numbersof Sierpinski graphs for any n 2 and any k 2, and also give a new proof ofL(2, 1)-labeling numbers of S(n, k) (in [8], they proved that (S(n, k)) = 2k for anyn 2 and any k 3).
2 Preliminaries
In this section we rst introduce the Sierpinski graphs. Sierpinski graphs S(n, k) aredened for n 1 and k 1 as follows.
The vertex set of S(n, k) consists all n-tuples of integers 1, 2, . . . , k, that is,V (S(n, k)) = {1, 2, . . . , k}n (|V (S(n, k))| = kn). We will write (u1, u2, . . . , un),ur {1, 2, . . . , k}, r {1, . . . , n} for the vertices of S(n, k). Two dierent ver-tices (u1, u2, . . . , un), ur {1, 2, . . . , k}, r {1, . . . , n} and (v1, v2, . . . , vn), vr {1, 2, . . . , k}, r {1, . . . , n} are adjacent if and only if there exists an h {1, . . . , n}such that
(a) ut = vt, for t = 1, . . . , h 1;(b)uh = vh; and(c)ut = vh and vt = uh for t = h + 1, . . . , n.
In the rest of the paper we will write (u1u2 . . . un) for (u1, u2, . . . , un) or evenshorter, u1u2 . . . un. The Sierpinski graphs S(3, 4) and S(2, 5), together with thecorresponding vertex labelings, are shown in Fig. 1.
The vertices (1 . . . 1), (2 . . . 2), . . . , (k . . . k) are called the extreme vertices ofS(n, k); the other vertices will be called inner vertices of S(n, k). For i = 1, 2, . . . , k,let Si(n, k) be the subgraph of S(n, k) induced by the vertex set V
i = {(ij1 . . . jn1) |
jr {1, . . . , k}, r {1, . . . , n 1}}. Clearly Si(n, k) is isomorphic to S(n 1, k).Consequently, for k 2, S(n, k) contains k copies of the graph S(n 1, k) and kn1copies of the complete graph S(1, k) = Kk.
The graph S(n, k) can be constructed inductively from S(n 1, k) as follows (cf.Fig. 1 and Fig. 2):
SIERPINSKI GRAPHS 149
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S 4( , )3 S 2 5( , )
Fig. 1. Sierpinski graphs S(3, 4) and S(2, 5)
Take k copies S1(n, k), S2(n, k), . . . , Sk(n, k) of S(n1, k), where for i = 1, 2, . . . , k,we have
V (Si(n, k)) = {(ij1 . . . jn1) | (j1 . . . jn1) V (S(n 1, k))}.
For any i and any j with i = j, we add an edge between the extreme vertex(ijj . . . j) of Si(n, k) and the extreme vertex (jii . . . i) of Sj(n, k). Note that no edgeincident with the vertex (ii . . . i) of Si(n, k) is added.
Lemma 2.1. [8] For n = 2 and any k 3, (S(2, k)) 2k.
Lemma 2.2. [17] For the complete graph Kk, (Kk) = 2k 2.
3 Equitable L(2, 1)-labelings
In this section we give optimal equitable L(2, 1)-labeling numbers of Sierpinski graphsand the optimal L(2, 1)-labeling numbers of S(n, k) by a new proof.
A 2-distance coloring [5] of a graph G is a function from the vertex set of graphG to the set of positive integers such that no two vertices at distance less than orequal to 2 are assigned the same color. The 2-distance chromatic number of a graphG, denoted by 2d, is the smallest integer k for which G admits a 2-distance coloringwith k colors.
Theorem 3.1. For any n 2 and any k 2, there exists a partition of V (S(n, k)),say, V1, V2, . . . , Vk+1, such that for any two distinct vertices u and v in Vi, d(u, v) > 2for i = 1, . . . , k + 1.
150 HONG-YONG FU AND DEZHENG XIE
Proof. In order to prove the theorem, it is enough to show that 2d(S(n, k)) = k +1for any n 2 and any k 2. For any n 2, S(n, 2) is a path of length 2n 1. Wecolor the vertices of S(n, 2) by the circular coloring using colors 1, 2, 3 on this path.It is easy to see that 2d(S(n, 2)) = 3. Now we consider the case for any n 2 andany k 3.
First we show that 2d(S(n, k)) k + 1. Note that S(2, k) is isomorphic to asubgraph of S(n, k), for any n 2, k 3. Thus in order to show that 2d(S(n, k)) k + 1, we only need to show that 2d(S(2, k)) k + 1. The graph S(2, k) consistsof k complete subgraphs on k vertices induced by the vertex sets V i = {ij | j =1, 2, . . . , k} for i {1, 2, . . . k}. The vertex ij V i is adjacent to the vertex ji V jfor i = j. The vertex (12) V 1 is adjacent to the vertex (21) V 2 , hence thedistance between the vertex (21) and a vertex of V 1 is at most 2 in S(2, k). It holdsthat 2d(S(n, k)) k + 1.
Now we need to show that 2d(S(n, k)) k + 1. In order to prove 2d(S(n, k)) k + 1, we shall form a 2-distance coloring n of S(n, k) that uses k + 1 colors byinduction on n. Suppose that n = 2 and k 3. We form a coloring 2 of S(2, k)that uses k + 1 colors as follows:
2(ij) = j , if i = j, for i, j {1, 2, . . . , k},
2(ii) = k + 1 , for i {1, 2, . . . , k}.
It is easy to see that 2 is a 2-distance coloring of S(n, k) for n = 2 and any k 3by the denition of 2-distance coloring (For the case k = 4, S(2, 4) is shown in Fig.2.1). Suppose n = 3 and any k 3. We form a coloring 3 of S(3, k) that uses k+1colors as follows:
3(ijl) = i, if j = l for i, j, l {1, 2, . . . , k},
3(ijl) = k + 1, if i = l = j for i, j, l {1, 2, . . . , k},
3(ijl) = l, other cases, for i, j, l {1, 2, . . . , k}.
Similarly, 3 is a 2-distance coloring for n = 3 and any k 3 by the denition of2-distance coloring (As an example, for k = 4, S(3, 4) is shown in Fig. 2.2).
Suppose that the result holds for n 1 (for any n 1 2 and any k 3),i.e., there exists a 2-distance coloring n1 of S(n 1, k) that uses k + 1 colors.Let u = (ij1 . . . jn1) V (Si(n, k)), v = (jj1 . . . jn1) V (Sj(n, k)) and u(i) =(j1 . . . jn1), v(j) = (j1 . . . jn1) V (S(n1, k)), i, j, jr {1, . . . , k}, r {1, . . . , n1}. Now we consider n (for any n > 3 and any k 3). We form a coloring n ofS(n, k) that uses k + 1 colors as follows:
n(u) = in1(u), if u = (ij1 . . . jn1) V (Si(n, k)),
for i, jr {1, . . . , k}, r {1, . . . , n 1},where in1(u) is obtained from n1(u
(i)) using permuting of colors(1) . . . (i 1)(i k + 1)(i + 1) . . . (k), i {1, 2, . . . , k}.
SIERPINSKI GRAPHS 151
Note that n is a coloring of S(n, k), in1 is a coloring of Si(n, k), and n1 is a
coloring of S(n 1, k). It is easy to see that, for any u Si(3, k), 3(u) = i2(u)and i2(u) is obtained from 2(u
(i)) using permuting of colors (1) . . . (i 1)(i k +1)(i + 1) . . . (k) for i {1, 2, . . . , k}. Now, we shall show that the coloring n is a2-distance coloring that uses k + 1 colors in S(n, k) for n 3.
Case 1 Suppose that n is odd.
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2.1.
Fig. 2. 2-distance colorings of Sierpinski graphs S(2, 4) , S(3, 4) and S(4, 4)
152 HONG-YONG FU AND DEZHENG XIE
We must rst give the following results for i, j {1, 2, . . . , k},
n1(i, i, . . . , i, j) = j, if (i, i, . . . , i, j) V (Si(n 1, k)), for i = j,
n1(i, i, . . . , i, j) = k + 1, if (i, i, . . . , i, j) V (Si(n 1, k)), for i = j.
Case 1.1 Suppose that d(u, v) = 1 for any u, v V (S(n, k)).Then u is adjacent to v in Sierpinski graphs S(n, k). Suppose that u, v
V (Si(n, k)) for i {1, . . . , k}. Clearly, n(u) = in1(u) = in1(v) = n(v). Sup-pose that u V (Si(n, k)) and v V (Sj(n, k)) for i = j and i, j {1, 2, . . . , k}. Sinceu is adjacent to v, u is (ij . . . j) and v is (ji . . . i) by the structure of S(n, k). Sincen1(u(i)) = k+1 = n1(v(j)) by the denition of n1, in1(u) = i and
jn1(v) = j
for i, j {1, 2, . . . , k} and i = j. Thus n(u) = (i)n1(u) = (j)n1(v) = n(v).Case 1.2 Suppose that d(u, v) = 2 for u, v V (S(n, k)).Suppose that u, v V (Si(n, k)) for i {1, . . . , k}. By the induction hypoth-
esis, n(u) = in1(u) = in1(v) = n(v). Suppose that u V (Si(n, k)) and
v V (Sj(n, k)) for i, j {1, 2, . . . , k} and i = j. By the structure of S(n, k), wedistinguish two cases.
Case 1.2.1 Suppose that u = ij . . . j and v = ji . . . il for i = j, l = i andi, j, l {1, 2, . . . , k}.
Since n1(u(i)) = k + 1 and n1(v(j)) = l by the denition of n1, eitherin1(ij . . . j) = i,
jn1(ji . . . il) = l for i = j, l = i, l = j and i, j, l {1, 2, . . . , k};
or in1(ij . . . j) = i, jn1(ji . . . il) = k + 1 for i = j, l = i, l = j and i, j, l
{1, 2, . . . , k}. Thus n(u) = in1(u) = jn1(v) = n(v).Case 1.2.2 Suppose that u = ij . . . jl and v = ji . . . i for i = j, l = j and
i, j, l {1, 2, . . . , k}.Since n1(u(i)) = l and n1(v(j)) = k + 1 by the denition of n1, either
in1(ij . . . jl) = l, jn1(ji . . . i) = j for i = j, l = i, l = j and i, j, l {1, 2, . . . , k};
or in1(ij . . . jl) = k + 1, jn1(ji . . . i) = j for i = j, l = j, l = i and i, j, l
{1, 2, . . . , k}. Thus n(u) = in1(u) = jn1(v) = n(v).Case 2 Suppose that n is even.
We must rst give the following results for i, j {1, 2, . . . , k},
n1(i, i, . . . , i, j) = j, if (i, i, . . . , i, j) V (Si(n, k)) .
Case 2.1 Suppose that d(u, v) = 1 for any u, v V (S(n, k)).Suppose that u, v V (Si(n, k)) for i {1, . . . , k}. Clearly, n(u) = in1(u) =
in1(v) = n(v). Suppose that u V (Si(n, k)) and v V (Sj(n, k)) for i, j {1, 2, . . . , k} and i = j. Since u is adjacent v in S(n, k), u is (ij . . . j) and v is(ji . . . i) by the structure of S(n, k). Since n1(u(i)) = j and n1(v(j)) = i by thedenition of n1, in1(ij . . . j) = j and
jn1(ji . . . i) = i for i, j {1, 2, . . . , k} and
i = j. Thus n(u) = in1(u) = jn1(v) = n(v).Case 2.2 Suppose that d(u, v) = 2 for any u, v V (S(n, k)).
SIERPINSKI GRAPHS 153
Suppose that u, v V (Si(n, k)) for i {1, . . . , k}. By the induction hypothesis,n(u) =
in1(u) = in1(v) = n(v). Suppose that u V (Si(n, k)) and v
V (Sj(n, k)) for i, j {1, 2, . . . , k} and i = j. Similarly, we distinguish two cases.Case 2.2.1 Suppose that u = ij . . . j and v = ji . . . il for i = j, l = i and
i, j, l {1, 2, . . . , k}.Since n1(u(i)) = j and n1(v(j)) = l by the denition of n1, either in1(ij . . .
j) = j, jn1(ji . . . il) = l for i = j, l = i, l = j and i, j, l {1, 2, . . . , k}; orin1(ij . . . j) = j,
jn1(ji . . . il) = k + 1 for i = j, l = i, l = j and i, j, l
{1, 2, . . . , k}. Thus n(u) = in1(u) = jn1(v) = n(v).Case 2.2.2 Suppose that u = ij . . . jl and v = ji . . . i for i = j, l = j and
i, j, l {1, 2, . . . , k}.Since n1(u(i)) = l and n1(v(j)) = i by the denition of n1, either in1(ij . . .
jl) = l, jn1(ji . . . i) = i for i = j, l = j, l = i, and i, j, l {1, 2, . . . , k}; orin1(ij . . . jl) = k + 1,
jn1(ji . . . i) = i for i = j, l = j, l = i and i, j, l
{1, 2, . . . , k}. Thus n(u) = in1(u) = jn1(v) = n(v).By the principle of induction, 2d(S(n, k)) k + 1, and so 2d(S(n, k)) = k + 1
(As an example for the case k = 4 and n = 4, S(4, 4) is shown in Fig. 2.3). Let1n (i) = Vi be the set of vertices assigned color i in S(n, k) for i {1, 2, . . . , k + 1}.The theorem is proved.
Theorem 3.2. Let n be the 2-distance coloring of S(n, k), n 2, k 3, as givenin Theorem 3.1. Then,
(i) If n is odd, then |1n (i)| = knkk+1 + 1 for i {1, 2, . . . , k} and|1n (k + 1)| = knkk+1 .
(ii) If n is even, then |1n (i)| = kn1k+1
for i {1, 2, . . . , k} and|1n (k + 1)| = k
n1k+1
+ 1.
Proof. By induction on n. Suppose that n = 2 and any k 3. By the denitionof 2 in Theorem 3.1, |12 (i)| = k 1 for i {1, 2, . . . , k} and |12 (k + 1)| = k.(As an example for S(2, 4), we have |12 (i)| = 3 for i = 1, 2, 3, 4 and |12 (5)| = 4,which is shown in Fig. 2.1). Suppose that n = 3 and any k 3. Similarly, we have|13 (i)| = k2 k +1 for i {1, 2, . . . , k} and |13 (k + 1)| = k2 k. (For S(3, 4), wehave |13 (i)| = 13 for i = 1, 2, 3, 4 and |13 (5)| = 12, which is shown in Fig. 2.2).
Suppose that the results hold for n 1 (n 1 2 and any k 3), i.e.,
(i) if n 1 is odd, then |1n1(i)| = kn1kk+1
+ 1 for i {1, 2, . . . , k} and|1n1(k + 1)| = k
n1kk+1
;
(ii) if n 1 is even, then |1n1(i)| = kn11k+1
for i {1, 2, . . . , k} and|1n1(k + 1)| = kn11k+1 + 1.
154 HONG-YONG FU AND DEZHENG XIE
Suppose that n is odd. By Theorem 3.1, in1 is obtained from n1 using per-muting of colors (1) . . . (i 1)(i k + 1)(i + 1) . . . (k) for i {1, 2, . . . , k}. Thusfor every Si(n, k), |1n (i)| = |1n1(k + 1)| = k
n11k+1
+ 1 for i {1, 2, . . . , k} and|1n (j)| = k
n11k+1
for j {1, 2, . . . , k + 1} and i = j. It follows that for S(n, k)
|1n (k + 1)| = k(kn1 1k + 1
) =kn kk + 1
and
|1n (i)| = (k 1)kn1 1k + 1
+ (kn1 1k + 1
+ 1) =kn kk + 1
+ 1 for i {1, 2, . . . , k}.
Now suppose that n is even. Since n 1 is odd, by the induction hypothesis,|1n1(i)| = kn1kk+1 + 1 for i {1, 2, . . . , k} and |1n1(k + 1)| = k
n1kk+1
. (Note that
in1 is obtained from n1 using permuting of colors (1) . . . (i1)(i k+1)(i+1) . . . (k)for i {1, 2, . . . , k}). For every Si(n, k), |1n (i)| = k
n1kk+1
for i {1, 2, . . . , k} and|1n (j)| = k
n1kk+1
+ 1 for j {1, 2, . . . , k + 1} and j = i. Thus for S(n, k)
|1n (k + 1)| = k(kn1 kk + 1
+ 1) =kn 1k + 1
+ 1
and
|1n (i)| = (k 1)(kn1 kk + 1
+ 1) +kn1 kk + 1
=kn 1k + 1
for i {1, 2, . . . , k}.
Theorem 3.3. For any n 2 and any k 2, e(S(n, k)) = 2k.Proof. First we show that (S(n, k)) = 2k for any n 2 and any k 2.
Suppose that n > 2 and k = 2. Since 2d(S(n, 2)) = 3 by Theorem 3.1, we forma labeling of S(n, 2) as follows:
(u) = 0 if u 1n (1),(u) = 2 if u 1n (2),(u) = 4 if u 1n (3).
It is clear that is an L(2, 1)-labeling and (S(n, 2)) 4. It is easy to see that(S(n, 2)) 4. Thus it holds for any n > 2 and k = 2.
Suppose that n 2 and k 3. By Theorem 3.1, there exists a 2-distance coloringn of S(n, k) that uses k+1 colors, then the vertex set of S(n, k) can be partitionedinto k + 1 sets, i.e., 1n (1),
1n (2), . . . ,
1n (k + 1). We form a labeling of S(n, k)
for n 2 and k 3 as follows:
(u) = 2(i 1), if u 1n (i) for i {1, 2, . . . , k + 1}.
SIERPINSKI GRAPHS 155
It is easy to see that is an L(2, 1)-labeling and (S(n, k)) 2k. Note thatS(n 1, k) is isometric to a subgraph of S(n, k) for any n 2 and any k 3. Inorder to prove that (S(n, k)) 2k, we only need to show that (S(2, k)) 2k. ByLemma 2.1, (S(2, k)) 2k. Thus (S(n, k)) 2k, and so (S(n, k)) = 2k.
Now we show that the L(2, 1)-labeling of S(n, k) is equitable for any n 2 andany k 2. For the case n > 2 and k = 2. Since (S(n, 2)) = 4 and S(n, 2) is thepath on 2n vertices by Theorem 3.1,
if n is odd, then |1n (1)| = |1n (2)| = |1n (3)|+ 1;if n is even, then |1n (1)| = |1n (2)|+ 1 = |1n (3)| + 1.
For any n 2 and any k 3, by Theorem 3.2, it is easy to see that
||1n (i)| |1n (j)|| = 0 and ||1n (i)| |1n (k + 1)|| = 1, i, j {1, 2, . . . , k}.
By the denition of equitable L(2, 1)-labeling, e(S(n, k)) = 2k for any n 2 andany k 2.
Remark 3.1. Indeed, (i) for any n 2 and k = 1, S(n, 1) is isomorphic to K1;(ii) for n = 2 and k = 2, S(2, 2) is a path of 3, it is clear that 2d(S(2, 2)) =(S(2, 2)) = e(S(2, 2)) = 3; (iii) for n = 1 and any k 2, S(1, k) = Kk. Since2d(Kk) = (Kk) = k and (S(1, k)) = (Kk) = 2k 2 by Lemma 2.2, |1n (i)| =|1n (j)| = 1 for i, j {1, . . . , k}. Thus e(S(1, k)) = 2k 2 for any k 2.
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156 HONG-YONG FU AND DEZHENG XIE
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(Received 18 Jan 2009; revised 4 Apr 2009)
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