Mixed Chinese postman problem

Template:Short description Template:Technical The mixed Chinese postman problem (MCPP or MCP) is the search for the shortest traversal of a graph with a set of vertices V, a set of undirected edges E with positive rational weights, and a set of directed arcs A with positive rational weights that covers each edge or arc at least once at minimal cost.^[1] The problem has been proven to be NP-complete by Papadimitriou.^[2] The mixed Chinese postman problem often arises in arc routing problems such as snow ploughing, where some streets are too narrow to traverse in both directions while other streets are bidirectional and can be plowed in both directions. It is easy to check if a mixed graph has a postman tour of any size by verifying if the graph is strongly connected. The problem is NP hard if we restrict the postman tour to traverse each arc exactly once or if we restrict it to traverse each edge exactly once, as proved by Zaragoza Martinez.^[3][4]

The mathematical definition is:

Input: A strongly connected, mixed graph ${\displaystyle G=(V,E,A)}$ with cost ${\displaystyle c(e)\ge 0}$ for every edge ${\displaystyle e\subset E\cup A}$ and a maximum cost ${\displaystyle c_{max}}$.

Question: is there a (directed) tour that traverses every edge in ${\displaystyle E}$ and every arc in ${\displaystyle A}$ at least once and has cost at most ${\displaystyle c_{max}}$?^[5]

The main difficulty in solving the Mixed Chinese Postman problem lies in choosing orientations for the (undirected) edges when we are given a tight budget for our tour and can only afford to traverse each edge once. We then have to orient the edges and add some further arcs in order to obtain a directed Eulerian graph, that is, to make every vertex balanced. If there are multiple edges incident to one vertex, it is not an easy task to determine the correct orientation of each edge.^[6] The mathematician Papadimitriou analyzed this problem with more restrictions; "MIXED CHINESE POSTMAN is NP-complete, even if the input graph is planar, each vertex has degree at most three, and each edge and arc has cost one."^[7]

The process of checking if a mixed graph is Eulerian is important to creating an algorithm to solve the Mixed Chinese Postman problem. The degrees of a mixed graph G must be even to have an Eulerian cycle, but this is not sufficient.^[8]

The fact that the Mixed Chinese Postman is NP-hard has led to the search for polynomial time algorithms that approach the optimum solution to reasonable threshold. Frederickson developed a method with a factor of 3/2 that could be applied to planar graphs,^[9] and Raghavachari and Veerasamy found a method that does not have to be planar.^[10] However, polynomial time cannot find the cost of deadheading, the time it takes a snow plough to reach the streets it will plow or a street sweeper to reach the streets it will sweep.^[11][12]

Given a strongly connected mixed graph ${\displaystyle G=(V,E,A)}$ with a vertex set ${\displaystyle V}$, and edge set ${\displaystyle E}$, an arc set ${\displaystyle A}$ and a nonnegative cost ${\displaystyle c_e}$ for each ${\displaystyle e\in E\cup A}$, the MCPP consists of finding a minim-cost tour passing through each link ${\displaystyle e\in E\cup A}$ at least once.

Given ${\displaystyle S\subset V}$, ${\displaystyle {\delta }^{+}(S)=\{(i,j)\in A:i\in S,j\in V\mathrm{\setminus }S\}}$, ${\displaystyle {\delta }^{-}(S)=\{(i,j)\in A:i\in V\mathrm{\setminus }S,j\in S\}}$, ${\displaystyle \delta (S)}$ denotes the set of edges with exactly one endpoint in ${\displaystyle S}$, and ${\displaystyle {\delta }^{\star }=\delta (S)\cup {\delta }^{+}(S)\cup {\delta }^{-}}$. Given a vertex $i$, ${\displaystyle d_i^{-}}$(indegree) denotes the number of arcs enter ${\displaystyle i}$, ${\displaystyle d_i^{+}}$(outdegree) is the number of arcs leaving $i$, and ${\displaystyle d_i}$ (degree) is the number of links incident with ${\displaystyle i}$.^[13] Note that ${\displaystyle d_i=|{\delta }^{\star }(\{i\})|}$. A mixed graph ${\displaystyle G=(V,E,A)}$ is called even if all of its vertices have even degree, it is called symmetric if ${\displaystyle d_i^{-}=d_i^{+}}$ for each vertex $i$, and it is said to be balanced if, given any subset ${\displaystyle S}$ of vertices, the difference between the number of arcs directed from ${\displaystyle S}$ to ${\displaystyle V\mathrm{\setminus }S}$, ${\displaystyle |{\delta }^{+}(S)|}$, and the number of arcs directed from ${\displaystyle V\mathrm{\setminus }S}$ to ${\displaystyle S}$, ${\displaystyle |{\delta }^{-}(S)|}$, is no greater than the number of undirected edges joining ${\displaystyle S}$ and ${\displaystyle V\mathrm{\setminus }S}$, ${\displaystyle |\delta (S)|}$.

It is a well known fact that a mixed graph ${\displaystyle G}$ is Eulerian if and only if ${\displaystyle G}$ is even and balanced.^[14] Notice that if ${\displaystyle G}$ is even and symmetric, then G is also balanced (and Eulerian). Moreover, if ${\displaystyle G}$ is even, the ${\displaystyle MCPP}$ can be solved exactly in polynomial time.^[15]

1. Given an even and strongly connected mixed graph ${\displaystyle G=(V,E,A)}$, let ${\displaystyle A_1}$ be the set of arcs obtained by randomly assigning a direction to the edges in ${\displaystyle E}$ and with the same costs. Compute ${\displaystyle s_i=d_i^{-}-d_i^{+}}$ for each vertex i in the directed graph ${\displaystyle (V,A\cup A_1)}$. A vertex $i$ with ${\displaystyle s_i>0(s_i<0)}$ will be considered as a source (sink) with supply demand ${\displaystyle s_i(-s_i)}$. Note that as ${\displaystyle G}$ is an even graph, all supplies and demands are even numbers (zero is considered an even number).
2. Let ${\displaystyle A_2}$ be the set of arcs in the opposite direction to those in ${\displaystyle A_1}$ and with the costs of those corresponding edges, and let ${\displaystyle A_3}$ be the set of arcs parallel to ${\displaystyle A_2}$ at zero cost.
3. To satisfy the demands ${\displaystyle s_i}$ of all the vertices, solve a minimum cost flow problem in the graph ${\displaystyle (V,A\cup A_1\cup A_2\cup A_3)}$, in which each arc in ${\displaystyle A\cup A_1\cup A_2}$ has infinite capacity and each arc in ${\displaystyle A_3}$ has capacity 2. Let ${\displaystyle x_{ij}}$ be the optimal flow.
4. For each arc ${\displaystyle (i,j)}$ in ${\displaystyle A_3}$ do: If ${\displaystyle x_{ij}=2}$, then orient the corresponding edge in ${\displaystyle G}$ from ${\displaystyle i}$ to ${\displaystyle j}$ (the direction, from ${\displaystyle j}$ to ${\displaystyle i}$, assigned to the associated edge in step 1 was "wrong"); if ${\displaystyle x_{ij}=0}$, then orient the corresponding edge in ${\displaystyle G}$ from ${\displaystyle j}$ to ${\displaystyle i}$ (in this case, the orientation in step 1 was "right"). Note the case ${\displaystyle x_{ij}=1}$ is impossible, as all flow values through arcs in ${\displaystyle A_3}$ are even numbers.
5. Augment ${\displaystyle G}$ by adding ${\displaystyle x_{ij}}$ copies of each arc in ${\displaystyle A\cup A_1\cup A_2}$. The resulting graph is even and symmetric.

When the mixed graph is not even and the nodes do not all have even degree, the graph can be transformed into an even graph.

• Let ${\displaystyle \mathrm{G}\mathrm{=}\mathrm{\{}\mathrm{V},\mathrm{E},\mathrm{A}\mathrm{\}}}$ be a mixed graph that is strongly connected. Find the odd degree nodes by ignoring the arc directions and obtain a minimal-cost matching. Augment the graph with the edges from the minimal cost matching to generate an even graph ${\displaystyle {\mathrm{G}}^{\prime }\mathrm{=}\mathrm{\{}{\mathrm{V}}^{\prime },{\mathrm{E}}^{\prime },{\mathrm{A}}^{\prime }\mathrm{\}}}$.
• The graph is even but is not symmetric and an eulerian mixed graph is even and symmetric. Solve a minimum cost flow problem in ${\displaystyle G^{\prime }}$ to obtain a symmetric graph that may not be even ${\displaystyle G^{″}}$.
• The final step involves making the symmetric graph ${\displaystyle G^{″}}$ even. Label the odd degree nodes ${\displaystyle V_O}$. Find cycles that alternate between lines in the arc set ${\displaystyle A^{″}\mathrm{\setminus }A}$ and lines in the edge set ${\displaystyle E^{″}}$ that start and end at points in ${\displaystyle V_O}$. The arcs in ${\displaystyle A^{″}\mathrm{\setminus }A}$ should be considered as undirected edges, not as directed arcs.

A paper published by Hua Jiang et. al laid out a genetic algorithm to solve the mixed chinese postman problem by operating on a population. The algorithm performed well compared to other approximation algorithms for the MCPP.^[16]

• Capacitated arc routing problem

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