graph-algorithms skill
Problem-solving strategies for graph algorithms in graph number theory
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Install the graph-algorithms skill
A skill is a folder. Copy it into your agent's skills folder and the agent loads it when the task matches its description.
git clone --depth 1 https://github.com/parcadei/Continuous-Claude-v3.git /tmp/Continuous-Claude-v3 mkdir -p ~/.claude/skills cp -r /tmp/Continuous-Claude-v3/.claude/skills/math/graph-number-theory/graph-algorithms ~/.claude/skills/graph-algorithms
available in every project
In the Claude apps, zip the folder and upload it from the Skills settings. The folder on GitHub
The instructions your agent would load
SKILL.md as published, without the frontmatter. Read it on GitHub
Graph Algorithms
When to Use
Use this skill when working on graph-algorithms problems in graph number theory.
Decision Tree
- Traversal selection
- BFS: shortest paths (unweighted), level structure
- DFS: cycle detection, topological sort, SCC
- Shortest path algorithms
- Minimum Spanning Tree
- Prim's: dense graphs, greedy from vertex
- Kruskal's: sparse graphs, union-find
- z3solve.py prove "cutproperty"
- Network Flow
- Max-flow = min-cut (Ford-Fulkerson)
- Matching via flow network
- sympycompute.py linsolve "flowconservation"
- Graph properties
- Spectral: eigenvalues of adjacency matrix
- Connectivity: via DFS/BFS
- Coloring: greedy or SAT reduction
Tool Commands
Sympy_Adjacency
uv run python -m runtime.harness scripts/sympy_compute.py eigenvalues "adjacency_matrix"Z3_Dijkstra
uv run python -m runtime.harness scripts/z3_solve.py prove "d[v] >= d[u] + w(u,v) for all edges"Z3MstCut
uv run python -m runtime.harness scripts/z3_solve.py prove "min_edge_crossing_cut_in_mst"Sympy_Flow
uv run python -m runtime.harness scripts/sympy_compute.py linsolve "flow_conservation_equations"Key Techniques
From indexed textbooks:
- [Graph Theory (Graduate Texts in Mathematics (173))] Given two numerical graph invariants i1 and i2, write i1 i2 if we can force i2 to be arbitrarily high on some subgraph of G by assuming that i1(G) is large enough. Formally: write i1 i2 if there exists a function f : N → N such that, given any k ∈ N, every graph G with i1(G) f (k) has a subgraph H with i2(H) k. If i1 i2 as well as i1 i2, write i1 ∼ i2.
- [Graph Theory (Graduate Texts in Mathematics (173))] Find the smallest integer b = b(k) such that every graph of order n with more than kn + b edges has a (k + 1)-edge- connected subgraph, for every k ∈ N. Show that every tree T has at least Δ(T ) leaves. Show that a tree without a vertex of degree 2 has more leaves than other vertices.
- [Graph Theory (Graduate Texts in Mathematics (173))] For every n > 1, nd a bipartite graph on 2n vertices, ordered in such a way that the greedy algorithm uses n rather than 2 colours. Exercises Consider the following approach to vertex colouring. First, nd a max- imal independent set of vertices and colour these with colour 1; then nd a maximal independent set of vertices in the remaining graph and colour those 2, and so on.
- [Graph Theory (Graduate Texts in Mathematics (173))] Show that, for every r ∈ N, every innite graph of upper density s subgraph for every s ∈ N. Deduce that the upper density of innite graphs can only take r−1 has a K r the countably many values of 0, 1, 1 2 , 2 3 , 3 4 Extremal Graph Theory Given a tree T , nd an upper bound for ex(n, T ) that is linear in n and independent of the structure of T , i. Prove the Erd˝os-S´os conjecture for the case when the tree considered is a star.
- [Graph Theory (Graduate Texts in Mathematics (173))] Colouring Slightly more generally, a class G of graphs is called χ-bounded if there exists a function f : N → N such that χ(G) f (r) for every graph G ⊇ Kr in G. In such graphs, then, we can force a Kr subgraph by making χ larger than f (r). Show that the four colour theorem does indeed solve the map colouring problem stated in the rst sentence of the chapter.
Cognitive Tools Reference
See .claude/skills/math-mode/SKILL.md for full tool documentation.
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