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I would like to find node connectivity between node 1 and rest of the nodes in a graph. The input text file format is as follows:

1 2 1
1 35 1
8 37 1

and so on for 167 lines. First column represents source node, second column represents destination node while the last column represents weight of the edge.

I'm trying to read the source, destination nodes from input file and forming an edge between them. I need to then find out if it is a connected network (only one component of graph and no sub-components). Here is the code

from numpy import*
import networkx as nx
G=nx.empty_graph()

for row in file('out40.txt'):
    row = row.split()
    src = row[0]
    dest = row[1]
    #print src
    G.add_edge(src, dest)
    print src, dest

for i in range(2, 41):
    if nx.bidirectional_dijkstra(G, 1, i): print "path exists from 1 to ", i

manually adding the edges using

G.add_edge(1, 2)

works but is tedious and not suitable for large input files such as mine. The if loop condition works when I add edges manually but throws the following error for the above code:

in neighbors_iter
raise NetworkXError("The node %s is not in the graph."%(n,))
networkx.exception.NetworkXError: The node 2 is not in the graph.

Any help will be much appreciated!

share|improve this question
up vote 2 down vote accepted

In your code, you're adding nodes "1" and "2" et cetera (since reading from a file is going to give you strings unless you explicitly convert them).

However, you're then trying to refer to nodes 1 and 2. I'm guessing that networkx does not think that 2 == "2".

Try changing this...

G.add_edge(src, dest)

to this:

G.add_edge(int(src), int(dest))
share|improve this answer
    
Thank you! It worked. – bhanu Oct 10 '11 at 20:46
    
@bhanu: If this is the right solution for you, please mark it as such (and vote the useful answers up) – Rabarberski Oct 10 '11 at 20:50
    
@Rabarberski I did that! Thank you. – bhanu Oct 10 '11 at 20:52

Not sure if that is an option for you, but are you aware of the build-in support of networkx for multiple graph text formats?

The edge list format seems to apply pretty well to your case. Specifically, the following method will read your input files without the need for custom code:

G = nx.read_weighted_edgelist(filename)

If you want to remove the weights (because you don't need them), you could subsequently do the following:

for e in G.edges_iter(data=True):
    e[2].clear()                   #[2] is the 3rd element of the tuple, which 
                                   #contains the dictionary with edge attributes
share|improve this answer
    
Thank you, I haven't looked in to it. I will explore this. – bhanu Oct 10 '11 at 20:48
    
I've edited my answer, the read_weighted_edgelist() method is exactly what you need I think. – Rabarberski Oct 10 '11 at 20:59
    
Great! I think I will use this in future when I work with weighted edges. Currently, working with un-weighted edges. Thank you! – bhanu Oct 10 '11 at 22:24
    
I've added two lines of code to clear the weights – Rabarberski Oct 11 '11 at 6:48
    
Thank you, that really helped! – bhanu Oct 11 '11 at 12:38

From Networkx documentation:

for row in file('out40.txt'):
    row = row.split()
    src = row[0]
    dest = row[1]
    G.add_nodes_from([src, dest])
    #print src
    G.add_edge(src, dest)
    print src, dest

The error message says the the graph G doesn't have the nodes you are looking to create an edge in between.

share|improve this answer
    
Amber answered it! I did not typecast it to integer. Thanks! – bhanu Oct 10 '11 at 20:46

You can also use "is_connected()" to make this a little simpler. e.g.

$ cat disconnected.edgelist
1 2 1
2 3 1
4 5 1
$ cat connected.edgelist 
1 2 1
2 3 1
3 4 1
$ ipython

In [1]: import networkx as nx

In [2]: print(nx.is_connected(nx.read_weighted_edgelist('disconnected.edgelist')))
False

In [3]: print(nx.is_connected(nx.read_weighted_edgelist('connected.edgelist')))
True
share|improve this answer
    
Thanks @aric, I'm using 'nx.number_connected_components(G)' to find if a graph is connected or not. However, I would like to know if there is a way to join two disconnected components of a graph. Are you aware of any approach? Thank you. – bhanu Oct 11 '11 at 12:42

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