mammalia-raccoon-proximity     (Dynamic Networks)
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This network dataset is in the category of Dynamic Networks
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Metadata
Category | Animal Social Networks |
Collection | Animal Networks |
About | Real-world animal interaction network data sets. Animal interaction data from published studies of wild, captive, and domesticated animals. |
Tags | |
Source | https://bansallab.github.io/asnr/data.html |
Short | Animal Networks |
Vertex type | Animal, Mammal, raccoon |
Edge type | Interaction |
Format | Undirected |
Edge weights | Weighted |
Species | Procyon lotor |
Taxon. class | Mammalia |
Population | free-ranging |
Geo. location | Illinois, USA |
Data collection | logger |
Interaction type | spatial proximity |
Definition of interaction | Close proximity (within 1Ð1.5m). Any contacts <1 s in duration were excluded. |
Edge weight type | duration |
Data collection duration | 7days |
Time resolution (within a day) | 1 sec |
Time span (within a day) | 24 hours |
Description | Networks represents adjacency matrices constructed for each week of the year |
Citation | Reynolds, Jennifer JH, et al. "Raccoon contact networks predict seasonal susceptibility to rabies outbreaks and limitations of vaccination." Journal of Animal Ecology 84.6 (2015): 1720-1731. |
Edge timestamps | Third column encodes the weights for the edges and the fourth column represents the edge timestamps. If the graph is unweighted (has only 3 columns), then the third column represents the timestamps.For this temporal network, edge timestamps are not recorded at the finest granularity (sec. or ms.) and are instead discrete approximations of the actual temporal network. Unfortunately, the actual edge timestamps, that is, when the interactions were actually observed (e.g., at the level of seconds) has not been provided.Hence, one can create a sequence of static snapshot graphs by aggregating all edges that occur at each unique edge timestamp and repeating this for all edge timestamps. |
Please cite the following if you use the data:
Note that if you transform/preprocess the data, please consider sharing the data by uploading it along with the details on the transformation and reference to any published materials using it.
@inproceedings{nr,
title={The Network Data Repository with Interactive Graph Analytics and Visualization},
author={Ryan A. Rossi and Nesreen K. Ahmed},
booktitle={AAAI},
url={https://networkrepository.com},
year={2015}
}
Network Data Statistics
Nodes | 24 |
Edges | 2K |
Density | 7.23551 |
Maximum degree | 280 |
Minimum degree | 14 |
Average degree | 166 |
Assortativity | 0.0761359 |
Number of triangles | 366K |
Average number of triangles | 15.3K |
Maximum number of triangles | 26.3K |
Average clustering coefficient | 1.46537 |
Fraction of closed triangles | 0.899424 |
Maximum k-core | 133 |
Lower bound of Maximum Clique | 17 |
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