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Exploratory Social Network Analysis 
Ranking
Prestige 
Continuous Scale 
For Each Actor 
Overall Discrete Class  Social Strata  Social Class 
Working, Middle, Upper 
Ranking 
Social Ranking 
Formal e.g. Army 
Informal 
Opinions & Behavior of People toward each other: 
Respect & Deference Vs. Disrespect & Dominance  Sociometry 
Comparison: Deviation of Society from the Official Communication Structure.
Rephrase Balance Theory 
• Symmetric Relationships: DYAD 
• Love 
• Hate 
• Reciprocation! 
• Mutual  Same Strata Same Rank 
• Null  Different Strata Same Rank 
• Asym  Strata Ranking
Triadic Analysis 
M-A-N Number 
M Mutual Dyads 
A Rank Dyads 
N Null Dyads 
[letter] Asymmetric Choices Direction in Same Digits 
Down, Up, Cyclic, Transitive
Stratum Membership 
Ties within Clusters Ties between Ranks Permitted Triads 
Balance 
Symmetric ties 
within a cluster, no 
ties between 
clusters max. two 
clusters 
None 
Clusterability 
Idem no restriction 
on the number of 
clusters 
Idem 
Rank Idem 
Asymmetric ties from 
each vertex to all 
vertices on higher 
ranks 
Transitive Idem 
Null ties may occur 
between ranks 
Hierarchical 
Asymmetric ties 
within a cluster 
allowed provided 
that they are 
acyclic 
Idem +120C, 210 
No Balance 
Theoretic Model 
(Forbidden) 
021C, 111D, 111U, 030C, 201 
+ sign indicates that all triads in previous rows are also permitted
Micro 2 Macro Scope  Triadic Census
Acyclic Network 
GOBeyond Dyads & Triads  Strong Component 
Strong Component Form Mutual Love! 
Each Node in Strong Component has Directed to Others 
Symmetrically 
Ranking in Components 
Shrink Strong Components 
Acyclic Network Asymmetric Love!
Symmetric-Acyclic 
In Strong Component 
Each Step of a Path 
Mutual Dyad.
Triadic Analysis 
Info > Network > Triadic Census 
Acyclic Network 
Net > Components > Strong 
Operations > Shrink Network > Partition 
Symmetric-Acyclic Decomposition 
Net > Hierarchical Decomposition > Symmetric-Acyclic. 
Find the original network vertices in the resulting symmetric acyclic clusters. 
Partitions > Expand

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Exploratory Social Network Analysis: Ranking

  • 1. Exploratory Social Network Analysis Ranking
  • 2. Prestige Continuous Scale For Each Actor Overall Discrete Class  Social Strata  Social Class Working, Middle, Upper Ranking Social Ranking Formal e.g. Army Informal Opinions & Behavior of People toward each other: Respect & Deference Vs. Disrespect & Dominance  Sociometry Comparison: Deviation of Society from the Official Communication Structure.
  • 3. Rephrase Balance Theory • Symmetric Relationships: DYAD • Love • Hate • Reciprocation! • Mutual  Same Strata Same Rank • Null  Different Strata Same Rank • Asym  Strata Ranking
  • 4. Triadic Analysis M-A-N Number M Mutual Dyads A Rank Dyads N Null Dyads [letter] Asymmetric Choices Direction in Same Digits Down, Up, Cyclic, Transitive
  • 5.
  • 6. Stratum Membership Ties within Clusters Ties between Ranks Permitted Triads Balance Symmetric ties within a cluster, no ties between clusters max. two clusters None Clusterability Idem no restriction on the number of clusters Idem Rank Idem Asymmetric ties from each vertex to all vertices on higher ranks Transitive Idem Null ties may occur between ranks Hierarchical Asymmetric ties within a cluster allowed provided that they are acyclic Idem +120C, 210 No Balance Theoretic Model (Forbidden) 021C, 111D, 111U, 030C, 201 + sign indicates that all triads in previous rows are also permitted
  • 7. Micro 2 Macro Scope  Triadic Census
  • 8. Acyclic Network GOBeyond Dyads & Triads  Strong Component Strong Component Form Mutual Love! Each Node in Strong Component has Directed to Others Symmetrically Ranking in Components Shrink Strong Components Acyclic Network Asymmetric Love!
  • 9. Symmetric-Acyclic In Strong Component Each Step of a Path Mutual Dyad.
  • 10. Triadic Analysis Info > Network > Triadic Census Acyclic Network Net > Components > Strong Operations > Shrink Network > Partition Symmetric-Acyclic Decomposition Net > Hierarchical Decomposition > Symmetric-Acyclic. Find the original network vertices in the resulting symmetric acyclic clusters. Partitions > Expand