;; Create nodes. to setup clear-all create-turtles num-nodes [ set shape "circle" setxy random-xcor random-ycor ] reset-ticks end ;; Ask each node to create a link with a random other node. ;; Results in "just under" NUM-NODES links because no new link is created ;; if a node tries to connect to a node with which it is already linked. to wire1 ask links [ die ] ask turtles [ create-link-with one-of other turtles ] update-plots end ;; Pick a random node and ask it to create a link with a random other node. ;; Results in "just under" NUM-NODES links because no new link is created ;; if a node tries to connect to a node with which it is already linked. to wire2 ask links [ die ] repeat num-nodes [ ask one-of turtles [ create-link-with one-of other turtles ] ] update-plots end ;; This is the classic Erdős-Rényi random network. ;; It uses WHILE to ensure we get NUM-LINKS links. to wire3 ask links [ die ] while [ count links < num-links ] [ ask one-of turtles [ create-link-with one-of other turtles ] ] update-plots end ;; A variant of the classic Erdős-Rényi where each possible pair of nodes ;; gets a chance to create a link between them with a specified probability. to wire4 let min-degree min [count link-neighbors] of turtles let max-degree max [count link-neighbors] of turtles ask links [ die ] ask turtles [ ask turtles with [ who > [ who ] of myself ] [ if random-float 1.0 < wiring-prob [ create-link-with myself ] ] ] update-plots end ; Copyright 2008 Uri Wilensky. ; See Info tab for full copyright and license. @#$#@#$#@ GRAPHICS-WINDOW 210 10 647 448 -1 -1 13.0 1 10 1 1 1 0 0 0 1 -16 16 -16 16 1 1 1 ticks 30.0 SLIDER 10 10 180 43 num-nodes num-nodes 0 200 89.0 1 1 NIL HORIZONTAL SLIDER 10 185 182 218 num-links num-links 0 min (list (num-nodes * (num-nodes - 1) / 2) 1000) 1000.0 1 1 NIL HORIZONTAL BUTTON 10 90 180 123 NIL wire1 NIL 1 T OBSERVER NIL NIL NIL NIL 0 MONITOR 7 421 68 466 max-deg max [count link-neighbors] of turtles 1 1 11 BUTTON 10 130 180 163 NIL wire2 NIL 1 T OBSERVER NIL NIL NIL NIL 0 BUTTON 10 320 180 353 NIL wire4 NIL 1 T OBSERVER NIL NIL NIL NIL 0 SLIDER 10 280 182 313 wiring-prob wiring-prob 0 1 0.4 .01 1 NIL HORIZONTAL MONITOR 144 421 201 466 #links count links 1 1 11 BUTTON 10 225 180 258 NIL wire3 NIL 1 T OBSERVER NIL NIL NIL NIL 0 MONITOR 74 421 140 466 min-deg min [count link-neighbors] of turtles 1 1 11 PLOT 665 10 940 215 degree distribution degree num nodes 0.0 1.0 0.0 1.0 true false "" "" PENS "default" 1.0 0 -16777216 true "" "let max-degree max [count link-neighbors] of turtles\nplot-pen-reset ;; erase what we plotted before\n;;set-plot-x-range 1 (max-degree + 1) ;; + 1 to make room for the width of the last bar\n;histogram [count link-neighbors] of turtles\nlet degree 1\nwhile [degree <= max-degree] [\n let matches turtles with [count link-neighbors = degree]\n if any? matches\n [ plotxy degree\n (count matches) ]\n set degree degree + 1\n ]" PLOT 665 250 940 460 degree distribution log-log log (degree) log (num nodes) 0.0 1.0 0.0 1.0 true false "" "" PENS "default" 1.0 0 -16777216 true "" "let max-degree max [count link-neighbors] of turtles\n;; for this plot, the axes are logarithmic, so we can't\n;; use \"histogram-from\"; we have to plot the points\n;; ourselves one at a time\nplot-pen-reset ;; erase what we plotted before\n;; the way we create the network there is never a zero degree node,\n;; so start plotting at degree one\nlet degree 1\nwhile [degree <= max-degree] [\n let matches turtles with [count link-neighbors = degree]\n if any? matches\n [ plotxy log degree 10\n log (count matches) 10 ]\n set degree degree + 1\n]" BUTTON 10 50 180 83 NIL setup NIL 1 T OBSERVER NIL NIL NIL NIL 1 @#$#@#$#@ ## ACKNOWLEDGMENT This model is from Chapter Five of the book "Introduction to Agent-Based Modeling: Modeling Natural, Social and Engineered Complex Systems with NetLogo", by Uri Wilensky & William Rand. * Wilensky, U. & Rand, W. (2015). Introduction to Agent-Based Modeling: Modeling Natural, Social and Engineered Complex Systems with NetLogo. Cambridge, MA. MIT Press. This model is in the IABM Textbook folder of the NetLogo Models Library. The model, as well as any updates to the model, can also be found on the textbook website: http://www.intro-to-abm.com/. ## WHAT IS IT? The theory of random networks was first introduced by mathematicians Paul Erdős and Alfréd Rényi in 1959. There are several different models for random networks. The most well known are two variants called Erdős–Rényi networks. This model shows four different ways to create random networks, 2 of which create the variants of the classic Erdős–Rényi networks. ## HOW IT WORKS SETUP creates NUM-NODES turtles and gives them a random location in the world. There are four different wiring methods illustrated: 1. WIRE1: Each turtle asks one other turtle to link to it. 2. WIRE2: Pick a random turtle and ask it to try to link to another random turtle. This is done NUM-NODES times. 3. WIRE3: The classic Erdős–Rényi random network. Creates exactly NUM-LINKS links. 4. WIRE4: A variant of the classic Erdős–Rényi random network. For each pair of turtles, creates a link between them wth probability WIRING-PROB. ## HOW TO USE IT Press SETUP to create the nodes. Pressing any of the WIRE buttons will create random networks using the different algorithms. For a classic Erdős–Rényi random network, set the NUM-LINKS slider and then press WIRE3 to create that number of links in your network. For a variant of the Erdős–Rényi random network that has a fixed probability for each pair of nodes to have a link, you can set the WIRING-PROB slider and then press WIRE4. There are three monitors: 1. MAX-DEG shows the degree of the node with the most links. 2. MIN-DEG shows the degree of the node with the least links. 3. The #LINKS monitor shows the total number of links in the network. ## THINGS TO NOTICE For each of the four wiring methods, what kind of structure does the resulting network have? Does each method produce the same number of links each time? How do the MIN-DEGREE and MAX-DEGREE vary across the wiring methods? ## THINGS TO TRY For the two variants of the Erdős–Rényi random network, do the min and max degrees follow the number of links proportionally? Can you think of why or why not? ## EXTENDING THE MODEL Use the bundled [NetLogo network extension](http://ccl.northwestern.edu/netlogo/docs/nw.html) and run some basic network metrics on the various random networks. Are they structurally similar? If not, how are they different? ## RELATED MODELS See other models in the Networks section of the Models Library, such as Preferential Attachment. See also Network Example, in the Code Examples section of the Models Library. ## NETLOGO FEATURES Nodes are turtle agents and edges are link agents. The maximum value for the NUM-LINKS slider is dynamic. This is done in order to prevent the model from ending up in an infinite while-loop in the WIRE3 procedure. The maximum value is either 1000, or the (number of nodes * the number of nodes / 2), whichever is smaller. Though it is not used in this model, there exists a [network extension for NetLogo](http://ccl.northwestern.edu/netlogo/docs/nw.html) (bundled with NetLogo) that has many more network primitives. Finally, in the WIRE4 procedure, we use the following code to loop through each pair of turtles: ask turtles [ ask turtles with [ who > [ who ] of myself ] [ ;; do something for that pair of turtles ] ] This is of the few situations where using the WHO number (which uniquely identifies a turtle) can be handy: by having each turtle from the outer loop asking only turtles with a greater WHO number than itself in the inner loop, we make sure that each possible pair of turtles if considered only once. ## HOW TO CITE This model is part of the textbook, “Introduction to Agent-Based Modeling: Modeling Natural, Social and Engineered Complex Systems with NetLogo.” If you mention this model or the NetLogo software in a publication, we ask that you include the citations below. For the model itself: * Wilensky, U., Rand, W. (2008). NetLogo Random Network model. http://ccl.northwestern.edu/netlogo/models/RandomNetwork. Center for Connected Learning and Computer-Based Modeling, Northwestern Institute on Complex Systems, Northwestern University, Evanston, IL. Please cite the NetLogo software as: * Wilensky, U. (1999). NetLogo. http://ccl.northwestern.edu/netlogo/. Center for Connected Learning and Computer-Based Modeling, Northwestern University, Evanston, IL. Please cite the textbook as: * Wilensky, U. & Rand, W. (2015). Introduction to Agent-Based Modeling: Modeling Natural, Social and Engineered Complex Systems with NetLogo. Cambridge, MA. MIT Press. ## COPYRIGHT AND LICENSE Copyright 2008 Uri Wilensky. ![CC BY-NC-SA 3.0](http://ccl.northwestern.edu/images/creativecommons/byncsa.png) This work is licensed under the Creative Commons Attribution-NonCommercial-ShareAlike 3.0 License. To view a copy of this license, visit https://creativecommons.org/licenses/by-nc-sa/3.0/ or send a letter to Creative Commons, 559 Nathan Abbott Way, Stanford, California 94305, USA. Commercial licenses are also available. To inquire about commercial licenses, please contact Uri Wilensky at uri@northwestern.edu. @#$#@#$#@ default true 0 Polygon -7500403 true true 150 5 40 250 150 205 260 250 airplane true 0 Polygon -7500403 true true 150 0 135 15 120 60 120 105 15 165 15 195 120 180 135 240 105 270 120 285 150 270 180 285 210 270 165 240 180 180 285 195 285 165 180 105 180 60 165 15 arrow true 0 Polygon -7500403 true true 150 0 0 150 105 150 105 293 195 293 195 150 300 150 box false 0 Polygon -7500403 true true 150 285 285 225 285 75 150 135 Polygon -7500403 true true 150 135 15 75 150 15 285 75 Polygon -7500403 true true 15 75 15 225 150 285 150 135 Line -16777216 false 150 285 150 135 Line -16777216 false 150 135 15 75 Line -16777216 false 150 135 285 75 bug true 0 Circle -7500403 true true 96 182 108 Circle -7500403 true true 110 127 80 Circle -7500403 true true 110 75 80 Line -7500403 true 150 100 80 30 Line -7500403 true 150 100 220 30 butterfly true 0 Polygon -7500403 true true 150 165 209 199 225 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