source: experiments/frams/foraminifera/data/scripts/foraminifera.expdef @ 487

Last change on this file since 487 was 487, checked in by oriona, 8 years ago

Method for definig new species added.

File size: 26.3 KB
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1expdef:
2name:Reproduction of benthic foraminifera
3info:~
4Basic information about this simulation:
5www.framsticks.com/foraminifera
6
7Technical information:
8Genes and parameter values which control reproduction are stored in data->genes and data->lifeparams fields.
9
10genes:
11genes which are not encoded in Ff genotype:
12min_repro_energy - Minimum energy necessary for reproduction
13hibernation - Defines foram behavior in the case of no nutrients
14
15lifeparams:
16Physiological parameters of foraminifera:
17max_energy_level - maximum energy level reached so far
18gen - generation: 0 haploid, 1 diploid
19species - species: 0 not hibernating 1 hibernating
20hibernated - 0/1 foram is/isn't hibernated
21reproduce - 0/1 foram isn't/is ready for reproduction
22~
23code:~
24
25global chambers;
26global colors;
27global dir_change;
28global max_chamber_volume;
29global movePerStep;
30global nutrientenergywaiting;
31global o;
32global reprocounter;
33global changePeriod;
34global phase;
35global species_genes;
36
37@include "foraminifera.inc"
38
39// -------------------------------- experiment begin --------------------------------
40
41function onExpDefLoad()
42{
43        // define genotype and creature groups
44        GenePools.clear();
45        Populations.clear();
46        GenePools[0].name = "Unused";
47
48        var pop = Populations[0];
49        pop.name = "Forams";
50        pop.en_assim = 0;
51        pop.nnsim = 0;
52        pop.enableperf = 1;
53        pop.death = 1;
54        pop.energy = 1;
55        pop.selfmask = 0;
56        pop.othermask = 0;
57        //pop.selfmask = 0x20002; pop.othermask = 0x10002;
58        pop.perfperiod = 25;
59        pop.bodysim = 0;
60
61        pop = Populations.addGroup("Nutrients");
62        pop.nnsim = 0;
63        pop.enableperf = 0;
64        pop.death = 1;
65        pop.energy = 1;
66        pop.selfmask = 0;
67        pop.othermask = 0;
68        //pop.othermask = 0x10002;
69        pop.bodysim = 0;
70
71        pop = Populations.addGroup("ReticulopodiaNutrients");
72        pop.nnsim = 0;
73        pop.enableperf = 0;
74        pop.death = 0;
75        pop.energy = 0;
76        pop.selfmask = 0;
77        pop.othermask = 0;
78        pop.bodysim = 0;
79
80        //world
81        SignalView.mode = 1;
82        World.wrldwat = 200;
83        World.wrldsiz = micronsToFrams(40000);
84        World.wrldbnd = 1;
85        ExpProperties.stress = 1;
86        ExpProperties.creath = -0.99; //just above the bottom
87        ExpProperties.autorestart = 0;
88
89        //time
90        ExpProperties.secPerStep = 480;
91        ExpProperties.foramSpeedMmPerMin = 0.05;
92        movePerStep = getMovePerStep();
93
94        //ExpProperties.visualize = 1; //uncomment to visualize reticulopodia and indicate nutrients positions
95
96        //ExpProperties.logging = 1; //uncomment to enable logging simulation parameters to log files   
97
98        //reproduction
99        ExpProperties.foramPop = 20;   
100        ExpProperties.crossprob = 0;
101        ExpProperties.mutationprob = 0;
102        ExpProperties.repro_time = 720;
103        ExpProperties.gametoPeriod = 43200;
104        ExpProperties.divisionCost = 15.6;
105        reprocounter = 0;
106
107        species_genes = [];
108
109        init_chambers();
110
111        //morphology
112        dir_change = 30000;
113        ExpProperties.zone1_range = micronsToFrams(1000);
114        ExpProperties.zone2_range = micronsToFrams(3000);
115        ExpProperties.chamber_growth_time = 720;
116        ExpProperties.chamberCostPerSec = 0.000001;
117        ExpProperties.chamber_proculus_haplo = micronsToFrams(50);
118        ExpProperties.chamber_difference_haplo = 0.0;
119        ExpProperties.chamber_proculus_diplo = micronsToFrams(20);
120        ExpProperties.chamber_difference_diplo = micronsToFrams(8);
121
122        max_chamber_volume = [Vector.new(), Vector.new()];
123        for (var j = 0; j < 2; j++)
124        {
125                for (var i = 0; i < chambers[0].size; i++)
126                {
127                        max_chamber_volume[j].add(((volumeInMicrons(getProperty(j, "chamber_proculus")) + volumeInMicrons(getProperty(j, "chamber_proculus") + (i) * getProperty(j, "chamber_difference")))*(i+1))/2); 
128                }                                 
129        }
130
131        //energetics
132        ExpProperties.min_repro_energ_haplo = 4;
133        ExpProperties.min_repro_energ_diplo = 6;
134
135        ExpProperties.e_meta = 0.0000005;
136        ExpProperties.energy_hib = 0.0000001;
137        ExpProperties.energy_move = 0.0000005;
138
139        ExpProperties.energies0_haplo = energyFromVolume(micronsToFrams(20),1);
140        ExpProperties.energies0_diplo = energyFromVolume(micronsToFrams(1.25),1);
141        ExpProperties.feedtrans = 0.001;
142        ExpProperties.e_repro_cost_haplo = 0.3;
143        ExpProperties.e_repro_cost_diplo = 0.2;
144
145        ExpProperties.e_death_level_haplo = 0.5;
146        ExpProperties.e_death_level_diplo = 0.5;
147
148        //nutrients
149        changePeriod = 0;
150        phase = "high";
151        ExpProperties.foodperiod = 3600;
152        ExpProperties.foodPeriodChange = 0;
153        ExpProperties.nutrientradius = micronsToFrams(10);
154        ExpProperties.energy_nut = energyFromVolume(ExpProperties.nutrientradius,1);
155        ExpProperties.feedrate = 1;
156        ExpProperties.ingestion = 0.25;
157        nutrientenergywaiting = 0;
158        ExpState.totaltestedcr = 0;
159        ExpState.nutrient = "";
160}
161
162@include "standard_placement.inc"
163
164function volumeInMicrons(radiusInFrams)
165{
166        return 4.0/3.0*Math.pi*Math.pow(framsToMicrons(radiusInFrams),3);
167}
168
169function energyFromVolume(base, isRadiusInFrams)
170{
171        if (isRadiusInFrams == 1) //radius in frams
172        {
173                return ExpProperties.picoCarbonPerMikro*volumeInMicrons(base);
174        }
175        else //volume in microns
176        {
177                return ExpProperties.picoCarbonPerMikro * base;
178        }
179}
180
181function getMovePerStep()
182{
183        return micronsToFrams((ExpProperties.foramSpeedMmPerMin/60)*1000)*ExpProperties.secPerStep;
184}
185
186function micronsToFrams(micrometers)
187{
188        return micrometers*0.025;
189}
190
191function framsToMicrons(framsworldunits)
192{
193        return framsworldunits/0.025;
194}
195
196function getProperty(gen, prop_id)
197{
198        var ploid = "haplo";
199        if (gen == 1) ploid = "diplo";
200        return ExpProperties.[prop_id + "_" + ploid];
201}
202
203function getGene(cr, gen_id, gen_set)
204{
205        if (cr.data->lifeparams->gen == 0)
206                return cr.data->genes[gen_id];
207        else
208                return cr.data->genes[gen_set][gen_id];
209}
210
211function addForam(species, iter, chambernum, ploid)
212{
213        var geno = createForamMorphology(species_genes[species]->morphotype, ploid, chambernum);
214        var cr = Populations[0].add(geno);
215        cr.name = "Initial creature" + species + "_" + iter;
216        placeCreatureRandomly(cr, 0, 0);
217        cr.energy0 = energyFromVolume(max_chamber_volume[ploid][chambernum],0);
218        cr.energy = cr.energy0;
219        setGenotype({"opt" : 0, "cr" : cr, "species" : species, "energy0" : cr.energy0, "genes" : species_genes[species]});
220        if (ploid == 1)
221        {
222                cr.data->lifeparams->gen = 1;
223                cr.data->genes = [cr.data->genes, cr.data->genes]; //TODO two different genes sets
224        }
225}
226
227function addInitialForam(species, iter)
228{
229        var ploid = 0;
230        if (Math.rnd01 > 0.5)
231        {
232                ploid = 1;
233        }       
234        //add new foram with random energy bewtween starting energy and reproduction treshold
235        addForam(species, iter, Math.rndUni(0,species_genes[species]->min_repro_energies[ploid]),ploid);
236}
237
238//new species can be added as a dictionary with parameter values that are different than default values
239function addSpecies(new_genes)
240{
241        species_genes.add({"min_repro_energies" : [4,6], "energies0" : [20, 1.25], "hibernation" : 0, "morphotype" : 0});
242        for (var i = 0; i < new_genes.size; i++)
243        {
244                var key = new_genes.getKey(i);
245                species_genes[species_genes.size-1][key] = new_genes[key];
246        }
247}
248
249function onExpInit()
250{
251        Populations[0].clear();
252        Populations[1].clear();
253        Populations[2].clear(); //reticulopodia and nutrients
254
255        if (species_genes.size == 0)
256        {
257                addSpecies({}); //default
258        }
259
260        for (var spec = 0; spec < species_genes.size; spec++)
261        {
262                for (var i = 0; i < ExpProperties.foramPop; i++)
263                {
264                        addInitialForam(spec, i);       
265                }
266        }
267        o = Populations[0][0].getMechPart(0).orient.clone();
268        ExpState.totaltestedcr = 0;
269}
270
271function onExpLoad()
272{
273        for (var pop in Populations)
274                pop.clear();
275
276        Loader.addClass(sim_params.*);
277        Loader.setBreakLabel(Loader.BeforeUnknown, "onExpLoad_Unknown");
278        Loader.run();
279
280        Simulator.print("Loaded " + Populations[0].size + " Forams and " + Populations[1].size + " nutrient objects");
281}
282
283function onExpLoad_Unknown()
284{
285        if (Loader.objectName == "org") // saved by the old expdef
286        {
287                var g = Genotype.newFromString("");
288                Loader.currentObject = g;
289                Interface.makeFrom(g).setAllDefault();
290                Loader.loadObject();
291                var cr = Populations[0].add(g);
292                if (cr != null)
293                {
294                        //cr.rotate(0,0,Math.rnd01*Math.twopi);
295                        if ((typeof(g.data->genes) == "Vector") && (g.data->genes.size >= 3))
296                        {
297                                // [x,y,energy]
298                                cr.move(g.data->genes[0] - cr.center_x, g.data->genes[1] - cr.center_y, 0);
299                                cr.energy = g.data->genes[2];
300                        }
301                        else
302                        {
303                                cr.move(Math.rnd01 * World.wrldsiz - cr.center_x, Math.rnd01 * World.wrldsiz - cr.center_y, 0);
304                        }
305                }
306        }
307        else if (Loader.objectName == "Creature")
308        {
309                Loader.currentObject = CreatureSnapshot.new();
310                Loader.loadObject();
311                Populations[0].add(Loader.currentObject);
312        }
313}
314
315function onExpSave()
316{
317        File.writeComment("saved by '%s.expdef'" % Simulator.expdef);
318
319        var tmpvec = [], i;
320
321        for(var cr in Populations[1])
322                tmpvec.add([cr.center_x, cr.center_y, cr.energy]);
323
324        ExpState.nutrient = tmpvec;
325        File.writeObject(sim_params.*);
326        ExpState.nutrient = null; //vectors are only created for saving and then discarded
327
328        for (var cr in Populations[0])
329                File.writeObject(cr);
330}
331
332// -------------------------------- experiment end --------------------------------
333
334// -------------------------------- foram begin -----------------------------------
335
336function setForamMeta(cr)
337{
338        //percent of current energy
339        cr.idleen = (ExpProperties.e_meta * cr.energy)*ExpProperties.secPerStep;
340}
341
342function lastChamberNum(cr)
343{
344        return cr.numparts-1;
345}
346
347function getZoneRange(cr, zone_num)
348{
349        return ExpProperties.["zone"+zone_num+"_range"];
350}
351
352function onForamsBorn(cr)
353{
354        setForamMeta(cr);
355        if (ExpProperties.visualize == 1)
356        {
357                var ret = Populations[2].add("//0\np:sh=3,sx=0.01,sy="+getZoneRange(cr,1)+",sz="+getZoneRange(cr,1)+",ry=1.57,vr=1.0,1.0,1.0");
358                cr.data->reticulopodiacreature = ret;
359        }
360}
361
362function placeRandomlyNotColliding(cr)
363{
364        var retry = 100; //try 100 times
365        while (retry--)
366        {
367                placeCreatureRandomly(cr, 0, 0);
368                if (!cr.boundingBoxCollisions(0))
369                        return cr;
370        }
371
372        Populations[0].delete(cr);
373}
374
375function visualization(cr)
376{
377        var has_ret = 0;
378
379        if (cr.data->reticulopodiacreature != null)
380        {
381                if (Populations[2].findUID(cr.data->reticulopodiacreature.uid) != null)
382                {
383                        has_ret = 1;
384                }
385        }
386
387        return has_ret;
388}
389
390function foramGrow(cr, chamber_num)
391{
392        if ((chamber_num+1) < chambers[cr.data->lifeparams->species].size)
393        {
394                var geno = createForamMorphology(getGene(cr, "morphotype", 0), cr.data->lifeparams->gen, chamber_num+1);
395                var cr2 = Populations[0].add(geno);
396
397                cr2.energy0 = cr.energy;
398                cr2.energy = cr2.energy0;
399
400                setGenotype({"cr" : cr2, "parent_genes" : cr.data->genes, "parent_lifeparams" : cr.data->lifeparams, "opt" : 2, "energy0" : cr.energy0});
401                cr2.moveAbs(cr.center_x - cr2.size_x / 2, cr.center_y - cr2.size_y / 2, cr.pos_z);
402                setForamMeta(cr2);
403
404                if (visualization(cr))
405                {
406                        Populations[2].delete(cr.data->reticulopodiacreature);
407                }
408                Populations[0].delete(cr);
409        }
410}
411
412function stepToNearest(cr)
413{
414        var p = cr.getMechPart(0);
415        var n = cr.signals.receiveSet("nutrient", getZoneRange(cr,2));
416
417        //if signals are received find the source of the nearest
418        if (n.size > 0)
419        {
420                var i;
421                var mp;
422                var distvec = XYZ.new(0, 0, 0);
423                var dist;
424                var mindist = 100000000000.0;
425                var mindistvec = null;
426                var eating = 0;
427
428                for (i = 0; i < n.size; i++)
429                {
430                        mp = n[i].value.getMechPart(0);
431                        distvec.set(mp.pos);
432                        distvec.sub(p.pos);
433                        dist = distvec.length;
434                        if (dist < getZoneRange(cr,1))
435                        {
436                                if (n[i].value != null)
437                                {
438                                        energyTransfer(cr, n[i].value);
439                                        eating = 1;
440                                }
441                        }
442                        else if (eating == 0 && cr.data->lifeparams->hibernated == 0 && dist < mindist)
443                        {
444                                mindist = dist;
445                                mindistvec = distvec.clone();
446                        }
447                }
448
449                if (!eating && cr.data->lifeparams->hibernated == 0)
450                {
451                        mindistvec.normalize();
452                        mindistvec.scale(-1*movePerStep);
453                        cr.localDrive = mindistvec;
454                        moveEnergyDec(cr);
455                }
456
457                return 1;
458        }
459       
460        else
461        {
462                return 0;
463        }
464}
465
466function moveEnergyDec(cr)
467{
468        if (cr.data->lifeparams->hibernated == 0)
469        {
470                //percent of maximal energy
471                cr.energy_m += (ExpProperties.energy_move * cr.data->lifeparams->max_energy_level)*ExpProperties.secPerStep;
472        }
473}
474
475function fence(pos)
476{
477        return Math.min(Math.max(0,pos),World.wrldsiz);
478}
479
480function foramMove(cr)
481{
482        //TODO moving inside sediment?
483
484        //adjustment in z axis
485        cr.moveAbs(fence(cr.pos_x), fence(cr.pos_y), 0);
486
487        //are there any nutrients in zone 1 or 2?
488        {
489                var moved = stepToNearest(cr); //TODO weighted sum of distance and energy
490                if (moved==1)
491                {
492                        return;
493                }
494        }
495
496        //no nutrients in zone 2
497        if (getGene(cr, "hibernation",0) == 1)
498        {
499                reverseHib(cr);
500                cr.localDrive = XYZ.new(0,0,0);
501        }
502        //random move
503        else if (Simulator.stepNumber%int(dir_change/ExpProperties.secPerStep) == 0)
504        {
505                cr.data->lifeparams->dir = randomDir();
506                cr.localDrive = cr.data->lifeparams->dir;
507                moveEnergyDec(cr);
508        }
509        else
510        {
511                cr.localDrive = cr.data->lifeparams->dir;
512        }
513}
514
515function randomDir()
516{
517        var dir = (Math.rndUni(-ExpProperties.zone2_range, ExpProperties.zone2_range), Math.rndUni(-ExpProperties.zone2_range, ExpProperties.zone2_range), 0); 
518        dir.normalize();
519        dir.scale(-1*movePerStep);
520        return dir;
521}
522
523function energyTransfer(cr1, cr2)
524{
525        cr1.localDrive = XYZ.new(0,0,0);
526        var e =  ExpProperties.feedtrans*cr1.energy;//ExpProperties.feedtrans*cr1.energy*ExpProperties.ingestion*ExpProperties.secPerStep; //TODO efficiency dependent on age
527        e = Math.min(cr2.energy, e);
528        e *= ExpProperties.secPerStep;
529        //Simulator.print("transferring "+e +"("+e*ExpProperties.ingestion+")"+" to "+cr1.name +" ("+ cr1.energy+") " +" from "+cr2.name+" ("+cr2.energy+") "+ e/ExpProperties.secPerStep+ " per sec");
530        cr2.energy_m = cr2.energy_m + e + 0.0000001;
531        cr1.energy_p = cr1.energy_p + e*ExpProperties.ingestion;
532        if (cr1.data->lifeparams->hibernated == 1)
533        {
534                reverseHib(cr1);
535        }
536}
537
538function reverseHib(cr)
539{
540        if (cr.data->lifeparams->hibernated == 1)
541        {
542                setForamMeta(cr); //unhibernate
543        }
544        else
545        {
546                cr.idleen = (ExpProperties.energy_hib * cr.energy)*ExpProperties.secPerStep; //hibernate
547        }
548        cr.data->lifeparams->hibernated = 1 - cr.data->lifeparams->hibernated;
549}
550
551
552function onForamsStep(cr)
553{
554        //checking for gametogenesis process
555        if (cr.data->lifeparams->division_time > 0)
556        {
557                cr.data->lifeparams->division_time = Math.max(cr.data->lifeparams->division_time-1,0);
558        }
559        //checking for end of gametogenesis
560        else if (cr.data->lifeparams->division_time == 0)
561        {
562                //waiting for gamets fusion
563        }
564        //checking for chamber growth process
565        else if (cr.data->lifeparams->chamber_growth > 0)
566        {
567                cr.data->lifeparams->chamber_growth = Math.max(cr.data->lifeparams->chamber_growth-1,0);
568                //Simulator.print("chamber growing, time left = " + cr.data->lifeparams->chamber_growth*ExpProperties.secPerStep);
569                cr.energy_m += ExpProperties.chamberCostPerSec * cr.energy * ExpProperties.secPerStep;
570
571                //Simulator.print("energy " + cr2.energy + " subtracting " + growth_cost);
572        }
573        //checking for end of chamber growth process
574        else if (cr.data->lifeparams->chamber_growth == 0)
575        {
576                foramGrow(cr, lastChamberNum(cr));
577                cr.data->lifeparams->chamber_growth = -1;
578                //Simulator.print("chamber "+ (lastChamberNum(cr) + 1) +" complete");
579        }
580        else
581        {
582                //update of metabolism rate
583                if (cr.data->lifeparams->hibernated == 0)
584                {
585                        setForamMeta(cr);
586                }
587
588                cr.getMechPart(0).orient.set(o);
589                if (visualization(cr))
590                {
591                        cr.data->reticulopodiacreature.moveAbs(cr.center_x-getZoneRange(cr,1), cr.center_y-getZoneRange(cr,1), cr.center_z-getZoneRange(cr,1)-getProperty(cr.data->lifeparams->gen, "chamber_proculus"));
592                }
593
594                if (deathConditions(cr) == 1)
595                {
596                        Populations[0].kill(cr);
597                        return;
598                }
599
600                foramMove(cr);
601
602                var repro = foramReproduce(cr);
603                if (repro == 1)
604                {
605                        return;
606                }
607
608                cr.data->lifeparams->max_energy_level = Math.max(cr.energy, cr.data->lifeparams->max_energy_level);
609
610                //cheking conditions of chamber growth process start
611                if  (lastChamberNum(cr) != chambers[0].size-1)
612                {
613                        if ((cr.data->lifeparams->max_energy_level >= energyFromVolume(max_chamber_volume[cr.data->lifeparams->gen][lastChamberNum(cr)],0)))   
614                        {
615                                cr.data->lifeparams->chamber_growth = int(ExpProperties.chamber_growth_time/ExpProperties.secPerStep);
616                        }       
617                }
618        }       
619}
620
621function deathConditions(cr)
622{
623        if ((cr.energy <= getProperty(cr.data->lifeparams->gen,"e_death_level")*cr.data->lifeparams->max_energy_level) || (Math.rnd01 < ExpProperties.hunted_prob))
624        {
625                return 1;
626        }
627        else
628                return 0;
629}
630
631function onForamsDied(cr)
632{
633        if (visualization(cr))
634        {
635                Populations[2].delete(cr.data->reticulopodiacreature);
636        }
637        //fossilization
638        var geno = GenePools[0].add(cr.genotype);
639        geno.data->genes = cr.data->genes;
640        geno.data->lifeparams = cr.data->lifeparams;
641        if (ExpProperties.logging == 1) Simulator.print("\"" + cr.name + "\" died...");
642        ExpState.totaltestedcr++;
643}
644
645// --------------------------------foram end -------------------------------------
646
647// -------------------------------- nutrient begin --------------------------------
648
649function createNutrientGenotype(nutrientradius)
650{
651        return "//0\np:sh=3,sx="+nutrientradius+",sy="+nutrientradius+",sz="+nutrientradius+",ry=1.5,vr=0.0,1.0,0.0";
652}
653
654function onNutrientsStep(cr)
655{
656        cr.moveAbs(cr.pos_x % World.wrldsiz, cr.pos_y % World.wrldsiz, 0.5);
657}
658
659function addNutrient()
660{
661        var cr = Populations[1].add(createNutrientGenotype(ExpProperties.nutrientradius));
662
663        cr.name = "Nutrients";
664        cr.idleen = 0;
665        cr.energy0 = ExpProperties.energy_nut;
666        cr.energy = cr.energy0;
667        cr.signals.add("nutrient");
668
669        cr.signals[0].value = cr;
670
671        placeCreatureRandomly(cr, 0, 0);
672        if (ExpProperties.visualize == 1)
673        {
674                var nutsize = ExpProperties.nutrientradius*10;
675                var nut = Populations[2].add("//0\np:sh=2,sx="+nutsize+",sy="+nutsize+",sz="+nutsize+",ry=1.5,vr=0.0,1.0,0.0");
676                cr.data->reticulopodiacreature = nut;
677                nut.moveAbs(cr.pos_x-1.5*nutsize, cr.pos_y-1.5*nutsize, 0.5);
678        }
679}
680
681function onNutrientsDied(cr)
682{
683        if (visualization(cr))
684        {
685                Populations[2].delete(cr.data->reticulopodiacreature);
686        }
687}
688
689function nutrientGrowth()
690{
691        if (ExpProperties.foodPeriodChange > 0)
692        {
693                        changePeriod += 1;
694                        if (phase=="low" && (changePeriod*ExpProperties.secPerStep) >= 23328000) //9 months
695                        {
696                                ExpProperties.foodperiod = ExpProperties.foodperiod/ExpProperties.foodPeriodChange;
697                                phase = "high";
698                                changePeriod = 0;
699                        }
700               
701                        else if (phase == "high" && (changePeriod*ExpProperties.secPerStep) >= 7776000) //3 months
702                        {
703                                ExpProperties.foodperiod = ExpProperties.foodperiod*ExpProperties.foodPeriodChange;
704                                phase = "low";
705                                changePeriod = 0;
706                        }
707        }
708        nutrientenergywaiting = nutrientenergywaiting + 1;
709        if (nutrientenergywaiting*ExpProperties.secPerStep >= ExpProperties.foodperiod)
710        {
711                for (var i = 0; i < ExpProperties.feedrate; i++)
712                {   
713                        addNutrient();
714                }
715
716                nutrientenergywaiting = 0.0;
717                Simulator.checkpoint();
718        }
719}
720
721// -------------------------------- nutrient end --------------------------------
722
723// -------------------------------- step begin --------------------------------
724
725function onStep()
726{
727
728        nutrientGrowth();
729        if (ExpProperties.logging == 1)
730        {
731                createStatistics();
732        }
733
734        //reproduction --------------------------------------------
735        reprocounter += 1;
736        if (reprocounter*ExpProperties.secPerStep > ExpProperties.repro_time)
737        {
738                reprocounter = 0;
739                reproduce_parents(0);
740                reproduce_parents(1);
741        }
742
743        //check for extinction -----------------------------------------------
744        if (Populations[0].size == 0)
745        {
746                if (ExpProperties.autorestart)
747                {
748                        Simulator.print("no more creatures, restarting...");
749                        onExpInit();
750                }
751                else
752                {
753                        Simulator.print("no more creatures, stopped.");
754                        Simulator.stop();
755                }
756        }
757        if (ExpProperties.maxSteps > 0)
758        {
759                if (Simulator.stepNumber >= ExpProperties.maxSteps)
760                        Simulator.stop();
761        }
762}
763
764function createStatistics()
765{       
766        var number = [];
767        var e_inc = [];
768        var e_nut = 0.0;
769
770        for (var s = 0; s < species_genes.size; s++)
771        {
772                number.add([0,0]);// [haplo][diplo]
773                e_inc.add([0,0]);
774        }
775
776        for (var i = 0; i < Populations[0].size; i++)
777        {
778                var cr = Populations[0].get(i);
779                var gen = cr.data->lifeparams->gen;
780                var species = cr.data->lifeparams->species;
781
782                number[species][gen] = number[species][gen] + 1;
783                e_inc[species][gen] = e_inc[species][gen] + cr.energy;
784        }
785
786        for (var i = 0; i < Populations[1].size; i++)
787        {
788                var cr = Populations[1].get(i);
789                e_nut += cr.energy;
790        }
791
792        var log_numbers = [];
793        var log_energies = [];
794
795        for (var s = 0; s < species_genes.size; s++)
796        {
797                for (var p = 0; p < 2; p++)
798                {
799                        log_numbers.add(number[s][p]);
800                        log_energies.add(e_inc[s][p]);
801                }
802        }
803       
804        log_numbers.add(Populations[1].size);
805        log_energies.add(e_nut);
806
807        log(log_numbers, "forams_log.txt");
808    log(log_energies,  "energies_log.txt");
809}
810
811function log(tolog, fname)
812{
813        var f = File.appendDirect(fname, "forams data");
814        f.writeString("" + Simulator.stepNumber);
815        for (var  i = 0; i < tolog.size; i++)
816        {
817                f.writeString(";" + tolog[i]);
818        }
819        f.writeString("\n");
820        f.close();
821}
822
823// -------------------------------- step end --------------------------------
824//TODO default params values in frams instead of microns/seconds
825
826@include "standard_events.inc"
827
828~
829
830property:
831id:visualize
832name:Show reticulopodia and nutrients
833type:d 0 1 0
834group:Foraminifera
835
836property:
837id:maxSteps
838name:Stop after the given number of simulation steps
839type:d 0 1000000 0
840
841property:
842id:foramSpeedMmPerMin
843name:Speed of foraminfera in mm/min
844type:f 0.1
845flags: 16
846group:Foraminifera
847
848property:
849id:gametSuccessRate
850name:Ratio of successful gamets
851type:f 0.001
852group:Foraminifera
853
854property:
855id:gametoPeriod
856name:Time of gametogenesis
857type:f 720
858group:Foraminifera
859
860property:
861id:picoCarbonPerMikro
862name:Picograms of carbon in cubed micrometer
863type:f 0.13
864group:Foraminifera
865
866property:
867id:secPerStep
868name:Seconds per simulation step
869type:f 60.0
870flags: 16
871group:Foraminifera
872
873property:
874id:e_repro_cost_haplo
875name:Cost of reproduction
876type:f 0.1 0.9 0.5
877group:Foraminifera
878
879property:
880id:divisionCost
881name:Cost of division in pG
882type:f
883group:Foraminifera
884
885property:
886id:e_repro_cost_diplo
887name:Cost of reproduction
888type:f 0.1 0.9 0.3
889group:Foraminifera
890
891property:
892id:chamber_growth_time
893name:Time of the chamber growth in seconds
894type:f
895group:Foraminifera
896
897property:
898id:chamberCostPerSec
899name:Cost of growning chamber per second
900type:f
901group:Foraminifera
902
903property:
904id:chamber_proculus_haplo
905name:Size of proculus
906type:f
907group:Foraminifera
908
909property:
910id:chamber_proculus_diplo
911name:Size of proculus
912type:f
913group:Foraminifera
914
915property:
916id:chamber_difference_haplo
917name:Difference in size between subsequent chambers
918type:f
919group:Foraminifera
920
921property:
922id:chamber_difference_diplo
923name:Difference in size between subsequent chambers
924type:f
925group:Foraminifera
926
927property:
928id:hunted_prob
929name:Probability of being hunted
930type:f 0 1 0
931group:Forminifera
932
933property:
934id:zone1_range
935name:Zone 1 range
936type:f 0 200
937group:Foraminifera
938
939property:
940id:zone2_range
941name:Zone 2 range
942type:f 0 3000
943group:Foraminifera
944
945property:
946id:colors
947name:Haploid and diploid colors
948type:x
949group:Foraminifera
950
951property:
952id:min_repro_energ_haplo
953name:Min reproduction energy of forams
954type:f
955group:Foraminifera
956
957property:
958id:min_repro_energ_diplo
959name:Min reproduction energy of forams
960type:f
961group:Foraminifera
962
963property:
964id:repro_prob
965name:Probability of reproduction
966type:f 0 1 0.8
967group:Foraminifera
968
969property:
970id:energies0_haplo
971name:Energy of offspring from diploid forams
972type:f
973group:Foraminifera
974
975property:
976id:energies0_diplo
977name:Energy of offspring from diploid forams
978type:f
979group:Foraminifera
980
981property:
982id:e_death_level_haplo
983name:Minimal level of energy to sustain life of haploid
984type:f 0 20 0.2
985group:Foraminifera
986
987property:
988id:e_death_level_diplo
989name:Minimal level of energy to sustain life of diploid
990type:f 0 20 0.2
991group:Foraminifera
992
993property:
994id:energy_hib
995name:Energy used for hibernation during one step
996type:f 0 1 0.001
997group:Foraminifera
998
999property:
1000id:energy_move
1001name:Energy used for movement during one step
1002type:f 0 20 0.001
1003group:Foraminifera
1004
1005property:
1006id:min_vol
1007name:Minimal volume for reproduction
1008type:f 100 900 100
1009group:Foraminifera
1010
1011property:
1012id:max_size
1013name:Maximal size
1014type:d 1 10 5
1015group:Foraminifera
1016
1017property:
1018id:foramPop
1019name:Initial forams population size
1020type:d 1 1000 100
1021group:Foraminifera
1022
1023property:
1024id:crossprob
1025name:Crossover probability
1026type:f 0 1 0
1027group:Foraminifera
1028
1029property:
1030id:mutationprob
1031name:Mutation probability
1032type:f 0 1 0
1033group:Foraminifera
1034
1035property:
1036id:e_meta
1037name:Idle metabolism
1038type:f 0 1
1039group:Energy
1040help:Each stick consumes this amount of energy in one time step
1041
1042property:
1043id:feedrate
1044name:Feeding rate
1045type:f 0 1000000
1046group:Energy
1047help:How fast energy is created in the world
1048
1049property:
1050id:foodPeriodChange
1051name:Set variable feed rate
1052type:f 0
1053group:Energy
1054
1055property:
1056id:ingestion
1057name:Ingestion rate
1058type:f
1059group:Energy
1060
1061property:
1062id:energy_nut
1063name:Nutrient energy
1064type:f 0 100000
1065group:Energy
1066
1067property:
1068id:feedtrans
1069name:Energy transfer per second
1070type:f 0 100000
1071group:Energy
1072
1073property:
1074id:foodperiod
1075name:Time between food occurrences
1076type:f 0 1000000
1077group:Energy
1078
1079property:
1080id:nutrientradius
1081name:Nutrient size
1082type:f 0.1 0.9 0.1
1083group:Energy
1084
1085property:
1086id:stress
1087name:Environmental stress
1088type:d 0 1 1
1089group:World
1090
1091property:
1092id:repro_trigger
1093name:Reproduction trigger
1094type:d 0 1 1
1095group:World
1096
1097property:
1098id:repro_time
1099name:Time before reproduction
1100type:d 0 10000
1101
1102property:
1103id:creath
1104name:Creation height
1105type:f -1 50
1106help:~
1107Vertical position (above the surface) where new Forams are revived.
1108Negative values are only used in the water area:
1109  0   = at the surface
1110-0.5 = half depth
1111-1   = just above the bottom~
1112
1113state:
1114id:nutrient
1115name:Nutrient locations
1116help:vector of vectors [x,y,energy]
1117type:x
1118flags:32
1119
1120property:
1121id:autorestart
1122name:Restart after extinction
1123help:Restart automatically this experiment after the last creature has died?
1124type:d 0 1
1125
1126state:
1127id:notes
1128name:Notes
1129type:s 1
1130help:~
1131You can write anything here
1132(it will be saved to the experiment file)~
1133
1134state:
1135id:totaltestedcr
1136name:Evaluated Forams
1137help:Total number of the Forams evaluated in the experiment
1138type:d
1139flags:16
1140
1141property:
1142id:logging
1143name:Log statistics to file
1144type:d 0 1 0
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