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				synced 2025-11-04 09:28:16 +00:00 
			
		
		
		
	Visualizacion con dos parametros, sentimientos negativos y positivos.
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							@@ -21,7 +21,7 @@ def init():
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    global tweet_probability_enterprises
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					    global tweet_probability_enterprises
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    network_type=1
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					    network_type=1
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    number_of_nodes=200
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					    number_of_nodes=50
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    max_time=1000
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					    max_time=1000
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    num_trials=1
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					    num_trials=1
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    timeout=10
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					    timeout=10
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@@ -45,8 +45,8 @@ def init():
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    ##Users
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					    ##Users
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    tweet_probability_users = 0.44
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					    tweet_probability_users = 0.44
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    tweet_relevant_probability = 0.25
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					    tweet_relevant_probability = 0.25
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    tweet_probability_about = [0, 0]
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					    tweet_probability_about = [0.25, 0.25]
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    sentiment_about = [0, 0] #Valores por defecto
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					    sentiment_about = [0, 0] #Valores por defecto
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    ##Enterprises
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					    ##Enterprises
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    tweet_probability_enterprises = [0.5, 0.5]
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					    tweet_probability_enterprises = [0.3, 0.3]
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										126
									
								
								soil.py
									
									
									
									
									
								
							
							
						
						
									
										126
									
								
								soil.py
									
									
									
									
									
								
							@@ -31,9 +31,14 @@ if settings.network_type == 2:
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myList=[] # List just for debugging
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					myList=[] # List just for debugging
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networkStatus=[] # This list will contain the status of every node of the network
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					networkStatus=[] # This list will contain the status of every node of the network
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emotionStatus=[]
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					emotionStatus=[]
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					enterprise1Status=[]
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					enterprise2Status=[]
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for x in range(0, settings.number_of_nodes):
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					for x in range(0, settings.number_of_nodes):
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    networkStatus.append({'id':x})
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					    networkStatus.append({'id':x})
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    emotionStatus.append({'id':x})
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					    emotionStatus.append({'id':x})
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					    enterprise1Status.append({'id':x})
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					    enterprise2Status.append({'id':x})
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# Initialize agent states. Let's assume everyone is normal.
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					# Initialize agent states. Let's assume everyone is normal.
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init_states = [{'id': 0, } for _ in range(settings.number_of_nodes)]  # add keys as as necessary, but "id" must always refer to that state category
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					init_states = [{'id': 0, } for _ in range(settings.number_of_nodes)]  # add keys as as necessary, but "id" must always refer to that state category
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@@ -69,15 +74,16 @@ class BigMarketModel(BaseNetworkAgent):
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            self.tweet_probability_about = settings.tweet_probability_about #Lista
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					            self.tweet_probability_about = settings.tweet_probability_about #Lista
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            self.sentiment_about = settings.sentiment_about #Lista
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					            self.sentiment_about = settings.sentiment_about #Lista
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        networkStatus[self.id][self.env.now]=self.state['id']
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					        #networkStatus[self.id][self.env.now]=self.state['id']
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        emotionStatus[self.id][self.env.now]=0
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					        #emotionStatus[self.id][self.env.now]=0
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    def run(self):
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					    def run(self):
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        while True:
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					        while True:
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            if(self.id < 2): # Empresa
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					            if(self.id < 2): # Empresa
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                self.enterpriseBehaviour()
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					                self.enterpriseBehaviour()
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            else:  # Usuario
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					            else:  # Usuario
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                self.userBehaviour()
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					                #self.userBehaviour()
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					                pass
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            yield self.env.timeout(settings.timeout)
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					            yield self.env.timeout(settings.timeout)
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@@ -85,19 +91,24 @@ class BigMarketModel(BaseNetworkAgent):
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    def enterpriseBehaviour(self):
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					    def enterpriseBehaviour(self):
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        if random.random()< self.tweet_probability: #Twittea
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					        if random.random()< self.tweet_probability: #Twittea
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                aware_neighbors = self.get_neighboring_agents(state_id=2) #Nodos vecinos usuarios
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					            aware_neighbors = self.get_neighboring_agents(state_id=2) #Nodos vecinos usuarios
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                for x in aware_neighbors:
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					            for x in aware_neighbors:
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                    if random.uniform(0,10) < 5:
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					                if random.uniform(0,10) < 5:
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                        x.sentiment_about[self.id] += 0.01 #Aumenta para empresa
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					                    x.sentiment_about[self.id] += 0.1 #Aumenta para empresa
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                    else:
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					                else:
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                        x.sentiment_about[self.id] -= 0.01 #Reduce para empresa
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					                    x.sentiment_about[self.id] -= 0.1 #Reduce para empresa
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                    # Establecemos limites
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                    if x.sentiment_about[self.id] > 1:
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					                # Establecemos limites
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                        x.sentiment_about[self.id] = 1
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					                if x.sentiment_about[self.id] > 1:
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                    if x.sentiment_about[self.id] < -1:
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					                    x.sentiment_about[self.id] = 1
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                        x.sentiment_about[self.id] = -1
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					                if x.sentiment_about[self.id] < -1:
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                    #Guardamos estado para visualizacion
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					                    x.sentiment_about[self.id] = -1
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                    emotionStatus[x.id][self.env.now]=x.sentiment_about[self.id]
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					                #Visualización
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					                if self.id == 0:
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					                    enterprise1Status[x.id][self.env.now]=x.sentiment_about[self.id]
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					                if self.id == 1:
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					                    enterprise2Status[x.id][self.env.now]=x.sentiment_about[self.id]
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@@ -105,33 +116,53 @@ class BigMarketModel(BaseNetworkAgent):
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    def userBehaviour(self):
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					    def userBehaviour(self):
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        if random.random() < self.tweet_probability: #Twittea
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					        if random.random() < self.tweet_probability: #Twittea
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                if random.random() < self.tweet_relevant_probability: #Twittea algo relevante
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					            if random.random() < self.tweet_relevant_probability: #Twittea algo relevante
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					                #Probabilidad de tweet para cada empresa
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					                for i in range(len(self.tweet_probability_about)):
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					                    random_num = random.random()
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					                    if random_num < self.tweet_probability_about[i]:
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					                        #Se ha cumplido la condicion, evaluo los sentimientos hacia esa empresa
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					                        if self.sentiment_about[i] < 0:
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					                            #NEGATIVO
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					                            self.userTweets("negative",i)
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					                        elif self.sentiment_about[i] == 0:
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					                            #NEUTRO
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					                            pass
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					                        else:
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					                            #POSITIVO
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					                            self.userTweets("positive",i)
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                    #Probabilidad de tweet para cada empresa
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                    for i in range(len(self.tweet_probability_about)):
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                        random_num = random.random()
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                        if random_num < self.tweet_probability_about[i]:
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                            #Se ha cumplido la condicion, evaluo los sentimientos hacia esa empresa
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                            if self.sentiment_about[i] < 0:
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                                #NEGATIVO
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                                self.userTweets("negative",i)
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                            elif self.sentiment_about[i] == 0:
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                                #NEUTRO
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                                pass
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                            else:
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                                #POSITIVO
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                                self.userTweets("positive",i)
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    def userTweets(self,sentiment,enterprise):
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					    def userTweets(self,sentiment,enterprise):
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        aware_neighbors = self.get_neighboring_agents(state_id=2) #Nodos vecinos usuarios
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					        aware_neighbors = self.get_neighboring_agents(state_id=2) #Nodos vecinos usuarios
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        for x in aware_neighbors:
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					        for x in aware_neighbors:
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            if sentiment == "positive":
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					            if sentiment == "positive":
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                x.sentiment_about[enterprise] +=0
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					                x.sentiment_about[enterprise] +=0.003
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            elif sentiment == "negative":
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					            elif sentiment == "negative":
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                x.sentiment_about[enterprise] -=0
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					                x.sentiment_about[enterprise] -=0.003
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            else:
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					            else:
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                pass
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					                pass
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					            # Establecemos limites
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					            if x.sentiment_about[enterprise] > 1:
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					                x.sentiment_about[enterprise] = 1
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					            if x.sentiment_about[enterprise] < -1:
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					                x.sentiment_about[enterprise] = -1
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					            #Visualización
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					            if enterprise == 0:
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					                enterprise1Status[x.id][self.env.now]=x.sentiment_about[enterprise]
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					            if enterprise == 1:
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					                enterprise2Status[x.id][self.env.now]=x.sentiment_about[enterprise]
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					    def checkLimits(sentimentValue):
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					        if sentimentValue > 1:
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					            return 1
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					        if sentimentValue < -1:
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					            return -1
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@@ -372,14 +403,37 @@ status_census = [sum([1 for node_id, state in g.items() if state['id'] == 1]) fo
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# Visualization #
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					# Visualization #
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#################
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					#################
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					print("Empresa1")
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					print (enterprise1Status)
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					print("Empresa2")
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					print (enterprise2Status)
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for x in range(0, settings.number_of_nodes):
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					for x in range(0, settings.number_of_nodes):
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    emotionStatusAux=[]
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					    emotionStatusAux=[]
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    for tiempo in emotionStatus[x]:
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					    # for tiempo in emotionStatus[x]:
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					    #     if tiempo != 'id':
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					    #         prec = 2
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					    #         output = math.floor(emotionStatus[x][tiempo] * (10 ** prec)) / (10 ** prec) #Para tener 2 decimales solo
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					    #         emotionStatusAux.append((output,tiempo,None))
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					    # G.add_node(x, emotion= emotionStatusAux)
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					    # del emotionStatusAux[:]
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					    for tiempo in enterprise1Status[x]:
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        if tiempo != 'id':
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					        if tiempo != 'id':
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            prec = 2
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					            prec = 2
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            output = math.floor(emotionStatus[x][tiempo] * (10 ** prec)) / (10 ** prec) #Para tener 2 decimales solo
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					            output = math.floor(enterprise1Status[x][tiempo] * (10 ** prec)) / (10 ** prec) #Para tener 2 decimales solo
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            emotionStatusAux.append((output,tiempo,None))
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					            emotionStatusAux.append((output,tiempo,None))
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    G.add_node(x, emotion= emotionStatusAux)
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					    G.add_node(x, enterprise1emotion= emotionStatusAux)
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					for x in range(0, settings.number_of_nodes):
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					    emotionStatusAux2=[]
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					    for tiempo in enterprise2Status[x]:
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					        if tiempo != 'id':
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					            prec = 2
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					            output = math.floor(enterprise2Status[x][tiempo] * (10 ** prec)) / (10 ** prec) #Para tener 2 decimales solo
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					            emotionStatusAux2.append((output,tiempo,None))
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					    G.add_node(x, enterprise2emotion= emotionStatusAux2)
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#lista = nx.nodes(G)
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					#lista = nx.nodes(G)
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#print('Nodos: ' + str(lista))
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					#print('Nodos: ' + str(lista))
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