• #rsisb
    Roll NO:232
    Foundation level student.
    Story post:20

    ### Description

    **The Journey of “Quarantine”: From Venetian Ports to Global Health**

    Have you ever wondered where the word **“quarantine”** came from? The story takes us back centuries to Venetian ports, where maritime communities developed measures to reduce the spread of infectious diseases.

    Explore how the idea behind quarantine evolved over time and became an important part of public health around the world. From historic ports to modern health systems, this fascinating journey shows how language, history, and science can connect in unexpected ways.

    ### Hashtags

    #Quarantine #HistoryOfQuarantine #PublicHealth #HealthHistory #MedicalHistory #History #Science #GlobalHealth #Venice #VenetianHistory #Epidemiology #HealthScience #DiseasePrevention #HistoryFacts #Education #Learning #ScienceEducation #WorldHistory #DidYouKnow #ExploreHistory

    ### Emojis


    #rsisb Roll NO:232 Foundation level student. Story post:20 ### 🦠 Description **The Journey of “Quarantine”: From Venetian Ports to Global Health** ⚓🌍📜 Have you ever wondered where the word **“quarantine”** came from? 🤔 The story takes us back centuries to Venetian ports, where maritime communities developed measures to reduce the spread of infectious diseases. ⚓🚢 Explore how the idea behind quarantine evolved over time and became an important part of public health around the world. 🌎🏥📚 From historic ports to modern health systems, this fascinating journey shows how language, history, and science can connect in unexpected ways. 🔬✨ ### 🔖 Hashtags #Quarantine #HistoryOfQuarantine #PublicHealth #HealthHistory #MedicalHistory #History #Science #GlobalHealth #Venice #VenetianHistory #Epidemiology #HealthScience #DiseasePrevention #HistoryFacts #Education #Learning #ScienceEducation #WorldHistory #DidYouKnow #ExploreHistory ### 🌟 Emojis ⚓🚢🌍📜🏥🔬🦠🧪🧭📚✨🌎🏛️⏳🔎💡🌐🩺🛡️📖
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  • Last week, a Redditor named easyjet decided to (very belatedly) join the global party that is Facebook. He signed up with an email address he never, ever used. He lied about all of his personal information.

    So he was rightly freaked out when Facebook still managed to predict and "recommend" a huge number of his real-life acquaintances - down to people whose names he barely knew and a woman he dated 19 years ago.

    How does Facebook know who your friends are? Its a mystery that has nagged users since at least 2011, when the Irish Data Protection Commissioner conducted a full-scale investigation into the issue. But four years later, theres still a lot of confusion and misinformation about what Facebooks doing when it "finds" your friends.

    Did it scrape your phone for names and numbers? Run a reverse-image search of your picture? Compile a "shadow" or "ghost" profile on you over a period of years, just waiting for you to log on and "confirm" its guesses?

    Alas, Facebooks actual process isnt actually that sneaky or malicious. In fact, it involves this pretty complex academic field called ... network science.

    In a nutshell, whenever you sign up for a Facebook account, Facebook asks permission to look at your email contacts if youre on a computer, or your phone contacts if youre on a smartphone. When you grant the site permission, it searches your contacts for users already on the network, and it searches other users uploaded contacts for you. That gives it a very primitive outline of your social circles: who you know, but not how you know them or how well.

    To refine that map, Facebook asks you more questions about yourself: where you went to school, when you were born, what city you live in. Each field in your Facebook profile and each interaction you make through that profile actually double as a source of data for Facebooks mapping algorithms. What theyre trying to do is determine the structure of the network: where the cliques are, which people bridge them, who knows who.

    Once Facebook knows the structure of your social network, it can analyse it to predict (with startling accuracy!) not only the people youre most likely to know now, but the people youre most likely to know in the future.

    This isnt magic: Its actually closer to statistics. In the network, there are a set number of "nodes," i.e., people, and a set number of "edges," i.e., friendships. Given that, each nonexistent connection between two nodes is a statistical possibility. But not all nodes are created equal, so not all connections are equally likely. (I dont anticipate befriending many 40-year-old guys in Siberia, say.)

    To estimate which connections are most likely, Facebook can run analyses against the structure of the network, using a long and entirely above-our-pay-grade list of coefficients and indices. Those coefficients account for a huge number of things: How many unusual commonalities do two people share, for instance? How many friends do they have in common? Which people in the network serve as rallying points, the people who know everyone? How many "degrees of separation" exist between them, how many friends of friends?

    In the end, Facebooks friend-recommendation system isnt magic or malice - just really good math. And guessing your future friends isnt telling the future; its modelling the evolution of Facebooks social graph.

    As you and I know, of course, this doesnt always work. Facebook, not infrequently, suggests you "may know" somebody that you dont. Or it suggests people you do know but dont want to see in your News Feed. Thats not Facebooks fault, says David Liben-Nowell, a computer scientist at Carleton College who studies the evolution of social networks.

    There are some forces outside the network that Facebook could never account for, he says: like what if I randomly sat next to a middle-aged Siberian man on a plane? And on top of that, Facebooks dealing with a vast and complex network.

    Liben-Nowell poses the example of your college roommates exes, some of whom you may want to Facebook-friend.

    "But which ones? And why?" He asks. "Their network positions relative to you are all pretty much the same, but you (only) know the one who you happened to sit beside at a wedding before your roommate dumped them. But Facebook doesnt know which college roommate was at Table 7 with you, so its prediction algorithms can only do so much."

    That said, both Facebook and mathematics at large have enormous interest in improving models of social-network change and "link prediction"; after all, the way people connect has implications way outside social networking, in fields as diverse as epidemiology, communications and counterterrorism.

    "We continuously update the People You May Know algorithm to make it better and more relevant for people," a Facebook spokesperson, Ana Brekalo, said.

    So in the future, Facebook may know even more about your friends.

    By @Caitlin Dewey
    Last week, a Redditor named easyjet decided to (very belatedly) join the global party that is Facebook. He signed up with an email address he never, ever used. He lied about all of his personal information. So he was rightly freaked out when Facebook still managed to predict and "recommend" a huge number of his real-life acquaintances - down to people whose names he barely knew and a woman he dated 19 years ago. How does Facebook know who your friends are? It's a mystery that has nagged users since at least 2011, when the Irish Data Protection Commissioner conducted a full-scale investigation into the issue. But four years later, there's still a lot of confusion and misinformation about what Facebook's doing when it "finds" your friends. Did it scrape your phone for names and numbers? Run a reverse-image search of your picture? Compile a "shadow" or "ghost" profile on you over a period of years, just waiting for you to log on and "confirm" its guesses? Alas, Facebook's actual process isn't actually that sneaky or malicious. In fact, it involves this pretty complex academic field called ... network science. In a nutshell, whenever you sign up for a Facebook account, Facebook asks permission to look at your email contacts if you're on a computer, or your phone contacts if you're on a smartphone. When you grant the site permission, it searches your contacts for users already on the network, and it searches other users' uploaded contacts for you. That gives it a very primitive outline of your social circles: who you know, but not how you know them or how well. To refine that map, Facebook asks you more questions about yourself: where you went to school, when you were born, what city you live in. Each field in your Facebook profile and each interaction you make through that profile actually double as a source of data for Facebook's mapping algorithms. What they're trying to do is determine the structure of the network: where the cliques are, which people bridge them, who knows who. Once Facebook knows the structure of your social network, it can analyse it to predict (with startling accuracy!) not only the people you're most likely to know now, but the people you're most likely to know in the future. This isn't magic: It's actually closer to statistics. In the network, there are a set number of "nodes," i.e., people, and a set number of "edges," i.e., friendships. Given that, each nonexistent connection between two nodes is a statistical possibility. But not all nodes are created equal, so not all connections are equally likely. (I don't anticipate befriending many 40-year-old guys in Siberia, say.) To estimate which connections are most likely, Facebook can run analyses against the structure of the network, using a long and entirely above-our-pay-grade list of coefficients and indices. Those coefficients account for a huge number of things: How many unusual commonalities do two people share, for instance? How many friends do they have in common? Which people in the network serve as rallying points, the people who know everyone? How many "degrees of separation" exist between them, how many friends of friends? In the end, Facebook's friend-recommendation system isn't magic or malice - just really good math. And guessing your future friends isn't telling the future; it's modelling the evolution of Facebook's social graph. As you and I know, of course, this doesn't always work. Facebook, not infrequently, suggests you "may know" somebody that you don't. Or it suggests people you do know but don't want to see in your News Feed. That's not Facebook's fault, says David Liben-Nowell, a computer scientist at Carleton College who studies the evolution of social networks. There are some forces outside the network that Facebook could never account for, he says: like what if I randomly sat next to a middle-aged Siberian man on a plane? And on top of that, Facebook's dealing with a vast and complex network. Liben-Nowell poses the example of your college roommate's exes, some of whom you may want to Facebook-friend. "But which ones? And why?" He asks. "Their network positions relative to you are all pretty much the same, but you (only) know the one who you happened to sit beside at a wedding before your roommate dumped them. But Facebook doesn't know which college roommate was at Table 7 with you, so its prediction algorithms can only do so much." That said, both Facebook and mathematics at large have enormous interest in improving models of social-network change and "link prediction"; after all, the way people connect has implications way outside social networking, in fields as diverse as epidemiology, communications and counterterrorism. "We continuously update the People You May Know algorithm to make it better and more relevant for people," a Facebook spokesperson, Ana Brekalo, said. So in the future, Facebook may know even more about your friends. By @Caitlin Dewey
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  • Commonalities between virus and ideas !

    There are several ways in which viruses and ideas (or memes, as theyre called in the realm of culture) share common characteristics:

    1. **Spread:** Just like a virus spreads from person to person, ideas can also spread in a similar fashion - through communication and social interactions.

    2. **Mutation:** Viruses can mutate as they spread, leading to new strains. Similarly, ideas can also evolve or change as they are shared and reinterpreted by different people.

    3. **Survival of the Fittest:** In both cases, those that are most "fit"—that is, most effective at spreading and sustaining themselves—tend to proliferate. For viruses, this means being able to infect as many hosts as possible. For ideas, this means being memorable, resonating with peoples existing beliefs or desires, or providing some form of value.

    4. **Infection Rate:** Both viruses and ideas have a concept similar to an infection rate (or "R0" in epidemiology). If an idea or a virus is highly contagious, it can spread quickly through a population.

    5. **Carrier:** Both viruses and ideas need carriers. Viruses need hosts like humans or animals to survive and spread, while ideas need people to carry and disseminate them.

    6. **Influence on Behavior:** Both viruses and ideas can influence behavior. Viruses can affect the behavior of a host in ways that favor the viruss propagation. Ideas can change a persons behavior, beliefs, or attitudes.

    7. **Resistance:** Just like our bodies develop resistance to viruses through immunity, societies or individuals can develop resistance to certain ideas through exposure, education, or critical thinking.
    Commonalities between virus 🦠 and ideas 💡! There are several ways in which viruses and ideas (or memes, as they're called in the realm of culture) share common characteristics: 1. **Spread:** Just like a virus spreads from person to person, ideas can also spread in a similar fashion - through communication and social interactions. 2. **Mutation:** Viruses can mutate as they spread, leading to new strains. Similarly, ideas can also evolve or change as they are shared and reinterpreted by different people. 3. **Survival of the Fittest:** In both cases, those that are most "fit"—that is, most effective at spreading and sustaining themselves—tend to proliferate. For viruses, this means being able to infect as many hosts as possible. For ideas, this means being memorable, resonating with people's existing beliefs or desires, or providing some form of value. 4. **Infection Rate:** Both viruses and ideas have a concept similar to an infection rate (or "R0" in epidemiology). If an idea or a virus is highly contagious, it can spread quickly through a population. 5. **Carrier:** Both viruses and ideas need carriers. Viruses need hosts like humans or animals to survive and spread, while ideas need people to carry and disseminate them. 6. **Influence on Behavior:** Both viruses and ideas can influence behavior. Viruses can affect the behavior of a host in ways that favor the virus's propagation. Ideas can change a person's behavior, beliefs, or attitudes. 7. **Resistance:** Just like our bodies develop resistance to viruses through immunity, societies or individuals can develop resistance to certain ideas through exposure, education, or critical thinking.
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