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STEM and Writing: A Super Combination | Edutopia - 1 views

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    Read how a quantum physicist, who was a guest speaker in a language arts classroom, inspired the imagination and writing of the middle school students.
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Do girls learn differently? - 2 views

  • To hear some ed tech enthusiasts tell it, online learning is sweeping aside the barriers that have in the past prevented access to education. But such pronouncements are premature. As it turns out, students often carry these barriers right along with them, from the real world into the virtual one.
  • These dismally low numbers provide a reminder that “access” to education is more complicated than simply throwing open the digital doors to whoever wants to sign up. So how can we turn the mere availability of online instruction in STEM into true access for female students?
  • One potential solution to this information-age problem comes from an old-fashioned source: single-sex education. The Online School for Girls, founded in 2009, provides an all-female e-learning experience.
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  • But evidence is weak that there is such a thing as “girls’ learning,” online or offline, if what is meant by that is that each gender has cognitive differences that should be accommodated by different instructional methods. Neuroscientist Lise Eliot has argued persuasively that, while small inherent differences in aptitude between males and females do exist (even as infants, for example, boys seem to have an edge in spatial cognition), society takes these small differences and makes them much bigger—by supporting boys in math and science, and by discouraging girls who study these subjects.
  • These same dynamics play out online, as Cheryan demonstrated in a subsequent study. Changing the design of a virtual classroom—from one that conveyed computer science stereotypes to one that did not —“significantly increased women’s interest and anticipated success in computer science,” Cheryan and her colleagues reported.
  • Cheryan notes, “was sufficient to boost female undergraduates’ interest in computer science to the level of their male peers.”
  • Another way to promote female students’ sense of belonging in online math and science courses would be putting more women at the head of virtual classrooms.
  • All these approaches have in common a focus, not on teaching girls and women differently, but on helping them to feel differently about their place in the fields of math and science. Just as in the physical world, in the virtual sphere the barriers to girls’ and women’s advancement in STEM fields remain very much in place. With informed intervention and clever design, however, the digital walls may prove easier to scale.
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    This article is great for those at BSS, Branksome, Havergal, oh and any other school! I was on a panel with Brad Rathgeber, the Director of the OnLine School for Girls, and he was a great speaker on this front...
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Our Makerspace: Inquiry & Challenges in Coding, Music & Mathematics - 0 views

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    As we explore STEM and engagement, here is an article about MakerEd that connects the two!
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Ruben R. Puentedura's Weblog - 0 views

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    Presentation notes and exemplars from Dr. Puentedura's speaker series and keynotes.
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    "SAMR, STEM and Assessment The slides for my workshops at the Calgary Girls' School are now online: SAMR, STEM and Assessment"
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    SAMR............To achieve transformative results in one-to-one technology initiatives, a basic office suite will not suffice.
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Derek Muller (@veritasium) | Twitter - 0 views

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    Interesting and thought-provoking STEM videos. Great to kick-start class discussions.
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Cultivating the Habits of Self-Knowledge and Reflection | Edutopia - 1 views

  • As a teacher, your "self" is embedded within your teaching -- which is how it goes from a job to a craft. The learning results are yours.
  • it makes sense that students' self-defense mechanisms kick in when they're challenged.
  • Lack of apparent curiosity Apathy Refusal to take risks Decreased creativity Defeated tones Scrambles for shortcuts
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  • Help them to separate themselves from their work and related performance. Help them to understand that our lives aren't single decisions, but a vast tapestry of connections, with any single moment, performance or failure barely visible, and only important as it relates to their lives as a whole.
  • How do I respond when I'm challenged, both inwardly and outwardly? Which resources and strategies do I tend to favor, and which do I tend to ignore? What can I do to make myself more aware of my own thinking and emotions? What happens if I don’t change anything at all?
  • Like anything, it is first a matter of visibility -- understand what is necessary, seeing it when it happens, emphasizing and celebrating it, etc.
  • The more that students see themselves face major and minor challenges in the classroom, and then see the effects of how they respond, the more conditioned they'll become to responding ideally on their own.
  • How we feel and think about ourselves matters in learning.
  • tudents' self-defense mechanisms kick in when
  • they're challenged
  • STEM concepts,
  • matter of visibility -- understand what is necessary,
  • seeing it when it happens, emphasizing and celebrating it
  • atter of pra
  • tice.
  • epetition.
  • aching to student
  • can’t fully separate the person from the task
  • students' self-defense mechanisms kick in when they're challenged.
  • symptoms
  • not wanting to make mistakes, to fail, to be corrected, or to be thought less of by peers
  • in the face of a challenge
  • four questions they can use to begin this kind of reflection
  • how can we begin to promote self-knowledge and reflection in the classroom?
  • establish these actions as habits
  • irst a matter of visibility
  • nderstand what is necessary,
  • having them journal, share
  • reflect on both the challenge and their response.
  • matter of practice
  • The more that students see themselves face major and minor challenges
  • responding ideally on their own
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    things to think about with reflection exercises
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    Reflection in the classroom
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If Design's No Longer the Killer Differentiator, What Is? | WIRED - 2 views

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    STEAM - it's the next thing...
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Spongelab | A Global Science Community - 0 views

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    Hey Science and STEAM teachers, check out this incredible platform for learning!
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What Students Will Learn In The Future - 0 views

  • ust as advances in technology enabled the growth of science, the extremely rapid growth of technology we’re experiencing today is impacting our perspectives, tools, and priorities now. But beyond some mild clamor for a focus on “STEM,” there have been only minor changes in how we think of content–this is spite of extraordinary changes in how students connect, access data, and function on a daily basis.
  • What kind of changes might we expect in a perfect-but-still-classroom-and-content-based world? What might students learn in the future? Of course any response at all is pure speculation, but if we draw an arc from classical approaches to the Dewey approach to what might be next–factoring in technology change, social values, and criticisms of the current model–we may get a pretty decent answer. This assumes, of course a few things (all of which may be untrue): 1. We’ll still teach content 2. That content will be a mix of skills and knowledge 3. Said skills and knowledge will be thematically arranged into “content areas”
  • The Content Of The Future: 8 Content Areas For Tomorrow’s Students 1. Literacy Big Idea: Reading and writing in physical & digital spaces Examples of traditional ideas and academic content areas included: Grammar, Word Parts, Greek & Latin Roots, The Writing Process, Fluency; all traditional content areas 2. Patterns Big Idea: How and why patterns emerge everywhere under careful study Examples of traditional ideas and academic content areas include: Grammar, Literature, Math, Geometry, Music, Art, Social Studies, Astronomy 3. Systems Big Idea: The universe—and every single thing in it–is made of systems, and systems are made of parts. Examples of traditional ideas and academic content areas include: Grammar, Law, Medicine, Science, Math, Music, Art, Social Studies, History, Anthropology, Engineering, Biology; all traditional content areas by definition (they’re systems, yes?) 4. Design Big Idea: Marrying creative and analytical thought Examples of traditional ideas and academic content areas include: Literature, Creativity, Art, Music, Engineering, Geometry 5. Citizenship Big Idea: Responding to interdependence Examples of traditional ideas and academic content areas include: Literature, Social Studies, History; Civics, Government, Theology 6. Data Big Idea: Recognizing & using information in traditional & non-traditional forms Examples of traditional ideas and academic content areas include: Math, Geometry, Science, Engineering, Biology; 7. Research Big Idea: Identifying, evaluating, and synthesizing diverse ideas Examples of traditional ideas and academic content areas include: English, Math, Science; Humanities 8. Philosophy Big Idea: The nuance of thought Examples of traditional ideas and academic content areas include: Ethics, Literature/Poetry, Art, Music; Humanities
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    Great article to frame long term planning. What aspects of learning in the future do you already do? Set one as your goal for implementation next year...
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Robotics - 2 views

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    Got Robots? Here is a great link to all things robotics!
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