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Coverage of various methods where curriculum can be influenced or built upon student interest.

So far our discussion of instructional planning has described goals and objectives as if they are selected primarily by educators and teachers, and not by students themselves. The assumption may be correct in many cases, but there are problems with it. One problem is that choosing goals and objectives for students, rather than by students, places a major burden on everyone involved in education—curriculum writers, teachers, and students. The curriculum writers have to make sure that they specify standards, goals, and objectives that are truly important for students to learn (what if it really does not matter, for example, whether a science student learns about the periodic table of the elements?). Teachers have to make sure that students actually become motivated to learn the specified goals and objectives, even if the students are not motivated initially. Students have to master pre-set goals and objectives even if they might not have chosen them personally. Some critics of education have argued that these requirements can be serious impediments to learning (Kohn, 2004). The problems are widespread and especially noticeable in two forms of teaching. One is with the youngest students, who may especially lack patience with an educational agenda set by others (Kohn, 1999; Seitz, 2006). The other is with culturally diverse classrooms, where students and their families may hold a variety of legitimate, but unconventional expectations about what they should learn (J. Banks&C. Banks, 2005).

In response to concerns like these, some educators advocate planning instruction around goals set or expressed either by students themselves or by the cultures or communities with which students identify. Their suggestions vary in detail, but can be organized into two broad categories: (1) emergent curriculum and (2) multicultural and anti-bias curriculum.

Emergent curriculum

An emergent curriculum is one that explicitly builds on interests expressed by students, rather than goals set by curriculum writers, curriculum documents, or teachers. As you might suspect, therefore, instructional planning for an emergent curriculum does not have the same meaning that the term has had in the chapter up to now. Instead, since an emergent curriculum by definition unfolds spontaneously and flexibly, students’ interests may be predictable, but usually not very far in advance (Peterson, 2002). Suppose, for example, that a first-grade teacher plans a unit around Halloween, and that as one of the activities for this unit she reads a book about Halloween. In listening to the book, however, the students turn out to be less interested in its Halloween content than in the fact that one of the illustrations in the book shows a picture of a full moon partially hidden by clouds. They begin asking about the moon: why it is full sometimes but not other times, why it rises in different places each month, and whether the moon really moves behind clouds or whether the clouds actually do the moving. The teacher encourages their questions and their interest in moon astronomy. Over the next days or weeks, she arranges further activities and experiences to encourage students’ interest: she sets aside her original plans about Halloween and finds books about the moon and about how the solar system works. She invites a local amateur astronomer to visit the group and talk about his observations of the moon. Several children build models of the moon out of paper maché. Some find books describing trips of the space shuttles to the moon. Others make a large mural depicting a moonscape. And so on; the original goals about Halloween are not so much rejected, as set aside or forgotten in favor of something more immediately interesting and motivating.

Questions & Answers

A golfer on a fairway is 70 m away from the green, which sits below the level of the fairway by 20 m. If the golfer hits the ball at an angle of 40° with an initial speed of 20 m/s, how close to the green does she come?
Aislinn Reply
cm
tijani
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Siyaka Reply
A mouse of mass 200 g falls 100 m down a vertical mine shaft and lands at the bottom with a speed of 8.0 m/s. During its fall, how much work is done on the mouse by air resistance
Jude Reply
Can you compute that for me. Ty
Jude
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David Reply
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David
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emma Reply
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Youesf Reply
what is inorganic
emma
Chemistry is a branch of science that deals with the study of matter,it composition,it structure and the changes it undergoes
Adjei
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Adjanou
chemistry could also be understood like the sexual attraction/repulsion of the male and female elements. the reaction varies depending on the energy differences of each given gender. + masculine -female.
Pedro
A ball is thrown straight up.it passes a 2.0m high window 7.50 m off the ground on it path up and takes 1.30 s to go past the window.what was the ball initial velocity
Krampah Reply
2. A sled plus passenger with total mass 50 kg is pulled 20 m across the snow (0.20) at constant velocity by a force directed 25° above the horizontal. Calculate (a) the work of the applied force, (b) the work of friction, and (c) the total work.
Sahid Reply
you have been hired as an espert witness in a court case involving an automobile accident. the accident involved car A of mass 1500kg which crashed into stationary car B of mass 1100kg. the driver of car A applied his brakes 15 m before he skidded and crashed into car B. after the collision, car A s
Samuel Reply
can someone explain to me, an ignorant high school student, why the trend of the graph doesn't follow the fact that the higher frequency a sound wave is, the more power it is, hence, making me think the phons output would follow this general trend?
Joseph Reply
Nevermind i just realied that the graph is the phons output for a person with normal hearing and not just the phons output of the sound waves power, I should read the entire thing next time
Joseph
Follow up question, does anyone know where I can find a graph that accuretly depicts the actual relative "power" output of sound over its frequency instead of just humans hearing
Joseph
"Generation of electrical energy from sound energy | IEEE Conference Publication | IEEE Xplore" ***ieeexplore.ieee.org/document/7150687?reload=true
Ryan
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Maurice Reply
what are the types of wave
Maurice
answer
Magreth
progressive wave
Magreth
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Mohammed
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Mujahid
A string is 3.00 m long with a mass of 5.00 g. The string is held taut with a tension of 500.00 N applied to the string. A pulse is sent down the string. How long does it take the pulse to travel the 3.00 m of the string?
yasuo Reply
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Source:  OpenStax, Educational psychology. OpenStax CNX. May 11, 2011 Download for free at http://cnx.org/content/col11302/1.2
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