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Williams, David E. – Arithmetic Teacher, 1987
Despite numerous recommendations, little has been done to integrate calculator use into elementary school classrooms. Cost, equal access, and the existence of computers are not obstacles to calculator use: our attitudes and beliefs are. What must be done to integrate calculators into the curriculum is outlined. (MNS)
Descriptors: Attitudes, Calculators, Curriculum Development, Educational Philosophy

Kansky, Bob – Arithmetic Teacher, 1985
Lessons the author learned from the "new math" curriculum reform era are listed. They concern curricular change rather than revision, the need to start at the elementary school level, and how to select topics, with the role of technology interwoven. (MNS)
Descriptors: Curriculum Development, Editorials, Educational Change, Elementary Secondary Education

Payne, Joseph – Arithmetic Teacher, 1981
Suggestions for designing a mathematics curriculum for academically gifted students are presented. The ideas for program design are divided into three areas: content, process, and acceleration. (MP)
Descriptors: Academically Gifted, Curriculum Development, Elementary Education, Elementary School Mathematics

And Others; Zakariya, Norma – Arithmetic Teacher, 1980
An experimental program using the calculator in third, fourth, and fifth grades is described. Three example lessons are included, on (1) subtraction with regrouping, (2) estimation, and (3) number theory: Quadratics. (MK)
Descriptors: Calculators, Computation, Curriculum Development, Elementary Education

Berlin, Donna F.; White, Arthur L. – Arithmetic Teacher, 1987
The design, selection, and organization of instructional materials that integrate calculators are described in relation to a model based on movement and representational level. Instructional resources and advantages of the model are described. (MNS)
Descriptors: Calculators, Curriculum Development, Elementary Education, Elementary School Mathematics

Filliman, Paula K. – Arithmetic Teacher, 1983
Guidelines cover: (1) The Key Person(s); (2) Needs Assessments; (3) Long-Range Goals; (4) Information Collection; (5) Inservice Training; and (6) Implementation Model. It is suggested that once the basic commitment has been made to incorporate microcomputers in an educational program, districts must proceed with well-devised plans. Core…
Descriptors: Computers, Curriculum Development, Educational Change, Educational Planning

House, Peggy – Arithmetic Teacher, 1981
Typical educational alternatives for gifted students offered at the district or regional level are presented. Among the approaches described are special schools, magnet schools, summer programs, learning centers, and special classes. (MP)
Descriptors: Academically Gifted, Curriculum Development, Elementary Secondary Education, Gifted

Hill, Shirley A. – Arithmetic Teacher, 1983
Teachers need to answer two questions: (1) How do computer software and activities contribute to meeting objectives? and (2) Do instructional plans take advantage of the computer's unique potential? Instructional and management uses of computers are discussed, with the teachers' role described. (MP)
Descriptors: Computers, Curriculum Development, Educational Change, Educational Technology

Hendrickson, A. Dean – Arithmetic Teacher, 1983
A brief description is presented of a curriculum offered in one school system that applies much of the available research on how children learn. Materials used, goals for instruction, concepts emphasized, and intellectual processes engaged in each of grades kindergarten through third are noted. (MP)
Descriptors: Cognitive Development, Curriculum Design, Curriculum Development, Elementary Education

Shufelt, Gwen – Arithmetic Teacher, 1981
The programs provided for mathematically gifted students are divided into two categories, labeled enrichment and acceleration. These two types of programs are discussed and the basic forms of instructional patterns are presented, along with the pros and cons associated with each. (MP)
Descriptors: Academically Gifted, Acceleration, Curriculum Development, Enrichment

Jensen, Robert J. – Arithmetic Teacher, 1990
Discussed is the efficacy of the spiral mathematics curriculum. Many feel that mathematics curricula in their current forms are hurting efforts to improve mathematics education. Reform guidelines are suggested. (KR)
Descriptors: Curriculum Development, Curriculum Evaluation, Curriculum Problems, Educational Improvement

Tobin, Catherine D. – Arithmetic Teacher, 1983
Computer literacy is defined as the ability to utilize capabilities of computers intelligently. Specific skills and characteristics necessary for computer literate pupils are listed. The importance of computer literacy, a curriculum, and evaluation are discussed. (MP)
Descriptors: Computer Literacy, Computer Science, Computers, Curriculum Development

Gress, Eileen K. – Arithmetic Teacher, 1982
A framework for a computer literacy module is detailed, through a description of one that has evolved in schools in Fairport, New York. It is noted that the availability of computer-literacy instructional materials is increasing substantially, but a specific curriculum is sorely lacking. (MP)
Descriptors: Computer Literacy, Computer Science Education, Computers, Curriculum Development

Wiebe, James H. – Arithmetic Teacher, 1987
What students need to know in a world where most computations are done by machine is discussed. Needed changes in the mathematics curriculum are then detailed in relation to mental arithmetic, numeration, decimals and fractions, paper-and-pencil computation, order of operations, problem solving, and instruction on calculator use. (MNS)
Descriptors: Calculators, Computation, Curriculum Development, Educational Planning

Nibbelink, William H. – Arithmetic Teacher, 1990
Proposed is a gradual transition from arithmetic to the idea of an equation with variables in the elementary grades. Vertical and horizontal formats of open sentences, the instructional sequence, vocabulary, and levels of understanding are discussed in this article. (KR)
Descriptors: Algebra, Arithmetic, Back to Basics, Cognitive Development
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