## High School - Number and Quantity

### Domains

### Standards

Code | Domain | Cluster | Standard | Object Count |
---|---|---|---|---|

N-RN.1 | The Real Number System | Extend the properties of exponents to rational exponents. | Explain how the definition of the meaning of rational exponents follows from extending the properties of integer exponents to those values, allowing for a notation for radicals in terms of rational exponents. For example, we define 51/3 to be the cube root of 5 because we want (51/3)^3 = 5(1/3)^3 to hold, so (51/3)^3 must equal 5. | 1 |

N-RN.2 | The Real Number System | Extend the properties of exponents to rational exponents. | Rewrite expressions involving radicals and rational exponents using the properties of exponents. | 0 |

N-RN.3 | The Real Number System | Use properties of rational and irrational numbers. | Explain why the sum or product of two rational numbers is rational; that the sum of a rational number and an irrational number is irrational; and that the product of a nonzero rational number and an irrational number is irrational. | 5 |

N.Q.1 | Quantities* | Reason quantitatively and use units to solve problems. | Use units as a way to understand problems and to guide the solution of multi-step problems; choose and interpret units consistently in formulas; choose and interpret the scale and the origin in graphs and data displays. | 0 |

N.Q.2 | Quantities* | Reason quantitatively and use units to solve problems. | Define appropriate quantities for the purpose of descriptive modeling. | 0 |

N.Q.3 | Quantities* | Reason quantitatively and use units to solve problems. | Choose a level of accuracy appropriate to limitations on measurement when reporting quantities. | 0 |

N-CN.1 | The Complex Number System | Perform arithmetic operations with complex numbers. | Know there is a complex number i such that i^2 = –1, and every complex number has the form a + bi with a and b real. | 0 |

N-CN.2 | The Complex Number System | Perform arithmetic operations with complex numbers. | Use the relation i^2 = –1 and the commutative, associative, and distributive properties to add, subtract, and multiply complex numbers. | 1 |

N-CN.3 | The Complex Number System | Perform arithmetic operations with complex numbers. | (+) Find the conjugate of a complex number; use conjugates to find moduli and quotients of complex numbers. | 0 |

N-CN.4 | The Complex Number System | Represent complex numbers and their operations on the complex plane. | (+) Represent complex numbers on the complex plane in rectangular and polar form (including real and imaginary numbers), and explain why the rectangular and polar forms of a given complex number represent the same number. | 0 |

N-CN.5 | The Complex Number System | Represent complex numbers and their operations on the complex plane. | (+) Represent addition, subtraction, multiplication, and conjugation of complex numbers geometrically on the complex plane; use properties of this representation for computation. For example, (-1 + v3 i)^3 = 8 because (-1 + v3 i) has modulus 2 and argument 120°. | 0 |

N-CN.6 | The Complex Number System | Represent complex numbers and their operations on the complex plane. | (+) Calculate the distance between numbers in the complex plane as the modulus of the difference, and the midpoint of a segment as the average of the numbers at its endpoints. | 0 |

N-CN.7 | The Complex Number System | Use complex numbers in polynomial identities and equations. | Solve quadratic equations with real coefficients that have complex solutions. | 1 |

N-CN.8 | The Complex Number System | Use complex numbers in polynomial identities and equations. | (+) Extend polynomial identities to the complex numbers. For example, rewrite x^2 + 4 as (x + 2i)(x – 2i). | 0 |

N-CN.9 | The Complex Number System | Use complex numbers in polynomial identities and equations. | (+) Know the Fundamental Theorem of Algebra; show that it is true for quadratic polynomials. | 1 |

N-VM.1 | Vector & Matrix Quantities | Represent and model with vector quantities. | (+) Recognize vector quantities as having both magnitude and direction. Represent vector quantities by directed line segments, and use appropriate symbols for vectors and their magnitudes (e.g., v, |v|, ||v||, v). | 0 |

N-VM.2 | Vector & Matrix Quantities | Represent and model with vector quantities. | (+) Find the components of a vector by subtracting the coordinates of an initial point from the coordinates of a terminal point. | 0 |

N-VM.3 | Vector & Matrix Quantities | Represent and model with vector quantities. | (+) Solve problems involving velocity and other quantities that can be represented by vectors. | 0 |

N-VM.4 | Vector & Matrix Quantities | Perform operations on vectors. | (+) Add and subtract vectors. •Add vectors end-to-end, component-wise, and by the parallelogram rule. Understand that the magnitude of a sum of two vectors is typically not the sum of the magnitudes. •Given two vectors in magnitude and direction form, determine the magnitude and direction of their sum. •Understand vector subtraction v – w as v + (–w), where –w is the additive inverse of w, with the same magnitude as w and pointing in the opposite direction. Represent vector subtraction graphically by connecting the tips in the appropriate order, and perform vector subtraction component-wise. | 0 |

N-VM.5 | Vector & Matrix Quantities | Perform operations on vectors. | (+) Multiply a vector by a scalar. •Represent scalar multiplication graphically by scaling vectors and possibly reversing their direction; perform scalar multiplication component-wise, e.g., as c(v.x, v.y) = (cv.x, cv.y). •Compute the magnitude of a scalar multiple cv using ||cv|| = |c|v. Compute the direction of cv knowing that when |c|v ? 0, the direction of cv is either along v (for c > 0) or against v (for c < 0). | 0 |

N-VM.6 | Vector & Matrix Quantities | Perform operations on vectors. | (+) Use matrices to represent and manipulate data, e.g., to represent payoffs or incidence relationships in a network. | 0 |

N-VM.7 | Vector & Matrix Quantities | Perform operations on matrices and use matrices in applications. | (+) Multiply matrices by scalars to produce new matrices, e.g., as when all of the payoffs in a game are doubled. | 0 |

N-VM.8 | Vector & Matrix Quantities | Perform operations on matrices and use matrices in applications. | (+) Add, subtract, and multiply matrices of appropriate dimensions. | 2 |

N-VM.9 | Vector & Matrix Quantities | Perform operations on matrices and use matrices in applications. | (+) Understand that, unlike multiplication of numbers, matrix multiplication for square matrices is not a commutative operation, but still satisfies the associative and distributive properties. | 0 |

N-VM.10 | Vector & Matrix Quantities | Perform operations on matrices and use matrices in applications. | (+) Understand that the zero and identity matrices play a role in matrix addition and multiplication similar to the role of 0 and 1 in the real numbers. The determinant of a square matrix is nonzero if and only if the matrix has a multiplicative inverse. | 0 |

N-VM.11 | Vector & Matrix Quantities | Perform operations on matrices and use matrices in applications. | (+) Multiply a vector (regarded as a matrix with one column) by a matrix of suitable dimensions to produce another vector. Work with matrices as transformations of vectors. | 0 |

N-VM.12 | Vector & Matrix Quantities | Perform operations on matrices and use matrices in applications. | (+) Work with 2 × 2 matrices as a transformations of the plane, and interpret the absolute value of the determinant in terms of area. | 0 |