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1 Preliminaries Precalculus Review I Precalculus Review II The Cartesian Coordinate System Straight Lines 1.1 Precalculus Review I Origin Negative Direction –4 –3 –2 –1 – 2 Positive Direction 0 1 2 3 4 The Real Number Line We can represent real numbers geometrically by points on a real number, or coordinate, line: Origin Negative Direction –4 –3 –2 –1 Positive Direction 0 1 2 2 3 4 This line includes all real numbers. Exactly one point on the line is associated with each real number, and vice-versa. Finite Intervals Open Intervals The set of real numbers that lie strictly between two fixed numbers a and b is called an open interval (a, b). It consists of all the real numbers that satisfy the inequalities a < x < b. It is called “open” because neither of its endpoints is included in the interval. Finite Intervals Closed Intervals The set of real numbers that lie between two fixed numbers a and b, that includes a and b, is called a closed interval [a, b]. It consists of all the real numbers that satisfy the inequalities a x b. It is called “closed” because both of its endpoints are included in the interval. Finite Intervals Half-Open Intervals The set of real numbers that between two fixed numbers a and b, that contains only one of its endpoints a or b, is called a half-open interval (a, b] or [a, b). It consists of all the real numbers that satisfy the inequalities a < x b or a x < b. Infinite Intervals Examples of infinite intervals include: (a, ), [a, ), (–, a), and (–, a]. The above are defined, respectively, by the set of real numbers that satisfy x > a, x a, x < a, x a. Exponents and Radicals If b is any real number and n is a positive integer, then the expression bn is defined as the number bn = b · b b · · … · b n factors The number b is called the base, and the superscript n is called the power of the exponential expression bn. For example: 3 2 2 2 2 8 25 2 2 2 2 2 32 3 3 3 3 27 If b ≠ 0, we define b0 = 1. For example: 20 = 1 and (–)0 = 1, but 00 is undefined. Exponents and Radicals If n is a positive integer, then the expression b1/n is defined to be the number that, when raised to the nth power, is equal to b, thus (b1/n)n = b Such a number is called the nth root of b, also written as n b Similarly, the expression bp/q is defined as the number (b1/q)p Examples: 2 3/2 4 2 5/2 or 1/2 3 q bp 1.41412 2.8283 3 1 1 1 1 5/2 5 5 1/2 4 4 2 32 Laws of Exponents Law Example 1. am · an = am + n x2 · x3 = x 2 + 3 = x5 am 2. n a m n a x7 74 3 x x x4 (a 0) 3. (am)n = am · n (x4)3 = x4 · 3 = x12 4. (ab)n = an · bn (2x)4 = 24 · x 4 = 16x4 n a a 5. n b b n 3 x3 x3 x 3 8 2 2 Examples Simplify the expressions a. 3x 4 x 2 3 12 x 23 12 x 5 165 / 4 3/4 1/ 2 16 16 b. 6 2/3 3 c. d. x y e. y 1/ 4 x 3 3/ 2 Example 1, page 6 2 2 4 16 3 23 8 6(2/3)(3) 66/3 62 36 x y 3 2 2 2 x (3)( 2) 2 y (3/2)( 2) y 3 x1/2 (1/4)( 2) 1/2 3 x x y y ( 2)( 2) y4 x y 6 x 6 4 Examples Simplify the expressions (assume x, y, m, and n are positive) 4 a. 16 x y 16 x y 4 8 4 8 1/4 161/4 x 4/4 y 8/4 2 xy 2 b. 12m n 3m n 36m n 36m n 3 5 3 c. 27 x 3 Example 2, page 7 8y 3 8 2 6 27 x 8 y 6 1/3 3 1/3 8 2 1/2 361/2 m8/2n2/2 6m4n 271/3 x 6/3 3x 2 1/3 3/3 8 y 2y Examples Rationalize the denominator of the expression 3x x 3x x 2 x 2 x 3x x 2 x2 3x x 2x 3 x 2 Example 3, page 7 Examples Rationalize the numerator of the expression 3 x 3 x x 2x 2x x 3 x2 2x x 3x 2x x 3 2 x Example 4, page 7 Operations With Algebraic Expressions An algebraic expression of the form axn, where the coefficient a is a real number and n is a nonnegative integer, is called a monomial, meaning it consists of one term. Examples: 7x2 2xy 12x3y4 A polynomial is a monomial or the sum of two or more monomials. Examples: x2 + 4x + 4 x4 + 3x2 – 3 x2y – xy + y Operations With Algebraic Expressions Constant terms, or terms containing the same variable factors are called like, or similar, terms. Like terms may be combined by adding or subtracting their numerical coefficients. Examples: 3x + 7x = 10x 12xy – 7xy = 5xy Examples Simplify the expression (2 x 4 3x 3 4 x 6) (3x 4 9 x 3 3x 2 ) 2 x 4 3x 3 4 x 6 3x 4 9 x 3 3x 2 2 x 4 3x 4 3x 3 9 x 3 3x 2 4 x 6 x 4 6 x 3 3x 2 4 x 6 Example 5, page 8 Examples Simplify the expression 2t 3 {t 2 [t (2t 1)] 4} 2t 3 {t 2 [t 2t 1] 4} 2t 3 {t 2 [t 1] 4} 2t 3 {t 2 t 1 4} 2t 3 t 2 t 1 4 2t 3 t 2 t 3 Example 5, page 8 Examples Perform the operation and simplify the expression ( x 2 1)(3x 2 10 x 3) x 2 (3x 2 10 x 3) 1(3x 2 10 x 3) 3x 4 10 x 3 3x 2 3x 2 10 x 3 3x 4 10 x 3 6 x 2 10 x 3 Example 6, page 8 Examples Perform the operation and simplify the expression ( e t e t )e t e t ( e t e t ) e 2 t e 0 e 2 t e 0 11 2 Example 6, page 9 Factoring Factoring is the process of expressing an algebraic expression as a product of other algebraic expressions. Example: 3x 2 x x(3x 1) Factoring To factor an algebraic expression, first check to see if it contains any common terms. If so, factor out the greatest common term. For example, the greatest common factor for the expression 2a 2 x 4ax 6a is 2a, because 2a 2 x 4ax 6a 2a ax 2a 2 x 2a 3 2a (ax 2 x 3) Examples Factor out the greatest common factor in each expression a. b. c. 2 ye Example 7, page 9 0.3t 2 3t 0.3t (t 10) 2 x 3/ 2 3 x1/ 2 x1/2 (2 x 3) xy 2 2 xy e 3 xy 2 2 ye (1 xy 2 ) xy 2 Examples Factor out the greatest common factor in each expression a. 2ax 2ay bx by 2a ( x y ) b( x y ) (2a b)( x y ) b. 3x y 4 2 y 6 x 3x y 2 y 6 x 4 y (3x 2) 2(3x 2) (3x 2)( y 2) Example 8, page 10 Factoring Second Degree Polynomials The factors of the second-degree polynomial with integral coefficients px2 + qx + r are (ax + b)(cx + d), where ac = p, ad + bc = q, and bd = r. Since only a limited number of choices are possible, we use a trial-and-error method to factor polynomials having this form. Examples Find the correct factorization for x2 – 2x – 3 Solution The x2 coefficient is 1, so the only possible first degree terms are (x )(x ) The product of the constant term is –3, which gives us the following possible factors (x – 1)(x + 3) (x + 1)(x – 3) We check to see which set of factors yields –2 for the x coefficient: (–1)(1) + (1)(3) = 2 or (1)(1) + (1)(–3) = –2 and conclude that the correct factorization is x2 – 2x – 3 = (x + 1)(x –3) Examples Find the correct factorization for the expressions 3x 2 4 x 4 (3x 2)( x 2) 3x 2 6 x 24 3( x 2 2 x 8) 3( x 4)( x 2) Example 9, page 11 Roots of Polynomial Expressions A polynomial equation of degree n in the variable x is an equation of the form an x n an 1 x n1 a0 0 where n is a nonnegative integer and a0, a1, … , an are real numbers with an ≠ 0. For example, the equation 2 x 5 8 x 3 6 x 2 3x 1 0 is a polynomial equation of degree 5. Roots of Polynomial Expressions The roots of a polynomial equation are the values of x that satisfy the equation. One way to factor the roots of a polynomial equation is to factor the polynomial and then solve the equation. For example, the polynomial equation x 3 3x 2 2 x 0 may be written in the form x( x 2 3x 2) 0 or x( x 1)( x 2) 0 For the product to be zero, at least one of the factors must be zero, therefore, we have x=0 x–1=0 x–2=0 So, the roots of the equation are x = 0, 1, and 2. The Quadratic Formula The solutions of the equation ax2 + bx + c = 0 (a ≠ 0) are given by b b2 4ac x 2a Examples Solve the equation using the quadratic formula: 2 x 2 5 x 12 0 Solution For this equation, a = 2, b = 5, and c = –12, so b b2 4ac 5 52 4(2)(12) x 2a 2(2) 5 121 5 11 4 4 3 4 or 2 Example 10, page 12 Examples Solve the equation using the quadratic formula: x 2 3x 8 Solution First, rewrite the equation in the standard form x 2 3x 8 0 For this equation, a = 1, b = 3, and c = – 8, so b b2 4ac 3 32 4(1)( 8) x 2a 2(1) 3 41 2 3 41 3 41 so, x 1.7 or x 4.7 2 2 Example 10, page 12 1.2 Precalculus Review II 1 h 1 22 1 h 1 1 h 1 1 h 1 h h 1 h 1 h 1 h 1 1 h 1 h h 1 h 1 h 1 hh 11 1 1 h 1 22 Rational Expressions Quotients of polynomials are called rational expressions. For example 3 x 8 2x 3 5 x 2 y 3 2 xy 4x 2 5ab Rational Expressions The properties of real numbers apply to rational expressions. Examples Using the properties of number we may write ac a c a a 1 bc b c b b where a, b, and c are any real numbers and b and c are not zero. Similarly, we may write ( x 2)( x 3) ( x 2) ( x 2)( x 3) ( x 2) ( x 2,3) Examples Simplify the expression x 2 2 x 3 ( x 3)( x 1) 2 x 4 x 3 ( x 3)( x 1) x 1 x 1 Example 1, page 16 Examples Simplify the expression 2 2 ( x 2 1)2 ( 2) (2 x)(2)( x 2 1)(2 x) ( x 1) ( x 1)( 2) (2 x )(2)(2 x) 2 4 ( x 1) ( x 2 1)4 ( x 2 1)( 2 x 2 2 8 x 2 ) ( x 2 1)4 ( x 2 1)(6 x 2 2) ( x 2 1) 4 (6 x 2 2) 2 ( x 1)3 2(3x 2 1) ( x 2 1)3 Example 1, page 16 Rules of Multiplication and Division If P, Q, R, and S are polynomials, then Multiplication P R PR Q S QS (Q, S 0) Division P R P S PS Q S Q R QR (Q, R, S 0) Example Perform the indicated operation and simplify ( x 2) 2 2 x 8 x 2 4 x 4 2( x 4) 2 x2 x 16 x 2 ( x 4)( x 4) 2( x 4)( x 2)( x 2) ( x 2)( x 4)( x 4) 2( x 2) x4 Example 2, page 16 Rules of Addition and Subtraction If P, Q, R, and S are polynomials, then Addition P Q PQ R S R ( R 0) Subtraction P Q P Q R S R ( R 0) Example Perform the indicated operation and simplify 1 1 x ( x h) xh x x( x h) x xh x( x h) h x( x h) Example 3b, page 17 Other Algebraic Fractions The techniques used to simplify rational expressions may also be used to simplify algebraic fractions in which the numerator and denominator are not polynomials. Examples Simplify x 11 1 x 1 x 1 x 2 x 4 x2 4 x 1 x2 4 x x x 1 x2 x x 1 ( x 2)( x 2) x ( x 1)( x 2) Example 4a, page 18 Examples Simplify x 1 y 1 x 2 y 2 1 1 yx x y xy 2 2 1 1 y x 2 2 x y x2 y2 y x x2 y2 yx ( xy )2 2 2 xy y x xy ( y x )( y x ) xy yx Example 4b, page 18 Rationalizing Algebraic Fractions When the denominator of an algebraic fraction contains sums or differences involving radicals, we may rationalize the denominator. To do so we make use of the fact that a b a b a b ab 2 2 Examples Rationalize the denominator 1 1 1 x 1 x 1 x 1 x 1 x 1 2 x 1 x 1 x Example 6, page 19 2 Examples Rationalize the numerator 1 h 1 1 h 1 1 h 1 1 h 1 h h 1 h 1 h 1 h 1 h 1 h 1 1 1 h 1 Example 7, page 19 1 h 1 h h 1 h 1 2 2 Properties of Inequalities If a, b, and c, are any real numbers, then Property 1 If a < b and b < c, then a < c. Property 2 If a < b, then a + c < b + c. Property 3 If a < b and c > 0, then ac < bc. Property 4 If a < b and c < 0, then ac > bc. Examples Find the set of real numbers that satisfy –1 2x – 5 < 7 Solution Add 5 to each member of the given double inequality 4 2x < 12 Multiply each member of the inequality by ½ 2x<6 So, the solution is the set of all values of x lying in the interval [2, 6). Example 8, page 20 Examples Solve the inequality x2 + 2x – 8 < 0. Solution Factorizing we get (x + 4)(x – 2) < 0. For the product to be negative, the factors must have opposite signs, so we have two possibilities to consider: 1. The inequality holds if (x + 4) < 0 and (x – 2) > 0, which means x < –4, and x > 2, but this is impossible: x cannot meet these two conditions simultaneously. 2. The inequality also holds if (x + 4) > 0 and (x – 2) < 0, which means x > –4, and x < 2, or –4 < x < 2. So, the solution is the set of all values of x lying in the interval (–4, 2). Example 9, page 20 Examples Solve the inequality Solution x 1 0 x 1 For the quotient to be positive, the numerator and denominator must have the same sign, so we have two possibilities to consider: 1. The inequality holds if (x + 1) 0 and (x – 1) < 0, which means x –1, and x < 1, both of these conditions are met only when x –1. 2. The inequality also holds if (x + 1) 0 and (x – 1) > 0, which means x –1, and x > 1, both of these conditions are met only when x >1. So, the solution is the set of all values of x lying in the intervals (–, –1] and (1, ). Example 10, page 21 Absolute Value The absolute value of a number a is denoted |a| and is defined by a if a 0 a a if a 0 Absolute Value Properties If a, b, and c, are any real numbers, then Property 5 |–a| = |a| Property 6 |ab| = |a| |b| Property 7 Property 8 a a b b (b ≠ 0) |a + b| ≤ |a| + |b| Examples Evaluate the expression | – 5| + 3 Solution Since – 5 < 0, we see that | – 5| = –( – 5). Therefore | – 5| + 3 = – ( – 5) +3 =8– ≈ 4.8584 Example 12a, page 22 Examples Evaluate the expression 32 2 3 Solution Since 3 2 0 , we see that 32 32 Similarly, 2 3 0 , so 2 3 2 3 Therefore, 32 2 3 42 3 2 2 3 0.5359 Example 12b, page 22 32 2 3 Examples Evaluate the inequality |x| 5. Solution If x 0, then |x| = x, so |x| 5 implies x 5. If x < 0, then |x| = –x , so |x| 5 implies –x 5 or x –5. So, |x| 5 means –5 x ≤ 5, and the solution is [–5, 5]. Example 13, page 22 Examples Evaluate the inequality |2x – 3| 1. Solution From our last example, we know that |2x – 3| 1 is equivalent to –1 2x – 3 1. Adding 3 throughout we get 2 2x 4. Dividing by 2 throughout we get 1 x 2, so the solution is [1, 2]. Example 14, page 22 1.3 The Cartesian Coordinate System P(x, y) C(h, k) k h r The Cartesian Coordinate System At the beginning of the chapter we saw a one-to-one correspondence between the set of real numbers and the points on a straight line (one dimensional space). –4 –3 –2 –1 0 1 2 3 4 The Cartesian Coordinate System The Cartesian coordinate system extends this concept to a plane (two dimensional space) by adding a vertical axis. 4 3 2 1 –4 –3 –2 –1 –1 –2 –3 –4 1 2 3 4 The Cartesian Coordinate System The horizontal line is called the x-axis, and the vertical line is called the y-axis. y 4 3 2 1 –4 –3 –2 –1 –1 –2 –3 –4 1 2 3 4 x The Cartesian Coordinate System The point where these two lines intersect is called the origin. y 4 3 2 1 –4 –3 –2 –1 –1 –2 –3 –4 Origin 1 2 3 4 x The Cartesian Coordinate System In the x-axis, positive numbers are to the right and negative numbers are to the left of the origin. y 4 3 2 Negative Direction –4 –3 –2 –1 1 –1 –2 –3 –4 Positive Direction 1 2 3 4 x The Cartesian Coordinate System In the y-axis, positive numbers are above and negative numbers are below the origin. 3 2 1 –4 –3 –2 –1 –1 –2 –3 –4 1 Negative Direction 4 Positive Direction y 2 3 4 x The Cartesian Coordinate System A point in the plane can now be represented uniquely in this coordinate system by an ordered pair of numbers (x, y). y (– 2, 4) 4 (4, 3) 3 2 1 –4 –3 –2 –1 (– 1, – 2) –1 –2 –3 –4 1 2 3 4 (3,–1) x The Cartesian Coordinate System The axes divide the plane into four quadrants as shown below. y 4 Quadrant II (–, +) Quadrant I (+, +) 3 2 1 –4 –3 –2 Quadrant III (–, –) –1 –1 –2 –3 –4 1 2 3 4 Quadrant IV (+, –) x The Distance Formula The distance between any two points in the plane may be expressed in terms of their coordinates. Distance formula The distance d between two points P1(x1, y1) and P2(x2, y2) in the plane is given by d x2 x1 y2 y1 2 2 Examples Find the distance between the points (–4, 3) and (2, 6). Solution Let P1(–4, 3) and P2(2, 6) be points in the plane. We have x1 = –4 y1 = 3 x2 = 2 y2 = 6 Using the distance formula, we have d x2 x1 2 y2 y1 2 (4) 6 3 2 2 62 32 45 3 5 Example 1, page 26 2 Examples Let P(x, y) denote a point lying on the circle with radius r and center C(h, k). Find a relationship between x and y. Solution By definition in a circle, the distance between P(x, y) and C(h, k) is r. y With distance formula we get x h y k r 2 Squaring both sides gives x h 2 P(x, y) 2 k C(h, k) y k r2 2 h Example 2, page 27 r x Equation of a Circle An equation of a circle with center C(h, k) and radius r is given by x h 2 y k r2 2 Examples Find an equation of the circle with radius 2 and center (–1, 3). Solution We use the circle formula with r = 2, h = –1, and k = 3: x h y k r2 2 2 x ( 1) y 3 2 2 x 1 2 22 y 3 4 2 y (–1, 3) 2 –1 Example 3, page 27 3 x Examples Find an equation of the circle with radius 3 and center located at the origin. Solution We use the circle formula with r = 3, h = 0, and k = 0: x h y k r2 2 2 2 x 0 y 0 3 2 2 x y 9 2 Example 3, page 27 y 2 3 x 1.4 Straight Lines y 6 5 4 x = 3 (2, 5) y = – 4 3 2 (5, 1) 1 1 2 3 4 5 x 6 L Slope of a Vertical Line Let L denote the unique straight line that passes through the two distinct points (x1, y1) and (x2, y2). If x1 = x2, then L is a vertical line, and the slope is undefined. y L (x1, y1) (x2, y2) x Slope of a Nonvertical Line If (x1, y1) and (x2, y2) are two distinct points on a nonvertical line L, then the slope m of L is given by m y y2 y1 x x2 x1 y L (x2, y2) y2 – y1 = y (x1, y1) x2 – x1 = x x Slope of a Nonvertical Line If m > 0, the line slants upward from left to right. L y m=2 y = 2 x = 1 x Slope of a Nonvertical Line If m < 0, the line slants downward from left to right. y m = –1 x = 1 y = –1 x L Examples Sketch the straight line that passes through the point (2, 5) and has slope –4/3. Solution 1. Plot the point (2, 5). 2. A slope of –4/3 means that if x increases by 3, y decreases by 4. 3. Plot the point (5, 1). 4. Draw a line across the two points. y 6 5 4 x = 3 (2, 5) y = –4 3 2 (5, 1) 1 x 1 Example 1, page 34 2 3 4 5 6 L Examples Find the slope m of the line that goes through the points (–1, 1) and (5, 3). Solution Choose (x1, y1) to be (–1, 1) and (x2, y2) to be (5, 3). With x1 = –1, y1 = 1, x2 = 5, y2 = 3, we find y2 y1 3 1 2 1 m x2 x1 5 ( 1) 6 3 Example 2, page 35 Equations of Lines Let L be a straight line parallel to the y-axis. Then L crosses the x-axis at some point (a, 0) , with the x-coordinate given by x = a, where a is a real number. Any other point on L has the form (a, y ), where y is an appropriate number. The vertical line L can therefore be described as x=a y L (a, y) (a, 0) x Equations of Lines Let L be a nonvertical line with a slope m. Let (x1, y1) be a fixed point lying on L and (x, y) be variable point on L distinct from (x1, y1). Using the slope formula by letting (x, y) = (x1, y1) we get y y1 m x x1 Multiplying both sides by x – x2 we get y y1 m( x x1 ) Point-Slope Form An equation of the line that has slope m and passes through point (x1, y1) is given by y y1 m( x x1 ) Examples Find an equation of the line that passes through the point (1, 3) and has slope 2. Solution Use the point-slope form y y1 m( x x1 ) Substituting for point (1, 3) and slope m = 2, we obtain y 3 2( x 1) Simplifying we get 2x y 1 0 Example 5, page 36 Examples Find an equation of the line that passes through the points (–3, 2) and (4, –1). Solution The slope is given by y y1 1 2 3 m x x1 4 ( 3) 7 Substituting in the point-slope form for point (4, –1) and slope m = – 3/7, we obtain 3 y 1 ( x 4) 7 7 y 7 3x 12 3x 7 y 5 0 Example 6, page 36 Perpendicular Lines If L1 and L2 are two distinct nonvertical lines that have slopes m1 and m2, respectively, then L1 is perpendicular to L2 (written L1 ┴ L2) if and only if 1 m1 m2 Example Find the equation of the line L1 that passes through the point (3, 1) and is perpendicular to the line L2 described by y 3 2( x 1) Solution L2 is described in point-slope form, so its slope is m2 = 2. Since the lines are perpendicular, the slope of L1 must be m1 = –1/2 Using the point-slope form of the equation for L1 we obtain 1 y 1 ( x 3) 2 2 y 2 x 3 x 2y 5 0 Example 7, page 37 Crossing the Axis A straight line L that is neither horizontal nor vertical cuts the x-axis and the y-axis at , say, points (a, 0) and (0, b), respectively. The numbers a and b are called the x-intercept and y-intercept, respectively, of L. y y-intercept (0, b) x-intercept (a, 0) x L Slope Intercept Form An equation of the line that has slope m and intersects the y-axis at the point (0, b) is given by y = mx + b Examples Find the equation of the line that has slope 3 and y-intercept of –4. Solution We substitute m = 3 and b = –4 into y = mx + b, and get y = 3x – 4 Example 8, page 38 Examples Determine the slope and y-intercept of the line whose equation is 3x – 4y = 8. Solution Rewrite the given equation in the slope-intercept form. Thus, 3x 4 y 8 4 y 8 3x 3 y x2 4 Comparing to y = mx + b we find that m = ¾ , and b = – 2. So, the slope is ¾ and the y-intercept is – 2. Example 9, page 38 Applied Example An art object purchased for $50,000 is expected to appreciate in value at a constant rate of $5000 per year for the next 5 years. Write an equation predicting the value of the art object for any given year. What will be its value 3 years after the purchase? Solution Let x = time (in years) since the object was purchased y = value of object (in dollars) Then, y = 50,000 when x = 0, so the y-intercept is b = 50,000. Every year the value rises by 5000, so the slope is m = 5000. Thus, the equation must be y = 5000x + 50,000. After 3 years the value of the object will be $65,000: y = 5000(3) + 50,000 = 65,000 Applied Example 11, page 39 General Form of an Linear Equation The equation Ax + By + C = 0 where A, B and C are constants and A and B are not both zero, is called the general form of a linear equation in the variables x and y. Theorem 1 An equation of a straight line is a linear equation; conversely, every linear equation represents a straight line. Example Sketch the straight line represented by the equation 3x – 4y – 12 = 0 Solution Since every straight line is uniquely determined by two distinct points, we need find only two such points through which the line passes in order to sketch it. For convenience, let’s compute the x- and y-intercepts: ✦ Setting y = 0, we find x = 4; so the x-intercept is 4. ✦ Setting x = 0, we find y = –3; so the y-intercept is –3. Thus, the line goes through the points (4, 0) and (0, –3). Example 12, page 40 Example Sketch the straight line represented by the equation 3x – 4y – 12 = 0 Solution Graph the line going through the points (4, 0) and (0, –3). y L 1 (4, 0) x –1 1 –2 –3 –4 Example 12, page 40 (0, – 3) 2 3 4 5 6 End of Chapter