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Linear Equations Part 1 Linear equations model real world relationships and patterns. They are represented by a straight line on a graph. They contain a constant and variables that are sometimes multiplied by a coefficient.
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Linear Equations Part 1 Linear equations model real world relationships and patterns. They are represented by a straight line on a graph. They contain a constant and variables that are sometimes multiplied by a coefficient. EXAMPLES : π¦=π₯ 2π₯+5=10 5π₯β4=2π₯
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Linear Equations Part 1 Linear equations model real world relationships and patterns. They are represented by a straight line on a graph. They contain a constant and variables that are sometimes multiplied by a coefficient. EXAMPLES : π¦=π₯ 2π₯+5=10 5π₯β4=2π₯ Being able to model real world problems from verbal information into equation form is needed. Look for key words and phrases such as added to, subtracted from, times, etc. to create your equation.
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Linear Equations Part 1 Linear equations model real world relationships and patterns. They are represented by a straight line on a graph. They contain a constant and variables that are sometimes multiplied by a coefficient. EXAMPLES : π¦=π₯ 2π₯+5=10 5π₯β4=2π₯ Being able to model real world problems from verbal information into equation form is needed. Look for key words and phrases such as added to, subtracted from, times, etc. to create your equation. EXAMPLE : A tree was four feet tall when it was planted. It grows 2 feet per year. How many years will it take to grow to a height of 16 feet ?
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Linear Equations Part 1 Linear equations model real world relationships and patterns. They are represented by a straight line on a graph. They contain a constant and variables that are sometimes multiplied by a coefficient. EXAMPLES : π¦=π₯ 2π₯+5=10 5π₯β4=2π₯ Being able to model real world problems from verbal information into equation form is needed. Look for key words and phrases such as added to, subtracted from, times, etc. to create your equation. EXAMPLE : A tree was four feet tall when it was planted. It grows 2 feet per year. How many years will it take to grow to a height of 16 feet ? 4+2π¦=16 ** the tree started at 4 feet ( constant of 4 ) ** it grows 2 feet per year ( variable with coefficient of 2 ) ** it grows to 16 feet ( constant of 16 as the result )
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Linear Equations Part 1 Our objective for these equations is to solve for the given variable or variables that are not known. There are specific steps you must follow to solve these equations. Letβs look at a few examples to get you started.
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Linear Equations Part 1 Our objective for these equations is to solve for the given variable or variables that are not known. There are specific steps you must follow to solve these equations. Letβs look at a few examples to get you started. EXAMPLE #1 : Solve 2π₯+12=6 With all linear equations we will : 1. distribute any outside coefficients into parentheses 2. combine any like terms on each side 3. get the variable isolated on one side of the equation
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Linear Equations Part 1 Our objective for these equations is to solve for the given variable or variables that are not known. There are specific steps you must follow to solve these equations. Letβs look at a few examples to get you started. EXAMPLE #1 : Solve 2π₯+12=6 With all linear equations we will : 1. distribute any outside coefficients into parentheses 2. combine any like terms on each side 3. get the variable isolated on one side of the equation We do not need to distribute here and terms are already combined on both sides. To isolate the variable, move your constant first AWAY from the variable by doing the opposite operation.
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Linear Equations Part 1 Our objective for these equations is to solve for the given variable or variables that are not known. There are specific steps you must follow to solve these equations. Letβs look at a few examples to get you started. EXAMPLE #1 : Solve 2π₯+12=6 With all linear equations we will : 1. distribute any outside coefficients into parentheses 2. combine any like terms on each side 3. get the variable isolated on one side of the equation We do not need to distribute here and terms are already combined on both sides. To isolate the variable, move your constant first AWAY from the variable by doing the opposite operation. 2π₯+12=6 β12=β12 ** opposite operation 2π₯=β6
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Linear Equations Part 1 Our objective for these equations is to solve for the given variable or variables that are not known. There are specific steps you must follow to solve these equations. Letβs look at a few examples to get you started. EXAMPLE #1 : Solve 2π₯+12=6 With all linear equations we will : 1. distribute any outside coefficients into parentheses 2. combine any like terms on each side 3. get the variable isolated on one side of the equation We do not need to distribute here and terms are already combined on both sides. To isolate the variable, move your constant first AWAY from the variable by doing the opposite operation. 2π₯+12=6 β12=β12 ** opposite operation 2π₯=β6 2π₯ 2 = β6 2 ** again opposite operation π₯=β3
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Linear Equations Part 1 EXAMPLE #2 : Solve 4β3 2π₯+1 =17
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Linear Equations Part 1 EXAMPLE #2 : Solve 4β3 2π₯+1 =25
4β6π₯β3=25 ** distribute any outside coefficients
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Linear Equations Part 1 EXAMPLE #2 : Solve 4β3 2π₯+1 =25
4β6π₯β3=25 ** distribute any outside coefficients 1β6π₯=25 ** combine any like terms on both sides
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Linear Equations Part 1 EXAMPLE #2 : Solve 4β3 2π₯+1 =25
4β6π₯β3=25 ** distribute any outside coefficients 1β6π₯=25 ** combine any like terms on both sides β =β1 ** move constants first β6π₯=24
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Linear Equations Part 1 EXAMPLE #2 : Solve 4β3 2π₯+1 =25
4β6π₯β3=25 ** distribute any outside coefficients 1β6π₯=25 ** combine any like terms on both sides β =β1 ** move constants first β6π₯=24 β6π₯ β6 = 24 β6 ** divide by any coefficient π₯=β4
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Linear Equations Part 1 EXAMPLE #3 : Solve 4β2π₯=β10+5π₯
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Linear Equations Part 1 EXAMPLE #3 : Solve 4β2π₯=β10+5π₯
There are no coefficients to distribute or like terms on either side to combine. But variables and constants appear on both sides. Letβs move them to opposite sides. I like my variables on the left side and my constants on the right side.
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Linear Equations Part 1 EXAMPLE #3 : Solve 4β2π₯=β10+5π₯
β5π₯= β5π₯ ** opposite operation 4β7π₯=β10
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Linear Equations Part 1 EXAMPLE #3 : Solve 4β2π₯=β10+5π₯
β5π₯= β5π₯ ** opposite operation 4β7π₯=β10 β =β4 ** opposite operation β7π₯=β14
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Linear Equations Part 1 EXAMPLE #3 : Solve 4β2π₯=β10+5π₯
β5π₯= β5π₯ ** opposite operation 4β7π₯=β10 β =β4 ** opposite operation β7π₯=β14 β7π₯ β7 = β14 β7 π₯=2
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Linear Equations Part 1 EXAMPLE #4 : Lisa uses the equation below to estimate the amount of taxes, π, she owes the government. π=0.15 πβ Lisa estimates that she owes the government $3455 in taxes. What is π, the total dollars Lisa earned during the past year ? a) $15,755 b) $20,550 c) $25,550 d) $30,755
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Linear Equations Part 1 EXAMPLE #4 : Lisa uses the equation below to estimate the amount of taxes, π, she owes the government. π=0.15 πβ Lisa estimates that she owes the government $3455 in taxes. What is π, the total dollars Lisa earned during the past year ? a) $15,755 b) $20,550 c) $25,550 d) $30,755 Solution : Solve for π where π=3455
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Linear Equations Part 1 EXAMPLE #4 : Lisa uses the equation below to estimate the amount of taxes, π, she owes the government. π=0.15 πβ Lisa estimates that she owes the government $3455 in taxes. What is π, the total dollars Lisa earned during the past year ? a) $15,755 b) $20,550 c) $25,550 d) $30,755 Solution : Solve for π where π=3455 3455=0.15 πβ
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Linear Equations Part 1 EXAMPLE #4 : Lisa uses the equation below to estimate the amount of taxes, π, she owes the government. π=0.15 πβ Lisa estimates that she owes the government $3455 in taxes. What is π, the total dollars Lisa earned during the past year ? a) $15,755 b) $20,550 c) $25,550 d) $30,755 Solution : Solve for π where π=3455 3455=0.15 πβ 3455=0.15πβ * distribute
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Linear Equations Part 1 EXAMPLE #4 : Lisa uses the equation below to estimate the amount of taxes, π, she owes the government. π=0.15 πβ Lisa estimates that she owes the government $3455 in taxes. What is π, the total dollars Lisa earned during the past year ? a) $15,755 b) $20,550 c) $25,550 d) $30,755 Solution : Solve for π where π=3455 3455=0.15 πβ 3455=0.15πβ * distribute 3455=0.15πβ * combine like terms
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Linear Equations Part 1 EXAMPLE #4 : Lisa uses the equation below to estimate the amount of taxes, π, she owes the government. π=0.15 πβ Lisa estimates that she owes the government $3455 in taxes. What is π, the total dollars Lisa earned during the past year ? a) $15,755 b) $20,550 c) $25,550 d) $30,755 Solution : Solve for π where π=3455 3455=0.15 πβ 3455=0.15πβ * distribute 3455=0.15πβ * combine like terms = * isolate π =0.15π
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Linear Equations Part 1 EXAMPLE #4 : Lisa uses the equation below to estimate the amount of taxes, π, she owes the government. π=0.15 πβ Lisa estimates that she owes the government $3455 in taxes. What is π, the total dollars Lisa earned during the past year ? a) $15,755 b) $20,550 c) $25,550 d) $30,755 Solution : Solve for π where π=3455 3455=0.15 πβ 3455=0.15πβ * distribute 3455=0.15πβ * combine like terms = * isolate π =0.15π = 0.15π 0.15 π= ANSWER is C
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