Please Who Can Solve This Equation - Education - Nairaland
Nairaland Forum › Nairaland General › Education › Please Who Can Solve This Equation (1140 Views)
| Please Who Can Solve This Equation by richmond500(op): 9:16am On Feb 19, 2025 |
2x-2y=5 2x+3y+1=0 Using graphical method, thanks |
| Re: Please Who Can Solve This Equation by ChiefJusticeFuc: 9:30am On Feb 19, 2025 |
2x-2y = 5 x-y = 5/2 X = 5/2+y ------i 2x + 3y = -1 2(5/2+y) +3y = -1 5y = -6 Y= -6/5. --------ii Sub ii into I X = 7/5 |
| Re: Please Who Can Solve This Equation by Fidelity2050(m): 9:30am On Feb 19, 2025 |
| Re: Please Who Can Solve This Equation by richmond500(op): 9:33am On Feb 19, 2025*. Modified: 10:30am On Feb 19, 2025 |
ChiefJusticeFuc:thanks boss but I need graphical method |
| Re: Please Who Can Solve This Equation by richmond500(op): 9:33am On Feb 19, 2025 |
Fidelity2050:pm kwa |
| Re: Please Who Can Solve This Equation by Fidelity2050(m): 9:35am On Feb 19, 2025 |
richmond500:Ok na. No worry urself. Thanks |
| Re: Please Who Can Solve This Equation by Mynd44(mod): 10:07am On Feb 19, 2025 |
ChiefJusticeFuc:Use graphical method |
| Re: Please Who Can Solve This Equation by CodeTemplar: 10:08am On Feb 19, 2025 |
No graph tools on Nairaland unless one plots the graph elsewhere and export as JPEG here. |
| Re: Please Who Can Solve This Equation by ChiefJusticeFuc: 10:27am On Feb 19, 2025 |
Mynd44:give me graph |
| Re: Please Who Can Solve This Equation by richmond500(op): 10:27am On Feb 19, 2025 |
Mynd44:that was what I was looking for too, i wasn't looking for elimination method, I can do that one. Abeg help me move am to front page before my nephew go think say I no sabi book she no go understand say just because I go university no mean say I go fit solve every maths ![]() |
| Re: Please Who Can Solve This Equation by richmond500(op): 10:28am On Feb 19, 2025 |
ChiefJusticeFuc:u fit just write am for book na, Oga sir. I fit plot graph that year for ordinary paper sef. Thanks in advance, my pride depends on it ![]() |
| Re: Please Who Can Solve This Equation by richmond500(op): 10:29am On Feb 19, 2025 |
CodeTemplar:just rough sketch am, I go fit explain am give the person |
| Re: Please Who Can Solve This Equation by Ebuka78: 10:33am On Feb 19, 2025*. Modified: 11:02am On Feb 19, 2025 |
2x-2y=5.......(1) x -2 2x+3y+1=0.......(2) x2 Multiply equ 1 by -2 Multiply equ 2 by 2 New equations become: -4x + 4y = -10.....(3) 4x + 6y = -2........(4) Adding equ 3 from 4 -4x cancels 4x, 4y + 6y becomes 10y Then -10 + (-2) becomes -12 We have 10y = -12 y = - 12/10 = -6/5 To get x, from equ 4 4x + 6 y = -2 4x + 6 (-6/5) = -2 4x -(36/5) = -2 4x = -2 + 36/5 4x = (-10+36)/5= 26/5 4x = 26/5 x = 26/5 ÷ 4 = 26/5 x 1/4 = 26/20= 13/10 x = 13/10, y = -6/5 Now, the graph can now be plotted y = mx + b For equ 1 x = 5 - 2y /2 For equ 2 y = 2/3 x - 1/3 Plotting the two lines on the coordinates Equation 1 has a slop of 1 and intersect at y-intercept of -5/2 Equation 2 has a slop of -2/3 and y-intercept of 1/3 Plotting the lines you get ( 13/10, -6/5) Graph photo coming soon |
| Re: Please Who Can Solve This Equation by naturalwaves: 10:34am On Feb 19, 2025 |
richmond500:You can't expect someone to do that for you here. Rather, be open to learning and ask them to explain to you. Take equation 1 and make y the subject of formula Take equation 2 and make y the subject of formula Now, select values of x from say -3 down to +3 Set up a first table for equation 1 When x = -3, find y When x = -2, find y etc etc till you get to the point where X = +3 Set up the second table again with the equation 2 where you made y the subject following similar steps . You now have 2 tables for 2 different equations Plot your points on the graph and select any convenient scale of your choice that would cover all values. Use table 1 to plot the points. When you're done, draw a straight line through the points. Use table 2 to plot the points there as well. When you're done, draw a straight line through those points. The two lines are going to intersect. Trace the point of intersection to the y axis and note the point . That's the value of y. Trace the point of intersection to the X axis and note the value. That's the value of x. That's all! If you require further explanation, do let me know. |
| Re: Please Who Can Solve This Equation by richmond500(op): 10:38am On Feb 19, 2025 |
naturalwaves:person don use mouth explain maths give u before? This ur explanation sounds like programming language to me.. I appreciate ur effort in helping sha |
| Re: Please Who Can Solve This Equation by Phabulous4(m): 10:40am On Feb 19, 2025 |
Use equation 1 and 2 to plot the graph. richmond500: |
| Re: Please Who Can Solve This Equation by richmond500(op): 10:44am On Feb 19, 2025 |
Phabulous4:ok
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| Re: Please Who Can Solve This Equation by richmond500(op): 10:57am On Feb 19, 2025 |
naturalwaves:I made y subject of formular and I couldn't go any further
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| Re: Please Who Can Solve This Equation by richmond500(op): 11:14am On Feb 19, 2025 |
Ebuka78:I'll be glad bro |
| Re: Please Who Can Solve This Equation by Hellonearth: 12:05pm On Feb 19, 2025 |
To solve the system of equations using the graphical method, we'll plot both equations on the same graph and find their point of intersection. The point of intersection represents the solution to the system. ### Given Equations: 1. \( 2x - 2y = 5 \) 2. \( 2x + 3y + 1 = 0 \) ### Step 1: Rewrite the Equations in Slope-Intercept Form (\( y = mx + b \)) #### Equation 1: \( 2x - 2y = 5 \) \[ \begin{align*} 2x - 2y &= 5 \\ -2y &= -2x + 5 \\ y &= \frac{-2x + 5}{-2} \\ y &= x - \frac{5}{2} \end{align*} \] So, \( y = x - \frac{5}{2} \). #### Equation 2: \( 2x + 3y + 1 = 0 \) \[ \begin{align*} 2x + 3y + 1 &= 0 \\ 3y &= -2x - 1 \\ y &= \frac{-2x - 1}{3} \\ y &= -\frac{2}{3}x - \frac{1}{3} \end{align*} \] So, \( y = -\frac{2}{3}x - \frac{1}{3} \). ### Step 2: Plot the Equations 1. **For \( y = x - \frac{5}{2} \):** - The slope (\( m \)) is 1. - The y-intercept (\( b \)) is \(-\frac{5}{2}\). 2. **For \( y = -\frac{2}{3}x - \frac{1}{3} \):** - The slope (\( m \)) is \(-\frac{2}{3}\). - The y-intercept (\( b \)) is \(-\frac{1}{3}\). ### Step 3: Find the Point of Intersection The point where the two lines intersect is the solution to the system. From the graph, you can estimate the point of intersection. ### Step 4: Verify the Solution To ensure accuracy, solve the system algebraically: #### From Equation 1: \[ y = x - \frac{5}{2} \] #### Substitute \( y \) into Equation 2: \[ 2x + 3\left(x - \frac{5}{2}\right) + 1 = 0 \] \[ 2x + 3x - \frac{15}{2} + 1 = 0 \] \[ 5x - \frac{15}{2} + \frac{2}{2} = 0 \] \[ 5x - \frac{13}{2} = 0 \] \[ 5x = \frac{13}{2} \] \[ x = \frac{13}{10} \] #### Substitute \( x \) back into Equation 1 to find \( y \): \[ y = \frac{13}{10} - \frac{5}{2} \] \[ y = \frac{13}{10} - \frac{25}{10} \] \[ y = -\frac{12}{10} \] \[ y = -\frac{6}{5} Final Answer: The solution to the system is \( x = \frac{13}{10} \) and \( y = -\frac{6}{5} \). This is the point where the two lines intersect on the graph. |
| Re: Please Who Can Solve This Equation by YModulosGodSon: 12:24pm On Feb 19, 2025 |
naturalwaves:I wish I could like this a thousand times! You’ll sure make a good mathematics teacher |
| Re: Please Who Can Solve This Equation by SULBELL(m): 1:02pm On Feb 19, 2025 |
richmond500:Equation 1: 2x−2y=5 −2y = −2x+5 y= x – 5/2 y = x − 2.5 find y if x= -3 up to x = 3 x y -3 -5.5 -2 -4.5 -1 -3.5 0 -2.5 1 -1.5 2 -0.5 3 0.5 Equation 2: 2x + 3y + 1 = 0 3y= −2x − 1 y = − 23x −13 y = −2/3x − 1/3 using same -3 to 3 you have the table x y -3 1.6667 -2 1 -1 0.3333 0 -0.3333 1 -1 2 -1.6667 3 -2.3333 When you trace the point of intersect, the two lines intersect at (1.3, −1.2), which is the solution
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| Re: Please Who Can Solve This Equation by Gotocourt: 1:31pm On Feb 19, 2025 |
richmond500:You don enter hand today 🤣 |
| Re: Please Who Can Solve This Equation by richmond500(op): 2:30pm On Feb 19, 2025 |
SULBELL:Omo, some people sha sabi book. Thank u |
| Re: Please Who Can Solve This Equation by Alusiizizi(m): 5:06pm On Feb 19, 2025 |
ChiefJusticeFuc:I guess you missed the part where the OP demanded for the problem to be solved using the graphical method. |
| Re: Please Who Can Solve This Equation by naturalwaves: 6:11pm On Feb 19, 2025 |
richmond500:Very good. You have made a very good progress. Trust me, we will finish this all by yourself. In the first place you made y the subject where you got : y= x - 5/2, you will substitute different values of x in to it to get y. Let's start from x = -3. When x = - 3, y = -3 - 5/2 y= -3 - 2.5 y= - 5.5 When x = -2, y= -2 -2.5 y= -4.5 Continue like that Do for all the values of x from -3 to + 3 which are -3,-2,-1,0,1,2,3. Do for all these values to get the respective values of y for the first equation. I could have easily just solved this for you but I want you to learn it. Let me know once you're done with this. |
| Re: Please Who Can Solve This Equation by naturalwaves: 6:14pm On Feb 19, 2025 |
YModulosGodSon:Thanks bro. I am a teacher ![]() |
| Re: Please Who Can Solve This Equation by naturalwaves: 6:16pm On Feb 19, 2025 |
SULBELL:Well done. I wanted him to go through the process of solving by himself , but it is fine. @richmond500, this was what I was trying to explain to you. Do you understand this solution? |
| Re: Please Who Can Solve This Equation by Godblessme1: 9:55pm On Feb 19, 2025 |
Imagine cracking your head for a useless mathematics while old and senile men like tiefnubu are rulling. To hell with y'all |
| Re: Please Who Can Solve This Equation by SULBELL(m): 8:28am On Feb 21, 2025 |
naturalwaves:I noticed and many others have practically make the process simple for him. But we have to do our bit. |
| Re: Please Who Can Solve This Equation by richmond500(op): 1:17pm On Feb 21, 2025 |
naturalwaves:thank u bro, but I just wanted to solve it for my sister. Thanks though I really appreciate ur effort |
| Re: Please Who Can Solve This Equation by naturalwaves: 2:15pm On Feb 21, 2025 |
richmond500:You're welcome |
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she no go understand say just because I go university no mean say I go fit solve every maths 
