Easier way to find amount of solutions between a line and quadratic?












3














Is there a better way of finding the amount of solutions between $y=(x-7)(3x+4)$ and $x=3y-1$ that doesn't involve calculus?



I know it is two but that's due to substitution of one equation into the other and finding the discriminant of the resulting quadratic, but it's kinda tedious and this is suppose to be a question that can be done within a minute.



Can I just say the vertex of the upward-opening parabola is below the y-intercept of the line and this would result in 2 intersections?










share|cite


















  • 1




    I guess technically you would need to justify why an upward opening parabola whose vertex (centered on the $y$-axis) lies below the $y$-intercept of a line is always guaranteed to intersect said line twice, but yes, that argument is good. Is there a particular reason you want to avoid solving the quadratic formula? You should be able to compute such a thing in under a minute quite easily.
    – ItsJustASeriesBro
    2 hours ago








  • 1




    Yes, this works too (though I wouldn't recommend answering an exam question like that).
    – John Doe
    2 hours ago






  • 2




    As a final note, your parabola's vertex is not centered on the $y$-axis, and so you won't even be able to use the "theorem" you want to in order to take this shortcut.
    – ItsJustASeriesBro
    2 hours ago






  • 2




    @ItsJustASeriesBro Technically, all you need to do is find any value of $x$ for which the parabola is below the line, and you're done. No need for it to be the vertex. But I know what you mean, this would be a more general theorem.
    – John Doe
    2 hours ago








  • 2




    @JohnDoe Of course, but the OP specifically wanted to use the vertex. And proving this theorem seems to be more complicated than using the quadratic formula to me in any event.
    – ItsJustASeriesBro
    2 hours ago
















3














Is there a better way of finding the amount of solutions between $y=(x-7)(3x+4)$ and $x=3y-1$ that doesn't involve calculus?



I know it is two but that's due to substitution of one equation into the other and finding the discriminant of the resulting quadratic, but it's kinda tedious and this is suppose to be a question that can be done within a minute.



Can I just say the vertex of the upward-opening parabola is below the y-intercept of the line and this would result in 2 intersections?










share|cite


















  • 1




    I guess technically you would need to justify why an upward opening parabola whose vertex (centered on the $y$-axis) lies below the $y$-intercept of a line is always guaranteed to intersect said line twice, but yes, that argument is good. Is there a particular reason you want to avoid solving the quadratic formula? You should be able to compute such a thing in under a minute quite easily.
    – ItsJustASeriesBro
    2 hours ago








  • 1




    Yes, this works too (though I wouldn't recommend answering an exam question like that).
    – John Doe
    2 hours ago






  • 2




    As a final note, your parabola's vertex is not centered on the $y$-axis, and so you won't even be able to use the "theorem" you want to in order to take this shortcut.
    – ItsJustASeriesBro
    2 hours ago






  • 2




    @ItsJustASeriesBro Technically, all you need to do is find any value of $x$ for which the parabola is below the line, and you're done. No need for it to be the vertex. But I know what you mean, this would be a more general theorem.
    – John Doe
    2 hours ago








  • 2




    @JohnDoe Of course, but the OP specifically wanted to use the vertex. And proving this theorem seems to be more complicated than using the quadratic formula to me in any event.
    – ItsJustASeriesBro
    2 hours ago














3












3








3







Is there a better way of finding the amount of solutions between $y=(x-7)(3x+4)$ and $x=3y-1$ that doesn't involve calculus?



I know it is two but that's due to substitution of one equation into the other and finding the discriminant of the resulting quadratic, but it's kinda tedious and this is suppose to be a question that can be done within a minute.



Can I just say the vertex of the upward-opening parabola is below the y-intercept of the line and this would result in 2 intersections?










share|cite













Is there a better way of finding the amount of solutions between $y=(x-7)(3x+4)$ and $x=3y-1$ that doesn't involve calculus?



I know it is two but that's due to substitution of one equation into the other and finding the discriminant of the resulting quadratic, but it's kinda tedious and this is suppose to be a question that can be done within a minute.



Can I just say the vertex of the upward-opening parabola is below the y-intercept of the line and this would result in 2 intersections?







quadratics






share|cite













share|cite











share|cite




share|cite










asked 2 hours ago









Sat

325




325








  • 1




    I guess technically you would need to justify why an upward opening parabola whose vertex (centered on the $y$-axis) lies below the $y$-intercept of a line is always guaranteed to intersect said line twice, but yes, that argument is good. Is there a particular reason you want to avoid solving the quadratic formula? You should be able to compute such a thing in under a minute quite easily.
    – ItsJustASeriesBro
    2 hours ago








  • 1




    Yes, this works too (though I wouldn't recommend answering an exam question like that).
    – John Doe
    2 hours ago






  • 2




    As a final note, your parabola's vertex is not centered on the $y$-axis, and so you won't even be able to use the "theorem" you want to in order to take this shortcut.
    – ItsJustASeriesBro
    2 hours ago






  • 2




    @ItsJustASeriesBro Technically, all you need to do is find any value of $x$ for which the parabola is below the line, and you're done. No need for it to be the vertex. But I know what you mean, this would be a more general theorem.
    – John Doe
    2 hours ago








  • 2




    @JohnDoe Of course, but the OP specifically wanted to use the vertex. And proving this theorem seems to be more complicated than using the quadratic formula to me in any event.
    – ItsJustASeriesBro
    2 hours ago














  • 1




    I guess technically you would need to justify why an upward opening parabola whose vertex (centered on the $y$-axis) lies below the $y$-intercept of a line is always guaranteed to intersect said line twice, but yes, that argument is good. Is there a particular reason you want to avoid solving the quadratic formula? You should be able to compute such a thing in under a minute quite easily.
    – ItsJustASeriesBro
    2 hours ago








  • 1




    Yes, this works too (though I wouldn't recommend answering an exam question like that).
    – John Doe
    2 hours ago






  • 2




    As a final note, your parabola's vertex is not centered on the $y$-axis, and so you won't even be able to use the "theorem" you want to in order to take this shortcut.
    – ItsJustASeriesBro
    2 hours ago






  • 2




    @ItsJustASeriesBro Technically, all you need to do is find any value of $x$ for which the parabola is below the line, and you're done. No need for it to be the vertex. But I know what you mean, this would be a more general theorem.
    – John Doe
    2 hours ago








  • 2




    @JohnDoe Of course, but the OP specifically wanted to use the vertex. And proving this theorem seems to be more complicated than using the quadratic formula to me in any event.
    – ItsJustASeriesBro
    2 hours ago








1




1




I guess technically you would need to justify why an upward opening parabola whose vertex (centered on the $y$-axis) lies below the $y$-intercept of a line is always guaranteed to intersect said line twice, but yes, that argument is good. Is there a particular reason you want to avoid solving the quadratic formula? You should be able to compute such a thing in under a minute quite easily.
– ItsJustASeriesBro
2 hours ago






I guess technically you would need to justify why an upward opening parabola whose vertex (centered on the $y$-axis) lies below the $y$-intercept of a line is always guaranteed to intersect said line twice, but yes, that argument is good. Is there a particular reason you want to avoid solving the quadratic formula? You should be able to compute such a thing in under a minute quite easily.
– ItsJustASeriesBro
2 hours ago






1




1




Yes, this works too (though I wouldn't recommend answering an exam question like that).
– John Doe
2 hours ago




Yes, this works too (though I wouldn't recommend answering an exam question like that).
– John Doe
2 hours ago




2




2




As a final note, your parabola's vertex is not centered on the $y$-axis, and so you won't even be able to use the "theorem" you want to in order to take this shortcut.
– ItsJustASeriesBro
2 hours ago




As a final note, your parabola's vertex is not centered on the $y$-axis, and so you won't even be able to use the "theorem" you want to in order to take this shortcut.
– ItsJustASeriesBro
2 hours ago




2




2




@ItsJustASeriesBro Technically, all you need to do is find any value of $x$ for which the parabola is below the line, and you're done. No need for it to be the vertex. But I know what you mean, this would be a more general theorem.
– John Doe
2 hours ago






@ItsJustASeriesBro Technically, all you need to do is find any value of $x$ for which the parabola is below the line, and you're done. No need for it to be the vertex. But I know what you mean, this would be a more general theorem.
– John Doe
2 hours ago






2




2




@JohnDoe Of course, but the OP specifically wanted to use the vertex. And proving this theorem seems to be more complicated than using the quadratic formula to me in any event.
– ItsJustASeriesBro
2 hours ago




@JohnDoe Of course, but the OP specifically wanted to use the vertex. And proving this theorem seems to be more complicated than using the quadratic formula to me in any event.
– ItsJustASeriesBro
2 hours ago










2 Answers
2






active

oldest

votes


















2














A simple idea. Notice that the point $(7, 8/3)$ lies inside the parabola (easy, since $y(7)=0<8/3$) and it is also a point on the line $x=3y-1$. Hence, a point of the line lies inside the parabola which means that the line will intersect the parabola in two points (unless the line is vertical which is not the case here).






share|cite|improve this answer





























    2














    It's true that if the parabola opens upward and any point on the parabola is directly below any point on the line, then the parabola and line intersect in two distinct points. But unless you already have this fact available, it merits justification in its own right, and that's not going to be easier than proving the original fact (one method to prove the latter fact, for example, is using the discriminant).



    In any case, it's not too much work to prove the claim in this question using the discriminant: We can rewrite the line as $y = frac{1}{3} x + frac{1}{3}$ and the parabola as $y = 3 x^2 - 17 x - 28$. Thus, the $x$-coordinates of the intersection points are the solutions of $$3 x^2 - frac{52}{3} x - frac{85}{3} = 0 .$$ Computing the discriminant of the l.h.s. requires some arithmetic, but we only need its sign: In our case, $a > 0, c < 0$, so $b^2 - 4 a c > 0$ and hence there are two distinct solutions.



    Alternatively, applying Descartes' Rule of Signs tells us more: That there is exactly one positive solution and one negative solution.






    share|cite|improve this answer





















      Your Answer





      StackExchange.ifUsing("editor", function () {
      return StackExchange.using("mathjaxEditing", function () {
      StackExchange.MarkdownEditor.creationCallbacks.add(function (editor, postfix) {
      StackExchange.mathjaxEditing.prepareWmdForMathJax(editor, postfix, [["$", "$"], ["\\(","\\)"]]);
      });
      });
      }, "mathjax-editing");

      StackExchange.ready(function() {
      var channelOptions = {
      tags: "".split(" "),
      id: "69"
      };
      initTagRenderer("".split(" "), "".split(" "), channelOptions);

      StackExchange.using("externalEditor", function() {
      // Have to fire editor after snippets, if snippets enabled
      if (StackExchange.settings.snippets.snippetsEnabled) {
      StackExchange.using("snippets", function() {
      createEditor();
      });
      }
      else {
      createEditor();
      }
      });

      function createEditor() {
      StackExchange.prepareEditor({
      heartbeatType: 'answer',
      autoActivateHeartbeat: false,
      convertImagesToLinks: true,
      noModals: true,
      showLowRepImageUploadWarning: true,
      reputationToPostImages: 10,
      bindNavPrevention: true,
      postfix: "",
      imageUploader: {
      brandingHtml: "Powered by u003ca class="icon-imgur-white" href="https://imgur.com/"u003eu003c/au003e",
      contentPolicyHtml: "User contributions licensed under u003ca href="https://creativecommons.org/licenses/by-sa/3.0/"u003ecc by-sa 3.0 with attribution requiredu003c/au003e u003ca href="https://stackoverflow.com/legal/content-policy"u003e(content policy)u003c/au003e",
      allowUrls: true
      },
      noCode: true, onDemand: true,
      discardSelector: ".discard-answer"
      ,immediatelyShowMarkdownHelp:true
      });


      }
      });














      draft saved

      draft discarded


















      StackExchange.ready(
      function () {
      StackExchange.openid.initPostLogin('.new-post-login', 'https%3a%2f%2fmath.stackexchange.com%2fquestions%2f3060277%2feasier-way-to-find-amount-of-solutions-between-a-line-and-quadratic%23new-answer', 'question_page');
      }
      );

      Post as a guest















      Required, but never shown

























      2 Answers
      2






      active

      oldest

      votes








      2 Answers
      2






      active

      oldest

      votes









      active

      oldest

      votes






      active

      oldest

      votes









      2














      A simple idea. Notice that the point $(7, 8/3)$ lies inside the parabola (easy, since $y(7)=0<8/3$) and it is also a point on the line $x=3y-1$. Hence, a point of the line lies inside the parabola which means that the line will intersect the parabola in two points (unless the line is vertical which is not the case here).






      share|cite|improve this answer


























        2














        A simple idea. Notice that the point $(7, 8/3)$ lies inside the parabola (easy, since $y(7)=0<8/3$) and it is also a point on the line $x=3y-1$. Hence, a point of the line lies inside the parabola which means that the line will intersect the parabola in two points (unless the line is vertical which is not the case here).






        share|cite|improve this answer
























          2












          2








          2






          A simple idea. Notice that the point $(7, 8/3)$ lies inside the parabola (easy, since $y(7)=0<8/3$) and it is also a point on the line $x=3y-1$. Hence, a point of the line lies inside the parabola which means that the line will intersect the parabola in two points (unless the line is vertical which is not the case here).






          share|cite|improve this answer












          A simple idea. Notice that the point $(7, 8/3)$ lies inside the parabola (easy, since $y(7)=0<8/3$) and it is also a point on the line $x=3y-1$. Hence, a point of the line lies inside the parabola which means that the line will intersect the parabola in two points (unless the line is vertical which is not the case here).







          share|cite|improve this answer












          share|cite|improve this answer



          share|cite|improve this answer










          answered 2 hours ago









          Cactus

          558




          558























              2














              It's true that if the parabola opens upward and any point on the parabola is directly below any point on the line, then the parabola and line intersect in two distinct points. But unless you already have this fact available, it merits justification in its own right, and that's not going to be easier than proving the original fact (one method to prove the latter fact, for example, is using the discriminant).



              In any case, it's not too much work to prove the claim in this question using the discriminant: We can rewrite the line as $y = frac{1}{3} x + frac{1}{3}$ and the parabola as $y = 3 x^2 - 17 x - 28$. Thus, the $x$-coordinates of the intersection points are the solutions of $$3 x^2 - frac{52}{3} x - frac{85}{3} = 0 .$$ Computing the discriminant of the l.h.s. requires some arithmetic, but we only need its sign: In our case, $a > 0, c < 0$, so $b^2 - 4 a c > 0$ and hence there are two distinct solutions.



              Alternatively, applying Descartes' Rule of Signs tells us more: That there is exactly one positive solution and one negative solution.






              share|cite|improve this answer


























                2














                It's true that if the parabola opens upward and any point on the parabola is directly below any point on the line, then the parabola and line intersect in two distinct points. But unless you already have this fact available, it merits justification in its own right, and that's not going to be easier than proving the original fact (one method to prove the latter fact, for example, is using the discriminant).



                In any case, it's not too much work to prove the claim in this question using the discriminant: We can rewrite the line as $y = frac{1}{3} x + frac{1}{3}$ and the parabola as $y = 3 x^2 - 17 x - 28$. Thus, the $x$-coordinates of the intersection points are the solutions of $$3 x^2 - frac{52}{3} x - frac{85}{3} = 0 .$$ Computing the discriminant of the l.h.s. requires some arithmetic, but we only need its sign: In our case, $a > 0, c < 0$, so $b^2 - 4 a c > 0$ and hence there are two distinct solutions.



                Alternatively, applying Descartes' Rule of Signs tells us more: That there is exactly one positive solution and one negative solution.






                share|cite|improve this answer
























                  2












                  2








                  2






                  It's true that if the parabola opens upward and any point on the parabola is directly below any point on the line, then the parabola and line intersect in two distinct points. But unless you already have this fact available, it merits justification in its own right, and that's not going to be easier than proving the original fact (one method to prove the latter fact, for example, is using the discriminant).



                  In any case, it's not too much work to prove the claim in this question using the discriminant: We can rewrite the line as $y = frac{1}{3} x + frac{1}{3}$ and the parabola as $y = 3 x^2 - 17 x - 28$. Thus, the $x$-coordinates of the intersection points are the solutions of $$3 x^2 - frac{52}{3} x - frac{85}{3} = 0 .$$ Computing the discriminant of the l.h.s. requires some arithmetic, but we only need its sign: In our case, $a > 0, c < 0$, so $b^2 - 4 a c > 0$ and hence there are two distinct solutions.



                  Alternatively, applying Descartes' Rule of Signs tells us more: That there is exactly one positive solution and one negative solution.






                  share|cite|improve this answer












                  It's true that if the parabola opens upward and any point on the parabola is directly below any point on the line, then the parabola and line intersect in two distinct points. But unless you already have this fact available, it merits justification in its own right, and that's not going to be easier than proving the original fact (one method to prove the latter fact, for example, is using the discriminant).



                  In any case, it's not too much work to prove the claim in this question using the discriminant: We can rewrite the line as $y = frac{1}{3} x + frac{1}{3}$ and the parabola as $y = 3 x^2 - 17 x - 28$. Thus, the $x$-coordinates of the intersection points are the solutions of $$3 x^2 - frac{52}{3} x - frac{85}{3} = 0 .$$ Computing the discriminant of the l.h.s. requires some arithmetic, but we only need its sign: In our case, $a > 0, c < 0$, so $b^2 - 4 a c > 0$ and hence there are two distinct solutions.



                  Alternatively, applying Descartes' Rule of Signs tells us more: That there is exactly one positive solution and one negative solution.







                  share|cite|improve this answer












                  share|cite|improve this answer



                  share|cite|improve this answer










                  answered 1 hour ago









                  Travis

                  59.7k767146




                  59.7k767146






























                      draft saved

                      draft discarded




















































                      Thanks for contributing an answer to Mathematics Stack Exchange!


                      • Please be sure to answer the question. Provide details and share your research!

                      But avoid



                      • Asking for help, clarification, or responding to other answers.

                      • Making statements based on opinion; back them up with references or personal experience.


                      Use MathJax to format equations. MathJax reference.


                      To learn more, see our tips on writing great answers.





                      Some of your past answers have not been well-received, and you're in danger of being blocked from answering.


                      Please pay close attention to the following guidance:


                      • Please be sure to answer the question. Provide details and share your research!

                      But avoid



                      • Asking for help, clarification, or responding to other answers.

                      • Making statements based on opinion; back them up with references or personal experience.


                      To learn more, see our tips on writing great answers.




                      draft saved


                      draft discarded














                      StackExchange.ready(
                      function () {
                      StackExchange.openid.initPostLogin('.new-post-login', 'https%3a%2f%2fmath.stackexchange.com%2fquestions%2f3060277%2feasier-way-to-find-amount-of-solutions-between-a-line-and-quadratic%23new-answer', 'question_page');
                      }
                      );

                      Post as a guest















                      Required, but never shown





















































                      Required, but never shown














                      Required, but never shown












                      Required, but never shown







                      Required, but never shown

































                      Required, but never shown














                      Required, but never shown












                      Required, but never shown







                      Required, but never shown







                      Popular posts from this blog

                      Eastern Orthodox Church

                      Zagreb

                      Understanding the information contained in the Deep Space Network XML data?