Triangle inequality plus 1

[bonanova]

Consider the quadrilateral ABCD where AC and BD are its two diagonals

and DA is its shortest side.

UHP215

Prove (or disprove): AB + BC + CD  >  AC + BD

[BMAD]

Consider the quadrilateral ABCD where AC and BD are its two diagonals

and DA is its shortest side.

UHP215

Prove (or disprove): AB + BC + CD  >  AC + BD

Suppose we have two triangles ABD and DAC.

Let AB =4, BD = 5, AD = 3

Let DA = 3, AC = 4, DC = 5

Connect a line segment from BC, denote its length as x

We now have a quadrilateral of ABCD

AD is the shortest length of the quadrilateral

AB + BC + CD > AC + BD

since CD > AD

now to prove a general case...

Edited March 9, 2015 by BMAD

[BMAD]

I've only been able to show it is true for cyclic quadrilaterals