Answer:
[tex]\angle m=90^o[/tex]
Step-by-step explanation:
The picture of the question in the attached figure
we know that
The measurement of the external angle is the half-difference of the arches that comprise
so
[tex]\angle m=\frac{1}{2}(major\ arc\ LN-minor\ arc\ LN)[/tex]
Remember that the sum of the major arc and a minor arc is equal to 360 degrees
we have
[tex]major\ arc\ LN=270^o[/tex] ----> is given
so
[tex]minor\ arc\ LN=360^o-270^o=90^o[/tex]
substitute the values
[tex]\angle m=\frac{1}{2}(270^o-90^o)=90^o[/tex]
