100\(\le\)\(n^2\)-1=\(\overline{abc}\)\(\le\)999
\(\Rightarrow\)100<101\(\le\)\(n^2\)=\(\overline{abc}\)+1\(\le\)1000
\(\Rightarrow\)\(10^2\)<\(n^2\)<\(32^2\)\(\Rightarrow\)10<n<32
\(\overline{abc}\)-\(\overline{cba}\)=\(n^2\)-1-\(n^2\)+4n-4
\(\overline{abc}\)-\(\overline{cba}\)=(\(n^2\)-\(n^2\))+4n-1-4
\(\overline{abc}\)-\(\overline{cba}\)=0+4n-5
(100.a+10.b+c)-(100c+10b+a)=4n-5
99a-99c=4n-5
\(\Rightarrow\)4n-5\(⋮\)99(1)
Vì 10<n<32\(\Rightarrow\)35<4n<123(2)
Từ (1) và(2) \(\Rightarrow\)4n-5=99
\(\Rightarrow\)n=99+5 :4 =26
\(\overline{abc}\)=\(26^2\)-1
\(\overline{abc}\)=675
\(\overline{cba}\)=576
abc = một trong các số có 3 chữ số
OK
