The points on `x+y=4` that lie at a unit distance from the line `4x+3y-10=` are

Let the required point to be (h,k)and point (h,k) lies on the line `x+y+4`
i.e.,`h+k=4`
The distance of the point (h,k) from the line `4x+3y=10` is ` |(4h+3k-10)/(sqrt(16+9))|=1`
`4h+3k-10=+-5`
`4h+3k=15`
Taking positive sign,
From Eq.(i) `h=4-k` put in Eq.(ii),we get
`4(4-k)+3k=15`
`rArr16-4k+3k=15`
`rArr k=1`
On putting `k=1` in Eq.(i),we get
`h+1=rArrh=3`
So,the point is `(3,1)`.
Taking negative sign,
`4h+3k-10=-5`
`rArr 4(4-k)+3k=5`
`rArr 16-4k+3k=5`
`rArr -k=5-16=-11`
`therefore k=11`
On putting `k=11=4rArrh=-7`
Hence, the required poitns are `(3,1)` and `(-7,11)`