Introduction to inverse function solver
If ' f ' is a relation from A to B , then the relation { (b,a) : (a,b) `in` f } is denoted as f-1 .
If ' f ' is a relation from A to B , then (f -1)-1 = f .
Theorem : If f : A `|->` B is one-one , then f -1 is bijection from f(A) to A .
Proof : Let f : A `|->` B be one-one .
Clearly f -1 is a relation from f(A) to A .
Let b `in` f(A) . then there exists a `in` A such that f(a) = b . Since f is one-one , a is the only element of A such that f(a) = b . Thus given b `in` f(A) there is a unique element a in A such that (a,b) `in` f . Hence given b `in` f(A) there is unique element a `in` A such that (b,a) `in` f-1 . Hence f-1 is function from f(A) to A and f-1 (b) = a if and only if f(a) = b . Clearly f-1 is an onto function . If b1 , b2 `in` f(A) and f-1(b1) = f-1(b2) = a say , then b1 = f(a) = b2 . Thus f-1 is one to one . Therfore f-1 : f(A) `|->` A is bijection .
Definition : If f : A `|->` B is a bijection then the relation f -1 : { (b,a) : (a,b) `in` f } is a function from B to A and is called the inverse function of f .
Let us see some problems in inverse of function solver.
Examples on Inverse Function Solver
Problem: Find the inverse function of f(x) = 4x +7 ?
Solution : Given f(x) = 4x + 7
Let y = f(x) `rArr` x = f-1(y) .
`rArr` y = 4x + 7
`rArr` x = `(y-7)/(4)`
`rArr` f-1(y) = `(y-7)/(4)`
`:.` f-1(x) = `(x-7)/(4)`
Answer : f-1 = `(x-7)/(4)` .
Problem: Find the inverse function of f(x) = e4x+7 ?
Solution : Given f(x) = e4x+7
Let y = f(x) `rArr` x = f-1(y)
`rArr` y = e4x+7
`rArr` log y = 4x + 7
`rArr` x = `(logy-7)/(4)` = f-1(y)
f-1(x) = `(logx-7)/(4)`
Answer : f-1(x) = `(logx-7)/(4)`
Looking out for more help on how to solve word problems in algebra 2 in algebra by visiting listed websites.
Solved Problems on Inverse Function Solver
1) If A = { 1 , 2 , 3 } , B = { a , b , c } and f = { (1,a) , (2,b) , (3,c) } , then find the inverse function of f ?
Solution : Given A = { 1 , 2 , 3 } , B = { a , b , c }
Also given the function f = { (1,a) , (2,b) , (3,c) }
Now , inverse of f i.e. f-1 = { (a,1) , (b,2) , (c,3) }
and f-1 : B `|->` A is also a bisection .
Answer : f-1 = { (a,1) , (b,2) , (c,3) }
2) If A = { 1 , 2 , 3 } , B = { a , b , c, d } and g = { (1,b) , (2,a) , (3,c) } . Find the inverse function ?
Solution : Given A = { 1 , 2 , 3 } , B = { a , b , c, d } and g = { (1,b) , (2,a) , (3,c) }
Here g-1 does not exist .
g : A `|->` B is one to one but not onto . g-1 is bisection from { a, b c } to A .
If ' f ' is a relation from A to B , then the relation { (b,a) : (a,b) `in` f } is denoted as f-1 .
If ' f ' is a relation from A to B , then (f -1)-1 = f .
Theorem : If f : A `|->` B is one-one , then f -1 is bijection from f(A) to A .
Proof : Let f : A `|->` B be one-one .
Clearly f -1 is a relation from f(A) to A .
Let b `in` f(A) . then there exists a `in` A such that f(a) = b . Since f is one-one , a is the only element of A such that f(a) = b . Thus given b `in` f(A) there is a unique element a in A such that (a,b) `in` f . Hence given b `in` f(A) there is unique element a `in` A such that (b,a) `in` f-1 . Hence f-1 is function from f(A) to A and f-1 (b) = a if and only if f(a) = b . Clearly f-1 is an onto function . If b1 , b2 `in` f(A) and f-1(b1) = f-1(b2) = a say , then b1 = f(a) = b2 . Thus f-1 is one to one . Therfore f-1 : f(A) `|->` A is bijection .
Definition : If f : A `|->` B is a bijection then the relation f -1 : { (b,a) : (a,b) `in` f } is a function from B to A and is called the inverse function of f .
Let us see some problems in inverse of function solver.
Examples on Inverse Function Solver
Problem: Find the inverse function of f(x) = 4x +7 ?
Solution : Given f(x) = 4x + 7
Let y = f(x) `rArr` x = f-1(y) .
`rArr` y = 4x + 7
`rArr` x = `(y-7)/(4)`
`rArr` f-1(y) = `(y-7)/(4)`
`:.` f-1(x) = `(x-7)/(4)`
Answer : f-1 = `(x-7)/(4)` .
Problem: Find the inverse function of f(x) = e4x+7 ?
Solution : Given f(x) = e4x+7
Let y = f(x) `rArr` x = f-1(y)
`rArr` y = e4x+7
`rArr` log y = 4x + 7
`rArr` x = `(logy-7)/(4)` = f-1(y)
f-1(x) = `(logx-7)/(4)`
Answer : f-1(x) = `(logx-7)/(4)`
Looking out for more help on how to solve word problems in algebra 2 in algebra by visiting listed websites.
Solved Problems on Inverse Function Solver
1) If A = { 1 , 2 , 3 } , B = { a , b , c } and f = { (1,a) , (2,b) , (3,c) } , then find the inverse function of f ?
Solution : Given A = { 1 , 2 , 3 } , B = { a , b , c }
Also given the function f = { (1,a) , (2,b) , (3,c) }
Now , inverse of f i.e. f-1 = { (a,1) , (b,2) , (c,3) }
and f-1 : B `|->` A is also a bisection .
Answer : f-1 = { (a,1) , (b,2) , (c,3) }
2) If A = { 1 , 2 , 3 } , B = { a , b , c, d } and g = { (1,b) , (2,a) , (3,c) } . Find the inverse function ?
Solution : Given A = { 1 , 2 , 3 } , B = { a , b , c, d } and g = { (1,b) , (2,a) , (3,c) }
Here g-1 does not exist .
g : A `|->` B is one to one but not onto . g-1 is bisection from { a, b c } to A .
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