How do you evaluate #int_1^2 e^(1-x)dx#? Calculus Introduction to Integration Definite and indefinite integrals 1 Answer Alan N. Mar 8, 2017 #1-e^(-1) ~= 0.63212# Explanation: #int_1^2 e^(1-x)dx# Let #u = 1-x -> (du)/dx=-1# #I = int-e^u du# #= -e^u# Undo substitution: #=-e^(1-x)]_1^2# #= -e^(1-2)+e^(1-1) # #=1-e^(-1)# #~= 0.63212# Answer link Related questions What is the difference between definite and indefinite integrals? What is the integral of #ln(7x)#? Is f(x)=x^3 the only possible antiderivative of f(x)=3x^2? If not, why not? How do you find the integral of #x^2-6x+5# from the interval [0,3]? What is a double integral? What is an iterated integral? How do you evaluate the integral #1/(sqrt(49-x^2))# from 0 to #7sqrt(3/2)#? How do you integrate #f(x)=intsin(e^t)dt# between 4 to #x^2#? How do you determine the indefinite integrals? How do you integrate #x^2sqrt(x^(4)+5)#? See all questions in Definite and indefinite integrals Impact of this question 1412 views around the world You can reuse this answer Creative Commons License