Mark44 said:
The Fundamental Theorem of Calculus...
1. that differentiation and antidifferentiation are essentially inverse processes
$$ \frac{d}{dx} \int_a^x f(t)~dt = f(x)$$
2. how to evaluate a definite integral using the antiderivative of the integrand.
$$\int_a^b f(t)dt = F(b) - F(a)$$
where F is an antiderivative of f (i.e., F' = f).
I think that on it the correct theory comes to an end.
$$\text{This integral:}~~\int F'(x)dx=F(x)+C~~\text{begins the wrong theory.}$$
Nobody proved it and it doesn't make sense.
$$\text{It would be correct to go on such way:}~~F(x)=\int \limits_{x_0}^x f(t)~dt,~~F(x_0)=0;~~~~~C=\int\limits_0^C~dt.$$
$$\text{If}~~f(t)=\frac{1}{t}:~~~F(x)=\int\limits_1^x f(t)dt=ln(x)=ln\left(\frac{x}{1}\right);~~~\int \limits_{t_1}^{t_2}\frac{dt}{t}=ln\left(\frac{t_2}{t_1}\right);$$
$$F(b)-F(a)=\int\limits_{a}^{b}\frac{dx}{x}=ln\left(\frac{b}{a}\right);~~~~\int \frac{dx}{x}=ln|x|+C -~~\text{is wrong!}.$$
Because:
$$y=F(x),~~ u=F(x)+C,~~u(x,p)=F(x)+F(p)_{p=F^{(-1)}(C)};$$
$$f(x)=F'(x)=\frac{dF(x)}{dx};$$
$$f(x)=\frac {\partial u(x,p)}{\partial x}=\frac{\partial (F(x)+C)}{\partial x};$$
$$\int\limits_{x_0}^x f(t)\partial t=F(x)+C.$$
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"The conditions imposed on functions, become a source of difficulties which will manage to be avoided only by means of new researches about the principles of integral calculus"
Thomas Ioannes Stiltes. ...
