1. Show that the rods of the equation $$ (r+1) x^{2}+4 x+1=r $$ are real for all real values of r.

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We start with the equation
$$
(r+1)x^2 + 4x + 1 = r.
$$
First, we rewrite the equation in standard quadratic form by subtracting $$ r $$ from both sides:
$$
(r+1)x^2 + 4x + 1 - r = 0.
$$
This simplifies to
$$
(r+1)x^2 + 4x + (1-r) = 0.
$$

For a quadratic equation of the form
$$
ax^2 + bx + c = 0,
$$
the roots are real if the discriminant
$$
\Delta = b^2 - 4ac
$$
is nonnegative.

Here, we identify:
- $$ a = r+1 $$
- $$ b = 4 $$
- $$ c = 1-r $$.

Now we compute the discriminant:
$$
\Delta = 4^2 - 4(r+1)(1-r).
$$
Notice that the product $$ (r+1)(1-r) $$ can be simplified as follows:
$$
(r+1)(1-r) = 1 \cdot (r+1) - r(r+1) = (r+1) - r^2 - r = 1 - r^2.
$$
Therefore, the discriminant becomes:
$$
\Delta = 16 - 4(1 - r^2).
$$
Expanding the expression inside,
$$
\Delta = 16 - 4 + 4r^2 = 12 + 4r^2.
$$

Since $$ 4r^2 \ge 0 $$ for all real $$ r $$, it follows that
$$
\Delta = 12 + 4r^2 \ge 12.
$$
Thus, the discriminant is always positive, meaning the quadratic (when it is quadratic) has two real roots.

There is one special case to consider: when $$ r = -1 $$. In this case, the coefficient $$ a = r+1 = 0 $$, so the equation is no longer quadratic. Instead, the equation becomes linear:
$$
4x + 1 - (-1) = 4x + 2 = 0,
$$
which simplifies to
$$
4x = -2 \quad \Longrightarrow \quad x = -\frac{1}{2}.
$$
This linear equation also has a real solution.

Therefore, for all real values of $$ r $$, the equation has real roots (either two real roots when $$ r \neq -1 $$ or one real root when $$ r = -1 $$).
For all real values of $$ r $$, the equation $$ (r+1)x^2 + 4x + 1 = r $$ has real solutions.

1. Show that the rods of the equation \( (r+1) x^{2}+4 x+1=r \) are real for all real values of r.

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