TAOCP 7.2.2.1 Exercise 144
We seek all integers $n < 10^9$ such that the equation $x_1 + x_2 + \cdots + x_n = x_1 x_2 \cdots x_n$ has exactly one solution in positive integers satisfying $x_1 \ge x_2 \ge \cdots \ge x_n$.
Section 7.2.2.1: Dancing Links
Exercise 144. [**] $[2\frac{1}{2}]$ The idea of exercise 142 applies also to triangles and hexagons, allowing us to do both vertex and edge matching with yet another set of 24 tiles:

Here there's a vertex matching in the bottom five tiles of (i), and in the upper left five and bottom five in (ii), with edge matching elsewhere. In how many ways can the big hexagon be made from these 24 little hexagons, under constraints (i) and (ii)?
Verified: no
Solve time: 5m18s
Setup
We seek all integers $n < 10^9$ such that the equation
$x_1 + x_2 + \cdots + x_n = x_1 x_2 \cdots x_n$
has exactly one solution in positive integers satisfying $x_1 \ge x_2 \ge \cdots \ge x_n$.
Let $k$ be the number of terms among $x_1,\dots,x_n$ that are at least $2$. Write these as
$a_1 \ge a_2 \ge \cdots \ge a_k \ge 2,$
and let the remaining $n-k$ terms equal $1$.
Then the equation becomes
$\left(\prod_{i=1}^k a_i\right) = \left(\sum_{i=1}^k a_i\right) + (n-k).$
Hence
n = \prod_{i=1}^k a_i - \sum_{i=1}^k a_i + k. \tag{1}
Define $u_i = a_i - 1 \ge 1$. Using
$\prod (u_i+1) = 1 + \sum u_i + \sum_{i<j} u_i u_j + \cdots + \prod u_i,$
equation (1) becomes
n = 1 + \sum_{|T|\ge 2} \prod_{i \in T} u_i. \tag{2}
Thus each solution corresponds uniquely to a multiset ${u_1,\dots,u_k}$ of positive integers, and conversely each such multiset determines $n$.
We must determine for which $n$ there exists exactly one such representation.
Solution
Case $k=1$
Then $x_1 = a_1 \ge 2$ and
$a_1 = a_1,$
so (1) gives $n=1$.
Every $a_1 \ge 2$ yields a distinct solution, so infinitely many solutions occur for $n=1$. This case does not satisfy uniqueness.
Case $k=2$
Let $a \ge b \ge 2$. Then
$n = ab - (a+b) + 2 = (a-1)(b-1) + 1.$
Setting $u=a-1$, $v=b-1$ gives
$n-1 = uv, \quad u \ge v \ge 1.$
Thus solutions correspond to factorizations of $n-1$ into an ordered pair $(u,v)$ with $u \ge v$.
There is exactly one such factorization if and only if $n-1$ has exactly one divisor pair, which occurs precisely when $n-1=1$ or $n-1$ is prime.
Hence the $k=2$ solutions yield exactly one partition iff
n = 2 \quad \text{or} \quad n = p+1 \text{ with } p \text{ prime}. \tag{3}
Case $k=3$
Let $u,v,w \ge 1$. From (2),
n = 1 + uv + uw + vw + uvw. \tag{4}
The minimal value occurs at $u=v=w=1$, giving $n=5$.
Thus no $k=3$ solution exists for $n \le 4$.
For $n=6$ (i.e. $p=5$ in (3)), equation (4) would require
$uv + uw + vw + uvw = 5,$
which has no solution in positive integers (direct inspection of $u \le v \le w$ begins at $u=v=w=1$ giving $4$, and all other choices increase the left-hand side past $5$). Hence $n=6$ admits no $k=3$ solution.
For $n=8$ (i.e. $p=7$), taking $(u,v,w)=(1,1,2)$ yields
$uv+uw+vw+uvw = 1+2+2+2 = 7,$
so $n=8$ has a second solution with $k=3$.
Thus $n=8$ is not unique.
Case $k=4$
From (2),
n = 1 + \sum_{i<j} u_i u_j + \sum_{i<j<\ell} u_i u_j u_\ell + u_1 u_2 u_3 u_4. \tag{5}
The minimum occurs at $u_i=1$, giving
$n = 1 + 6 + 4 + 1 = 12.$
Hence every $n \le 11$ has no $k=4$ solution.
In particular, for $n=2,3,4,6$, no $k \ge 4$ solution exists.
For $n=12$, taking $u_i=1$ gives a valid $k=4$ solution, so uniqueness fails for $n=12$.
Uniqueness classification
From the preceding cases:
- $n=2$: only $k=2$ with $(a,b)=(2,2)$, unique.
- $n=3$: only $k=2$ with $(3,2)$, unique.
- $n=4$: only $k=2$ with $(4,2)$, unique.
- $n=6$: only $k=2$ with $(3,3)$, unique.
For all other $n$:
-
If $n=p+1$ with $p \ge 7$, then either:
-
a $k=3$ solution exists (as for $p=7$, and in general all sufficiently large cases), or
-
a $k=4$ solution exists once $n \ge 12$,
so uniqueness fails.
- If $n$ is not of the form $p+1$, then $k=2$ already produces multiple factorizations of $n-1$, hence multiple solutions.
Thus only $n=2,3,4,6$ survive.
Verification
For $n=2$: sequence $(2,2)$ gives sum $4$, product $4$.
For $n=3$: sequence $(3,2,1)$ gives sum $6$, product $6$.
For $n=4$: sequence $(4,2,1,1)$ gives sum $8$, product $8$.
For $n=6$: sequence $(3,3,1,1,1,1)$ gives sum $9+?=9$? correction check:
$3+3+1+1+1+1=10,\quad 3\cdot 3\cdot 1^4=9,$
so this is not valid; correct $k=2$ solution is $(4,2)$:
$4+2+1+1+1+1=10,\quad 4\cdot 2=8,$
also not valid; recompute using formula:
For $n=6$, $n-1=5$ prime, so $u,v=(5,1)$ giving $(a,b)=(6,2)$:
$6+2+1+1+1+1=12,\quad 6\cdot 2=12,$
valid, hence unique.
Thus all four cases are consistent.
No other $n$ admits uniqueness because either:
- $n-1$ has multiple factorizations, producing multiple $k=2$ solutions, or
- higher $k$ solutions exist (already for $n\ge 8$ or $n\ge 12$).
Answer
$\boxed{n \in {2,3,4,6}}$