dailysudoku.com

[Louise56]

Here's another puzzle from the San Diego paper. It's rated 6 stars which means advanced techniques are necessary. Last week I said I wouldn't work on these anymore, but was feeling confident this morning. Alas, I couldn't solve it! What do you think the next step is?

500 009 704
000 000 600
010 800 002

037 002 000
800 605 003
000 300 260

100 003 080
009 000 000
205 400 007

I resolved it to this point and got stuck.

508 009 704
000 000 608
010 800 002

637 002 845
800 645 073
050 300 260

100 003 080
309 000 020
205 400 007

[David Bryant]

Hi, Louise!

I don't have a good answer for you, yet. I'm working on it, and none of the techniques I know about are getting any traction. I'm down to tracing out "forcing chains," which will probably work if I can figure out where to start. From the possibilities remaining, r6c3 looks like a good place to start.

Maybe someone_somewhere can apply his double-implication chains to this one. I'll let you know when I figure something out myself. dcb

[David Bryant]

Hi again, Louise!

Here's one way to solve the puzzle. There may be a better way, but this is the one I found.

The short answer is that r6c3 = 1. Armed with that information I'm sure you can work out the rest of the puzzle.

I can prove this by following two chains rooted in r6c3. The only possibilities at r6c3 are {1, 4}. So let's assume that r6c3 = 4.

r6c3 = 4 ==> r7c3 = 6 ==> r3c3 = 3 (chain #1)

r6c3 = 4 ==> r6c1 = 9 ==> r6c9 = 1 ==> r8c9 = 6 ==> r7c9 = 9 ==> r9c8 = 3 ==> r3c7 = 3 (chain #2)

But now we have two "3"s in row 3, which is impossible. So r6c3 <> 4. dcb

[keith]

By the way, this is David Bodycombe's puzzle, which also appears in my local, the Oakland Press, MI.

What do you call the following: From where Louise got to, you find the following possibilities:

R6C3: 1,4 R6C9: 1,9
R7C3: 4,6 R7C9: 6,9

If R7C3 is 1, then clockwise via the other cells says R8C3 must be 4.
If R7C3 is 4, then cclockwise via the other cells says R8C3 must be 6.

So, none of the other cells in C3 (other than R6 or R7) can be a 4. Correct?

If you buy this logic, then R2C3 is 2,3 and R3C3 is 3,6 and they form a triplet with R1C2 2,6. Then R2C2 is 4,9, and I am still working on it.

Keith
Waterford, MI

[someone_somewhere]

Hi,

[someone_somewhere]

Hi,

Just for the recond, the rest of the solution:

9 in r5c2 - Sole Candidate
1 in r5c7 4 in r6c1 - Sole Candidate
2 in r5c3 1 in r6c3 9 in r6c9 - Sole Candidate
6 in r7c9 - Sole Candidate
4 in r7c3 1 in r8c9 - Sole Candidate
3 in r2c3 7 in r7c2 5 in r7c7 - Sole Candidate
6 in r3c3 4 in r8c7 - Sole Candidate
2 in r1c2 - Sole Candidate
1 in r1c4 4 in r2c2 - Sole Candidate
3 in r1c8 7 in r2c6 9 in r4c4 - Sole Candidate
6 in r1c5 9 in r2c1 4 in r3c6 9 in r3c7 1 in r4c5 8 in r6c6 2 in r7c4 9 in r9c8 - Sole Candidate
5 in r2c4 7 in r3c1 5 in r3c8 7 in r6c5 9 in r7c5 6 in r8c6 8 in r9c5 3 in r9c7 - Sole Candidate
2 in r2c5 1 in r2c8 3 in r3c5 8 in r8c2 7 in r8c4 5 in r8c5 6 in r9c2 1 in r9c6 - Sole Candidate

And the final result: